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Erschienen in: Cancer and Metastasis Reviews 1-2/2009

01.06.2009

Signal transduction by focal adhesion kinase in cancer

verfasst von: Jihe Zhao, Jun-Lin Guan

Erschienen in: Cancer and Metastasis Reviews | Ausgabe 1-2/2009

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Abstract

Cellular interactions with extracellular matrix play essential roles in tumor initiation, progression and metastasis. Focal adhesion kinase (FAK) is a cytoplasmic tyrosine kinase identified as a key mediator of signaling by integrins, a major family of cell surface receptors for extracellular matrix, as well as other receptors in both normal and cancer cells. FAK is activated by integrins through disruption of an auto-inhibitory intra-molecular interaction between its kinase domain and the amino terminal FERM domain. The activated FAK forms a binary complex with Src family kinases which can phosphorylate other substrates and trigger multiple intracellular signaling pathways to regulate various cellular functions. Subcellular localization of FAK in focal adhesions is essential for FAK signaling, which is another distinguishing feature of the kinase. Integrin-FAK signaling has been shown to activate a number of signaling pathways through phosphorylation and protein-protein interactions to promote tumorigenesis. FAK also plays a prominent role in tumor progression and metastasis through its regulation of both cancer cells and their microenvironments including cancer cell migration, invasion, epithelial to mesenchymal transition, and angiogenesis. More recently, a role for FAK in tumor initiation and progression has been demonstrated directly using xenograft as well as conditional knockout mouse models. In agreement with these experimental data, overexpression and activation of FAK have been found in a variety of human cancers. A number of small molecule inhibitors for FAK have been developed and in various phases of testing for cancer treatments. Overall, the intensive research on FAK signaling in cancer have yielded a wealth of information on this pivotal kinase and these and future studies are leading to potentially novel therapies for cancer.
Literatur
1.
Zurück zum Zitat Hynes, R. (2002). Integrins: bidirectional, allosteric signaling machines. Cell, 110, 673–687.PubMed Hynes, R. (2002). Integrins: bidirectional, allosteric signaling machines. Cell, 110, 673–687.PubMed
2.
Zurück zum Zitat Golden, A., Brugge, J. S., & Shattil, S. J. (1990). Role of platelet membrane glycoprotein IIb-IIIa in agonist-induced tyrosine phosphorylation of platelet proteins. Journal of Cell Biology, 111, 3117–3127.PubMed Golden, A., Brugge, J. S., & Shattil, S. J. (1990). Role of platelet membrane glycoprotein IIb-IIIa in agonist-induced tyrosine phosphorylation of platelet proteins. Journal of Cell Biology, 111, 3117–3127.PubMed
3.
Zurück zum Zitat Ferrell Jr., J. E., & Martin, G. S. (1989). Tyrosine-specific protein phosphorylation is regulated by glycoprotein IIb-IIIa in platelets. Proceedings of the National Academy of Sciences of the United States of America, 86, 2234–2238.PubMed Ferrell Jr., J. E., & Martin, G. S. (1989). Tyrosine-specific protein phosphorylation is regulated by glycoprotein IIb-IIIa in platelets. Proceedings of the National Academy of Sciences of the United States of America, 86, 2234–2238.PubMed
4.
Zurück zum Zitat Kornberg, L. J., Earp, H. S., Turner, C. E., Prockop, C., & Juliano, R. L. (1991). Signal transduction by integrins: increased protein tyrosine phosphorylation caused by clustering of beta 1 integrins. Proceedings of the National Academy of Sciences of the United States of America, 88, 8392–8396.PubMed Kornberg, L. J., Earp, H. S., Turner, C. E., Prockop, C., & Juliano, R. L. (1991). Signal transduction by integrins: increased protein tyrosine phosphorylation caused by clustering of beta 1 integrins. Proceedings of the National Academy of Sciences of the United States of America, 88, 8392–8396.PubMed
5.
Zurück zum Zitat Guan, J. L., Trevithick, J. E., & Hynes, R. O. (1991). Fibronectin/integrin interaction induces tyrosine phosphorylation of a 120-kDa protein. Cell Regulation, 2, 951–964.PubMed Guan, J. L., Trevithick, J. E., & Hynes, R. O. (1991). Fibronectin/integrin interaction induces tyrosine phosphorylation of a 120-kDa protein. Cell Regulation, 2, 951–964.PubMed
6.
Zurück zum Zitat Kanner, S. B., Reynolds, A. B., Vines, R. R., & Parsons, J. T. (1990). Monoclonal antibodies to individual tyrosine-phosphorylated protein substrates of oncogene-encoded tyrosine kinases. Proceedings of the National Academy of Sciences of the United States of America, 87, 3328–3332.PubMed Kanner, S. B., Reynolds, A. B., Vines, R. R., & Parsons, J. T. (1990). Monoclonal antibodies to individual tyrosine-phosphorylated protein substrates of oncogene-encoded tyrosine kinases. Proceedings of the National Academy of Sciences of the United States of America, 87, 3328–3332.PubMed
7.
Zurück zum Zitat Schaller, M. D., Borgman, C. A., Cobb, B. S., Vines, R. R., Reynolds, A. B., & Parsons, J. T. (1992). pp125FAK a structurally distinctive protein-tyrosine kinase associated with focal adhesions. Proceedings of the National Academy of Sciences of the United States of America, 89, 5192–5196.PubMed Schaller, M. D., Borgman, C. A., Cobb, B. S., Vines, R. R., Reynolds, A. B., & Parsons, J. T. (1992). pp125FAK a structurally distinctive protein-tyrosine kinase associated with focal adhesions. Proceedings of the National Academy of Sciences of the United States of America, 89, 5192–5196.PubMed
8.
Zurück zum Zitat Guan, J. L., & Shalloway, D. (1992). Regulation of focal adhesion-associated protein tyrosine kinase by both cellular adhesion and oncogenic transformation. Nature, 358, 690–692.PubMed Guan, J. L., & Shalloway, D. (1992). Regulation of focal adhesion-associated protein tyrosine kinase by both cellular adhesion and oncogenic transformation. Nature, 358, 690–692.PubMed
9.
Zurück zum Zitat Parsons, J. T. (2003). Focal adhesion kinase: the first ten years. Journal of Cell Science, 116, 1409–1416.PubMed Parsons, J. T. (2003). Focal adhesion kinase: the first ten years. Journal of Cell Science, 116, 1409–1416.PubMed
10.
Zurück zum Zitat Mitra, S. K., & Schlaepfer, D. D. (2006). Integrin-regulated FAK-Src signaling in normal and cancer cells. Current Opinion in Cell Biology, 18, 516–523.PubMed Mitra, S. K., & Schlaepfer, D. D. (2006). Integrin-regulated FAK-Src signaling in normal and cancer cells. Current Opinion in Cell Biology, 18, 516–523.PubMed
11.
Zurück zum Zitat Fiedorek Jr., F. T., & Kay, E. S. (1995). Mapping of the focal adhesion kinase (Fadk) gene to mouse chromosome 15 and human chromosome 8. Mammalian Genome, 6, 123–126.PubMed Fiedorek Jr., F. T., & Kay, E. S. (1995). Mapping of the focal adhesion kinase (Fadk) gene to mouse chromosome 15 and human chromosome 8. Mammalian Genome, 6, 123–126.PubMed
12.
Zurück zum Zitat Whitney, G. S., Chan, P. Y., Blake, J., Cosand, W. L., Neubauer, M. G., Aruffo, A., et al. (1993). Human T and B lymphocytes express a structurally conserved focal adhesion kinase, pp125FAK. DNA and Cell Biology, 12, 823–830.PubMedCrossRef Whitney, G. S., Chan, P. Y., Blake, J., Cosand, W. L., Neubauer, M. G., Aruffo, A., et al. (1993). Human T and B lymphocytes express a structurally conserved focal adhesion kinase, pp125FAK. DNA and Cell Biology, 12, 823–830.PubMedCrossRef
13.
Zurück zum Zitat Lietha, D., Cai, X., Ceccarelli, D. F., Li, Y., Schaller, M. D., & Eck, M. J. (2007). Structural basis for the autoinhibition of focal adhesion kinase. Cell, 129, 1177–1187.PubMed Lietha, D., Cai, X., Ceccarelli, D. F., Li, Y., Schaller, M. D., & Eck, M. J. (2007). Structural basis for the autoinhibition of focal adhesion kinase. Cell, 129, 1177–1187.PubMed
14.
Zurück zum Zitat Dunty, J. M., Gabarra-Niecko, V., King, M. L., Ceccarelli, D. F., Eck, M. J., & Schaller, M. D. (2004). FERM domain interaction promotes FAK signaling. Molecular and Cellular Biology, 24, 5353–5368.PubMed Dunty, J. M., Gabarra-Niecko, V., King, M. L., Ceccarelli, D. F., Eck, M. J., & Schaller, M. D. (2004). FERM domain interaction promotes FAK signaling. Molecular and Cellular Biology, 24, 5353–5368.PubMed
15.
Zurück zum Zitat Cooper, L. A., Shen, T. L., & Guan, J. L. (2003). Regulation of focal adhesion kinase by its amino-terminal domain through an autoinhibitory interaction. Molecular and Cellular Biology, 23, 8030–8041.PubMed Cooper, L. A., Shen, T. L., & Guan, J. L. (2003). Regulation of focal adhesion kinase by its amino-terminal domain through an autoinhibitory interaction. Molecular and Cellular Biology, 23, 8030–8041.PubMed
16.
Zurück zum Zitat Cohen, L. A., & Guan, J. L. (2005). Residues within the first subdomain of the FERM-like domain in focal adhesion kinase are important in its regulation. Journal of Biological Chemistry, 280, 8197–8207.PubMed Cohen, L. A., & Guan, J. L. (2005). Residues within the first subdomain of the FERM-like domain in focal adhesion kinase are important in its regulation. Journal of Biological Chemistry, 280, 8197–8207.PubMed
17.
Zurück zum Zitat Cai, X., Lietha, D., Ceccarelli, D. F., Karginov, A. V., Rajfur, Z., Jacobson, K., et al. (2008). Spatial and temporal regulation of focal adhesion kinase activity in living cells. Molecular and Cellular Biology, 28, 201–214.PubMed Cai, X., Lietha, D., Ceccarelli, D. F., Karginov, A. V., Rajfur, Z., Jacobson, K., et al. (2008). Spatial and temporal regulation of focal adhesion kinase activity in living cells. Molecular and Cellular Biology, 28, 201–214.PubMed
18.
Zurück zum Zitat Sieg, D. J., Hauck, C. R., Ilic, D., Klingbeil, C. K., Schaefer, E., Damsky, C. H., et al. (2000). FAK integrates growth-factor and integrin signals to promote cell migration. Nature Cell Biology, 2, 249–256.PubMed Sieg, D. J., Hauck, C. R., Ilic, D., Klingbeil, C. K., Schaefer, E., Damsky, C. H., et al. (2000). FAK integrates growth-factor and integrin signals to promote cell migration. Nature Cell Biology, 2, 249–256.PubMed
19.
Zurück zum Zitat Cary, L. A., & Guan, J. L. (1999). Focal adhesion kinase in integrin-mediated signaling. Frontiers in Bioscience, 4, D102–113.PubMed Cary, L. A., & Guan, J. L. (1999). Focal adhesion kinase in integrin-mediated signaling. Frontiers in Bioscience, 4, D102–113.PubMed
20.
Zurück zum Zitat Schaller, M. D., Hildebrand, J. D., Shannon, J. D., Fox, J. W., Vines, R. R., & Parsons, J. T. (1994). Autophosphorylation of the focal adhesion kinase, pp125FAK, directs SH2-dependent binding of pp60src. Molecular and Cellular Biology, 14, 1680–1688.PubMed Schaller, M. D., Hildebrand, J. D., Shannon, J. D., Fox, J. W., Vines, R. R., & Parsons, J. T. (1994). Autophosphorylation of the focal adhesion kinase, pp125FAK, directs SH2-dependent binding of pp60src. Molecular and Cellular Biology, 14, 1680–1688.PubMed
21.
Zurück zum Zitat Xing, Z., Chen, H. C., Nowlen, J. K., Taylor, S. J., Shalloway, D., & Guan, J. L. (1994). Direct interaction of v-Src with the focal adhesion kinase mediated by the Src SH2 domain. Molecular Biology of the Cell, 5, 413–421.PubMed Xing, Z., Chen, H. C., Nowlen, J. K., Taylor, S. J., Shalloway, D., & Guan, J. L. (1994). Direct interaction of v-Src with the focal adhesion kinase mediated by the Src SH2 domain. Molecular Biology of the Cell, 5, 413–421.PubMed
22.
Zurück zum Zitat Zachary, I., Sinnett-Smith, J., & Rozengurt, E. (1992). Bombesin, vasopressin, and endothelin stimulation of tyrosine phosphorylation in Swiss 3T3 cells. Identification of a novel tyrosine kinase as a major substrate. Journal of Biological Chemistry, 267, 19031–19034.PubMed Zachary, I., Sinnett-Smith, J., & Rozengurt, E. (1992). Bombesin, vasopressin, and endothelin stimulation of tyrosine phosphorylation in Swiss 3T3 cells. Identification of a novel tyrosine kinase as a major substrate. Journal of Biological Chemistry, 267, 19031–19034.PubMed
23.
Zurück zum Zitat Frisch, S. M., Vuori, K., Ruoslahti, E., & Chan-Hui, P. Y. (1996). Control of adhesion-dependent cell survival by focal adhesion kinase. Journal of Cell Biology, 134, 793–799.PubMed Frisch, S. M., Vuori, K., Ruoslahti, E., & Chan-Hui, P. Y. (1996). Control of adhesion-dependent cell survival by focal adhesion kinase. Journal of Cell Biology, 134, 793–799.PubMed
24.
Zurück zum Zitat Chan, P. Y., Kanner, S. B., Whitney, G., & Aruffo, A. (1994). A transmembrane-anchored chimeric focal adhesion kinase is constitutively activated and phosphorylated at tyrosine residues identical to pp125FAK. Journal of Biological Chemistry, 269, 20567–20574.PubMed Chan, P. Y., Kanner, S. B., Whitney, G., & Aruffo, A. (1994). A transmembrane-anchored chimeric focal adhesion kinase is constitutively activated and phosphorylated at tyrosine residues identical to pp125FAK. Journal of Biological Chemistry, 269, 20567–20574.PubMed
25.
Zurück zum Zitat Hungerford, J. E., Compton, M. T., Matter, M. L., Hoffstrom, B. G., & Otey, C. A. (1996). Inhibition of pp125FAK in cultured fibroblasts results in apoptosis. Journal of Cell Biology, 135, 1383–1390.PubMed Hungerford, J. E., Compton, M. T., Matter, M. L., Hoffstrom, B. G., & Otey, C. A. (1996). Inhibition of pp125FAK in cultured fibroblasts results in apoptosis. Journal of Cell Biology, 135, 1383–1390.PubMed
26.
Zurück zum Zitat Xu, L. H., Owens, L. V., Sturge, G. C., Yang, X., Liu, E. T., Craven, R. J., et al. (1996). Attenuation of the expression of the focal adhesion kinase induces apoptosis in tumor cells. Cell Growth & Differentiation, 7, 413–418. Xu, L. H., Owens, L. V., Sturge, G. C., Yang, X., Liu, E. T., Craven, R. J., et al. (1996). Attenuation of the expression of the focal adhesion kinase induces apoptosis in tumor cells. Cell Growth & Differentiation, 7, 413–418.
27.
Zurück zum Zitat Ilic, D., Almeida, E. A., Schlaepfer, D. D., Dazin, P., Aizawa, S., & Damsky, C. H. (1998). Extracellular matrix survival signals transduced by focal adhesion kinase suppress p53-mediated apoptosis. Journal of Cell Biology, 143, 547–560.PubMed Ilic, D., Almeida, E. A., Schlaepfer, D. D., Dazin, P., Aizawa, S., & Damsky, C. H. (1998). Extracellular matrix survival signals transduced by focal adhesion kinase suppress p53-mediated apoptosis. Journal of Cell Biology, 143, 547–560.PubMed
28.
Zurück zum Zitat Chan, P. C., Lai, J. F., Cheng, C. H., Tang, M. J., Chiu, C. C., & Chen, H. C. (1999). Suppression of ultraviolet irradiation-induced apoptosis by overexpression of focal adhesion kinase in Madin-Darby canine kidney cells. Journal of Biological Chemistry, 274, 26901–26906.PubMed Chan, P. C., Lai, J. F., Cheng, C. H., Tang, M. J., Chiu, C. C., & Chen, H. C. (1999). Suppression of ultraviolet irradiation-induced apoptosis by overexpression of focal adhesion kinase in Madin-Darby canine kidney cells. Journal of Biological Chemistry, 274, 26901–26906.PubMed
29.
Zurück zum Zitat Sonoda, Y., Matsumoto, Y., Funakoshi, M., Yamamoto, D., Hanks, S. K., & Kasahara, T. (2000). Anti-apoptotic role of focal adhesion kinase (FAK). Induction of inhibitor-of-apoptosis proteins and apoptosis suppression by the overexpression of FAK in a human leukemic cell line, HL-60. Journal of Biological Chemistry, 275, 16309–16315.PubMed Sonoda, Y., Matsumoto, Y., Funakoshi, M., Yamamoto, D., Hanks, S. K., & Kasahara, T. (2000). Anti-apoptotic role of focal adhesion kinase (FAK). Induction of inhibitor-of-apoptosis proteins and apoptosis suppression by the overexpression of FAK in a human leukemic cell line, HL-60. Journal of Biological Chemistry, 275, 16309–16315.PubMed
30.
Zurück zum Zitat Reiske, H. R., Kao, S. C., Cary, L. A., Guan, J. L., Lai, J. F., & Chen, H. C. (1999). Requirement of phosphatidylinositol 3-kinase in focal adhesion kinase-promoted cell migration. Journal of Biological Chemistry, 274, 12361–1236.PubMed Reiske, H. R., Kao, S. C., Cary, L. A., Guan, J. L., Lai, J. F., & Chen, H. C. (1999). Requirement of phosphatidylinositol 3-kinase in focal adhesion kinase-promoted cell migration. Journal of Biological Chemistry, 274, 12361–1236.PubMed
31.
Zurück zum Zitat Hennessy, B. T., Smith, D. L., Ram, P. T., Lu, Y., & Mills, G. B. (2005). Exploiting the PI3K/AKT pathway for cancer drug discovery. Nature Reviews. Drug discovery, 4, 988–1004.PubMed Hennessy, B. T., Smith, D. L., Ram, P. T., Lu, Y., & Mills, G. B. (2005). Exploiting the PI3K/AKT pathway for cancer drug discovery. Nature Reviews. Drug discovery, 4, 988–1004.PubMed
32.
Zurück zum Zitat Luo, J., Manning, B. D., & Cantley, L. C. (2003). Targeting the PI3K-Akt pathway in human cancer: rationale and promise. Cancer Cell, 4, 257–262.PubMed Luo, J., Manning, B. D., & Cantley, L. C. (2003). Targeting the PI3K-Akt pathway in human cancer: rationale and promise. Cancer Cell, 4, 257–262.PubMed
33.
Zurück zum Zitat Kurenova, E., Xu, L. H., Yang, X., Baldwin Jr., A. S., Craven, R. J., Hanks, S. K., et al. (2004). Focal adhesion kinase suppresses apoptosis by binding to the death domain of receptor-interacting protein. Molecular and Cellular Biology, 24, 4361–4371.PubMed Kurenova, E., Xu, L. H., Yang, X., Baldwin Jr., A. S., Craven, R. J., Hanks, S. K., et al. (2004). Focal adhesion kinase suppresses apoptosis by binding to the death domain of receptor-interacting protein. Molecular and Cellular Biology, 24, 4361–4371.PubMed
34.
Zurück zum Zitat Lim, S. T., Chen, X. L., Lim, Y., Hanson, D. A., Vo, T. T., Howerton, K., et al. (2008). Nuclear FAK promotes cell proliferation and survival through FERM-enhanced p53 degradation. Molecular Cell, 29, 9–22.PubMed Lim, S. T., Chen, X. L., Lim, Y., Hanson, D. A., Vo, T. T., Howerton, K., et al. (2008). Nuclear FAK promotes cell proliferation and survival through FERM-enhanced p53 degradation. Molecular Cell, 29, 9–22.PubMed
35.
Zurück zum Zitat Gilmore, A. P., & Romer, L. H. (1996). Inhibition of focal adhesion kinase (FAK) signaling in focal adhesions decreases cell motility and proliferation. Molecular Biology of the Cell, 7, 1209–1224.PubMed Gilmore, A. P., & Romer, L. H. (1996). Inhibition of focal adhesion kinase (FAK) signaling in focal adhesions decreases cell motility and proliferation. Molecular Biology of the Cell, 7, 1209–1224.PubMed
36.
Zurück zum Zitat Sechler, J. L., & Schwarzbauer, J. E. (1998). Control of cell cycle progression by fibronectin matrix architecture. Journal of Biological Chemistry, 273, 25533–25536.PubMed Sechler, J. L., & Schwarzbauer, J. E. (1998). Control of cell cycle progression by fibronectin matrix architecture. Journal of Biological Chemistry, 273, 25533–25536.PubMed
37.
Zurück zum Zitat Zhao, J. H., Reiske, H., & Guan, J. L. (1998). Regulation of the cell cycle by focal adhesion kinase. Journal of Cell Biology, 143, 1997–2008.PubMed Zhao, J. H., Reiske, H., & Guan, J. L. (1998). Regulation of the cell cycle by focal adhesion kinase. Journal of Cell Biology, 143, 1997–2008.PubMed
38.
Zurück zum Zitat Ilic, D., Furuta, Y., Kanazawa, S., Takeda, N., Sobue, K., Nakatsuji, N., et al. (1995). Reduced cell motility and enhanced focal adhesion contact formation in cells from FAK-deficient mice. Nature, 377, 539–544.PubMed Ilic, D., Furuta, Y., Kanazawa, S., Takeda, N., Sobue, K., Nakatsuji, N., et al. (1995). Reduced cell motility and enhanced focal adhesion contact formation in cells from FAK-deficient mice. Nature, 377, 539–544.PubMed
39.
Zurück zum Zitat Weis, S. M., Lim, S. T., Lutu-Fuga, K. M., Barnes, L. A., Chen, X. L., Gothert, J. R., et al. (2008). Compensatory role for Pyk2 during angiogenesis in adult mice lacking endothelial cell FAK. Journal of Cell Biology, 181, 43–50.PubMed Weis, S. M., Lim, S. T., Lutu-Fuga, K. M., Barnes, L. A., Chen, X. L., Gothert, J. R., et al. (2008). Compensatory role for Pyk2 during angiogenesis in adult mice lacking endothelial cell FAK. Journal of Cell Biology, 181, 43–50.PubMed
40.
Zurück zum Zitat Shen, T. L., Park, A. Y., Alcaraz, A., Peng, X., Jang, I., Koni, P., et al. (2005). Conditional knockout of focal adhesion kinase in endothelial cells reveals its role in angiogenesis and vascular development in late embryogenesis. Journal of Cell Biology, 169, 941–952.PubMed Shen, T. L., Park, A. Y., Alcaraz, A., Peng, X., Jang, I., Koni, P., et al. (2005). Conditional knockout of focal adhesion kinase in endothelial cells reveals its role in angiogenesis and vascular development in late embryogenesis. Journal of Cell Biology, 169, 941–952.PubMed
41.
Zurück zum Zitat Schlaepfer, D. D., Hanks, S. K., Hunter, T., & van der Geer, P. (1994). Integrin-mediated signal transduction linked to Ras pathway by GRB2 binding to focal adhesion kinase. Nature, 372, 786–791.PubMed Schlaepfer, D. D., Hanks, S. K., Hunter, T., & van der Geer, P. (1994). Integrin-mediated signal transduction linked to Ras pathway by GRB2 binding to focal adhesion kinase. Nature, 372, 786–791.PubMed
42.
Zurück zum Zitat Schlaepfer, D. D., Jones, K. C., & Hunter, T. (1998). Multiple Grb2-mediated integrin-stimulated signaling pathways to ERK2/mitogen-activated protein kinase: summation of both c-Src—and focal adhesion kinase-initiated tyrosine phosphorylation events. Molecular and Cellular Biology, 18, 2571–2585.PubMed Schlaepfer, D. D., Jones, K. C., & Hunter, T. (1998). Multiple Grb2-mediated integrin-stimulated signaling pathways to ERK2/mitogen-activated protein kinase: summation of both c-Src—and focal adhesion kinase-initiated tyrosine phosphorylation events. Molecular and Cellular Biology, 18, 2571–2585.PubMed
43.
Zurück zum Zitat Zhao, J., Pestell, R., & Guan, J. L. (2001). Transcriptional activation of cyclin D1 promoter by FAK contributes to cell cycle progression. Molecular Biology of the Cell, 12, 4066–4077.PubMed Zhao, J., Pestell, R., & Guan, J. L. (2001). Transcriptional activation of cyclin D1 promoter by FAK contributes to cell cycle progression. Molecular Biology of the Cell, 12, 4066–4077.PubMed
44.
Zurück zum Zitat Oktay, M., Wary, K. K., Dans, M., Birge, R. B., & Giancotti, F. G. (1999). Integrin-mediated activation of focal adhesion kinase is required for signaling to Jun NH2-terminal kinase and progression through the G1 phase of the cell cycle. Journal of Cell Biology, 145, 1461–1469.PubMed Oktay, M., Wary, K. K., Dans, M., Birge, R. B., & Giancotti, F. G. (1999). Integrin-mediated activation of focal adhesion kinase is required for signaling to Jun NH2-terminal kinase and progression through the G1 phase of the cell cycle. Journal of Cell Biology, 145, 1461–1469.PubMed
45.
Zurück zum Zitat Zhao, J., Bian, Z. C., Yee, K., Chen, B. P., Chien, S., & Guan, J. L. (2003). Identification of transcription factor KLF8 as a downstream target of focal adhesion kinase in its regulation of cyclin D1 and cell cycle progression. Molecular Cell, 11, 1503–1515.PubMed Zhao, J., Bian, Z. C., Yee, K., Chen, B. P., Chien, S., & Guan, J. L. (2003). Identification of transcription factor KLF8 as a downstream target of focal adhesion kinase in its regulation of cyclin D1 and cell cycle progression. Molecular Cell, 11, 1503–1515.PubMed
46.
Zurück zum Zitat Ding, Q., Grammer, J. R., Nelson, M. A., Guan, J. L., Stewart Jr., J. E., & Gladson, C. L. (2005). p27Kip1 and cyclin D1 are necessary for focal adhesion kinase regulation of cell cycle progression in glioblastoma cells propagated in vitro and in vivo in the scid mouse brain. Journal of Biological Chemistry, 280, 6802–6815.PubMed Ding, Q., Grammer, J. R., Nelson, M. A., Guan, J. L., Stewart Jr., J. E., & Gladson, C. L. (2005). p27Kip1 and cyclin D1 are necessary for focal adhesion kinase regulation of cell cycle progression in glioblastoma cells propagated in vitro and in vivo in the scid mouse brain. Journal of Biological Chemistry, 280, 6802–6815.PubMed
47.
Zurück zum Zitat Bond, M., Sala-Newby, G. B., & Newby, A. C. (2004). Focal adhesion kinase (FAK)-dependent regulation of S-phase kinase-associated protein-2 (Skp-2) stability. A novel mechanism regulating smooth muscle cell proliferation. Journal of Biological Chemistry, 279, 37304–37310.PubMed Bond, M., Sala-Newby, G. B., & Newby, A. C. (2004). Focal adhesion kinase (FAK)-dependent regulation of S-phase kinase-associated protein-2 (Skp-2) stability. A novel mechanism regulating smooth muscle cell proliferation. Journal of Biological Chemistry, 279, 37304–37310.PubMed
48.
Zurück zum Zitat Carrano, A. C., Eytan, E., Hershko, A., & Pagano, M. (1999). SKP2 is required for ubiquitin-mediated degradation of the CDK inhibitor p27. Nature Cell Biology, 1, 193–199.PubMed Carrano, A. C., Eytan, E., Hershko, A., & Pagano, M. (1999). SKP2 is required for ubiquitin-mediated degradation of the CDK inhibitor p27. Nature Cell Biology, 1, 193–199.PubMed
49.
Zurück zum Zitat Bryant, P., Zheng, Q., & Pumiglia, K. (2006) Focal adhesion kinase controls cellular levels of p27/Kip1 and p21/Cip1 through Skp2-dependent and independent mechanisms. Molecular and Cellular Biology, 26, 4201–4213.PubMed Bryant, P., Zheng, Q., & Pumiglia, K. (2006) Focal adhesion kinase controls cellular levels of p27/Kip1 and p21/Cip1 through Skp2-dependent and independent mechanisms. Molecular and Cellular Biology, 26, 4201–4213.PubMed
50.
Zurück zum Zitat Romer, L. H., McLean, N., Turner, C. E., & Burridge, K. (1994). Tyrosine kinase activity, cytoskeletal organization, and motility in human vascular endothelial cells. Molecular Biology of the Cell, 5, 349–361.PubMed Romer, L. H., McLean, N., Turner, C. E., & Burridge, K. (1994). Tyrosine kinase activity, cytoskeletal organization, and motility in human vascular endothelial cells. Molecular Biology of the Cell, 5, 349–361.PubMed
51.
Zurück zum Zitat Gates, R. E., King Jr., L. E., Hanks, S. K., & Nanney, L. B. (1994). Potential role for focal adhesion kinase in migrating and proliferating keratinocytes near epidermal wounds and in culture. Cell Growth & Differentiation, 5, 891–899. Gates, R. E., King Jr., L. E., Hanks, S. K., & Nanney, L. B. (1994). Potential role for focal adhesion kinase in migrating and proliferating keratinocytes near epidermal wounds and in culture. Cell Growth & Differentiation, 5, 891–899.
52.
Zurück zum Zitat Cary, L. A., Chang, J. F., & Guan, J. L. (1996). Stimulation of cell migration by overexpression of focal adhesion kinase and its association with Src and Fyn. Journal of Cell Science, 109, 1787–1794.PubMed Cary, L. A., Chang, J. F., & Guan, J. L. (1996). Stimulation of cell migration by overexpression of focal adhesion kinase and its association with Src and Fyn. Journal of Cell Science, 109, 1787–1794.PubMed
53.
Zurück zum Zitat Sieg, D. J., Hauck, C. R., & Schlaepfer, D. D. (1999). Required role of focal adhesion kinase (FAK) for integrin-stimulated cell migration. Journal of Cell Science, 112, 2677–2691.PubMed Sieg, D. J., Hauck, C. R., & Schlaepfer, D. D. (1999). Required role of focal adhesion kinase (FAK) for integrin-stimulated cell migration. Journal of Cell Science, 112, 2677–2691.PubMed
54.
Zurück zum Zitat Owen, J. D., Ruest, P. J., Fry, D. W., & Hanks, S. K. (1999). Induced focal adhesion kinase (FAK) expression in FAK-null cells enhances cell spreading and migration requiring both auto—and activation loop phosphorylation sites and inhibits adhesion-dependent tyrosine phosphorylation of Pyk2. Molecular and Cellular Biology, 19, 4806–4818.PubMed Owen, J. D., Ruest, P. J., Fry, D. W., & Hanks, S. K. (1999). Induced focal adhesion kinase (FAK) expression in FAK-null cells enhances cell spreading and migration requiring both auto—and activation loop phosphorylation sites and inhibits adhesion-dependent tyrosine phosphorylation of Pyk2. Molecular and Cellular Biology, 19, 4806–4818.PubMed
55.
Zurück zum Zitat Cary, L. A., Han, D. C., Polte, T. R., Hanks, S. K., & Guan, J. L. (1998). Identification of p130Cas as a mediator of focal adhesion kinase-promoted cell migration. Journal of Cell Biology, 140, 211–221.PubMed Cary, L. A., Han, D. C., Polte, T. R., Hanks, S. K., & Guan, J. L. (1998). Identification of p130Cas as a mediator of focal adhesion kinase-promoted cell migration. Journal of Cell Biology, 140, 211–221.PubMed
56.
Zurück zum Zitat Klemke, R. L., Leng, J., Molander, R., Brooks, P. C., Vuori, K., & Cheresh, D. A. (1998). CAS/Crk coupling serves as a "molecular switch" for induction of cell migration. Journal of Cell Biology, 140, 961–972.PubMed Klemke, R. L., Leng, J., Molander, R., Brooks, P. C., Vuori, K., & Cheresh, D. A. (1998). CAS/Crk coupling serves as a "molecular switch" for induction of cell migration. Journal of Cell Biology, 140, 961–972.PubMed
57.
Zurück zum Zitat Richardson, A., & Parsons, T. (1996). A mechanism for regulation of the adhesion-associated proteintyrosine kinase pp125FAK [published erratum appears in Nature 1996 Jun 27;381(6585):810]. Nature, 380, 538–540.PubMed Richardson, A., & Parsons, T. (1996). A mechanism for regulation of the adhesion-associated proteintyrosine kinase pp125FAK [published erratum appears in Nature 1996 Jun 27;381(6585):810]. Nature, 380, 538–540.PubMed
58.
Zurück zum Zitat Cho, S. Y., & Klemke, R. L. (2000). Extracellular-regulated kinase activation and CAS/Crk coupling regulate cell migration and suppress apoptosis during invasion of the extracellular matrix. Journal of Cell Biology, 149, 223–236.PubMed Cho, S. Y., & Klemke, R. L. (2000). Extracellular-regulated kinase activation and CAS/Crk coupling regulate cell migration and suppress apoptosis during invasion of the extracellular matrix. Journal of Cell Biology, 149, 223–236.PubMed
59.
Zurück zum Zitat Cheresh, D. A., Leng, J., & Klemke, R. L. (1999). Regulation of cell contraction and membrane ruffling by distinct signals in migratory cells. Journal of Cell Biology, 146, 1107–1116.PubMed Cheresh, D. A., Leng, J., & Klemke, R. L. (1999). Regulation of cell contraction and membrane ruffling by distinct signals in migratory cells. Journal of Cell Biology, 146, 1107–1116.PubMed
60.
Zurück zum Zitat Turner, C. E. (2000). Paxillin interactions. Journal of Cell Science, 113, 4139–4140.PubMed Turner, C. E. (2000). Paxillin interactions. Journal of Cell Science, 113, 4139–4140.PubMed
61.
Zurück zum Zitat Turner, C. E., Brown, M. C., Perrotta, J. A., Riedy, M. C., Nikolopoulos, S. N., McDonald, A. R., et al. (1999). Paxillin LD4 motif binds PAK and PIX through a novel 95-kD ankyrin repeat, ARF-GAP protein: A role in cytoskeletal remodeling. Journal of Cell Biology, 145, 851–863.PubMed Turner, C. E., Brown, M. C., Perrotta, J. A., Riedy, M. C., Nikolopoulos, S. N., McDonald, A. R., et al. (1999). Paxillin LD4 motif binds PAK and PIX through a novel 95-kD ankyrin repeat, ARF-GAP protein: A role in cytoskeletal remodeling. Journal of Cell Biology, 145, 851–863.PubMed
62.
Zurück zum Zitat West, K. A., Zhang, H., Brown, M. C., Nikolopoulos, S. N., Riedy, M. C., Horwitz, A. F., et al. (2001). The LD4 motif of paxillin regulates cell spreading and motility through an interaction with paxillin kinase linker (PKL). Journal of Cell Biology, 154, 161–176.PubMed West, K. A., Zhang, H., Brown, M. C., Nikolopoulos, S. N., Riedy, M. C., Horwitz, A. F., et al. (2001). The LD4 motif of paxillin regulates cell spreading and motility through an interaction with paxillin kinase linker (PKL). Journal of Cell Biology, 154, 161–176.PubMed
63.
Zurück zum Zitat Han, D. C., & Guan, J. L. (1999). Association of focal adhesion kinase with Grb7 and its role in cell migration. Journal of Biological Chemistry, 274, 24425–24430.PubMed Han, D. C., & Guan, J. L. (1999). Association of focal adhesion kinase with Grb7 and its role in cell migration. Journal of Biological Chemistry, 274, 24425–24430.PubMed
64.
Zurück zum Zitat Han, D. C., Shen, T. L., & Guan, J. L. (2000). Role of Grb7 targeting to focal contacts and its phosphorylation by focal adhesion kinase in regulation of cell migration. Journal of Biological Chemistry, 275, 28911–28917.PubMed Han, D. C., Shen, T. L., & Guan, J. L. (2000). Role of Grb7 targeting to focal contacts and its phosphorylation by focal adhesion kinase in regulation of cell migration. Journal of Biological Chemistry, 275, 28911–28917.PubMed
65.
Zurück zum Zitat Shen, T. L., Han, D. C., & Guan, J. L. (2002). Association of Grb7 with phosphoinositides and its role in the regulation of cell migration. Journal of Biological Chemistry, 277, 29069–29077.PubMed Shen, T. L., Han, D. C., & Guan, J. L. (2002). Association of Grb7 with phosphoinositides and its role in the regulation of cell migration. Journal of Biological Chemistry, 277, 29069–29077.PubMed
66.
Zurück zum Zitat Ren, X. D., Kiosses, W. B., Sieg, D. J., Otey, C. A., Schlaepfer, D. D., & Schwartz, M. A. (2000). Focal adhesion kinase suppresses Rho activity to promote focal adhesion turnover. Journal of Cell Science, 113, 3673–3678.PubMed Ren, X. D., Kiosses, W. B., Sieg, D. J., Otey, C. A., Schlaepfer, D. D., & Schwartz, M. A. (2000). Focal adhesion kinase suppresses Rho activity to promote focal adhesion turnover. Journal of Cell Science, 113, 3673–3678.PubMed
67.
Zurück zum Zitat Hsia, D. A., Mitra, S. K., Hauck, C. R., Streblow, D. N., Nelson, J. A., Ilic, D., et al. (2003). Differential regulation of cell motility and invasion by FAK. Journal of Cell Biology, 160, 753–767.PubMed Hsia, D. A., Mitra, S. K., Hauck, C. R., Streblow, D. N., Nelson, J. A., Ilic, D., et al. (2003). Differential regulation of cell motility and invasion by FAK. Journal of Cell Biology, 160, 753–767.PubMed
68.
Zurück zum Zitat Chen, B. H., Tzen, J. T., Bresnick, A. R., & Chen, H. C. (2002). Roles of Rho-associated kinase and myosin light chain kinase in morphological and migratory defects of focal adhesion kinase-null cells. Journal of Biological Chemistry, 277, 33857–33863.PubMed Chen, B. H., Tzen, J. T., Bresnick, A. R., & Chen, H. C. (2002). Roles of Rho-associated kinase and myosin light chain kinase in morphological and migratory defects of focal adhesion kinase-null cells. Journal of Biological Chemistry, 277, 33857–33863.PubMed
69.
Zurück zum Zitat Zhai, J., Lin, H., Nie, Z., Wu, J., Canete-Soler, R., Schlaepfer, W. W., et al. (2003). Direct interaction of focal adhesion kinase with p190RhoGEF. Journal of Biological Chemistry, 278, 24865–24873.PubMed Zhai, J., Lin, H., Nie, Z., Wu, J., Canete-Soler, R., Schlaepfer, W. W., et al. (2003). Direct interaction of focal adhesion kinase with p190RhoGEF. Journal of Biological Chemistry, 278, 24865–24873.PubMed
70.
Zurück zum Zitat Hildebrand, J. D., Taylor, J. M., & Parsons, J. T. (1996). An SH3 domain-containing GTPase-activating protein for Rho and Cdc42 associates with focal adhesion kinase. Molecular and Cellular Biology, 16, 3169–3178.PubMed Hildebrand, J. D., Taylor, J. M., & Parsons, J. T. (1996). An SH3 domain-containing GTPase-activating protein for Rho and Cdc42 associates with focal adhesion kinase. Molecular and Cellular Biology, 16, 3169–3178.PubMed
71.
Zurück zum Zitat Liu, Y., Loijens, J. C., Martin, K. H., Karginov, A. V., & Parsons, J. T. (2002). The association of ASAP1, an ADP ribosylation factor-GTPase activating protein, with focal adhesion kinase contributes to the process of focal adhesion assembly. Molecular Biology of the Cell, 13, 2147–2156.PubMed Liu, Y., Loijens, J. C., Martin, K. H., Karginov, A. V., & Parsons, J. T. (2002). The association of ASAP1, an ADP ribosylation factor-GTPase activating protein, with focal adhesion kinase contributes to the process of focal adhesion assembly. Molecular Biology of the Cell, 13, 2147–2156.PubMed
72.
Zurück zum Zitat Wu, X., Suetsugu, S., Cooper, L. A., Takenawa, T., & Guan, J. L. (2004). Focal adhesion kinase regulation of N-WASP subcellular localization and function. Journal of Biological Chemistry, 279, 9565–9576.PubMed Wu, X., Suetsugu, S., Cooper, L. A., Takenawa, T., & Guan, J. L. (2004). Focal adhesion kinase regulation of N-WASP subcellular localization and function. Journal of Biological Chemistry, 279, 9565–9576.PubMed
73.
Zurück zum Zitat Hauck, C. R., Hsia, D. A., Puente, X. S., Cheresh, D. A., & Schlaepfer, D. D. (2002). FRNK blocks v-Src-stimulated invasion and experimental metastases without effects on cell motility or growth. Embo Journal, 21, 6289–6302.PubMed Hauck, C. R., Hsia, D. A., Puente, X. S., Cheresh, D. A., & Schlaepfer, D. D. (2002). FRNK blocks v-Src-stimulated invasion and experimental metastases without effects on cell motility or growth. Embo Journal, 21, 6289–6302.PubMed
74.
Zurück zum Zitat Shibata, K., Kikkawa, F., Nawa, A., Thant, A. A., Naruse, K., Mizutani, S., et al. (1998). Both focal adhesion kinase and c-Ras are required for the enhanced matrix metalloproteinase 9 secretion by fibronectin in ovarian cancer cells. Cancer Research, 58, 900–903.PubMed Shibata, K., Kikkawa, F., Nawa, A., Thant, A. A., Naruse, K., Mizutani, S., et al. (1998). Both focal adhesion kinase and c-Ras are required for the enhanced matrix metalloproteinase 9 secretion by fibronectin in ovarian cancer cells. Cancer Research, 58, 900–903.PubMed
75.
Zurück zum Zitat Wu, X., Gan, B., Yoo, Y., & Guan, J. L. (2005). FAK-mediated src phosphorylation of endophilin A2 inhibits endocytosis of MT1-MMP and promotes ECM degradation. Developmental Cell, 9, 185–196.PubMed Wu, X., Gan, B., Yoo, Y., & Guan, J. L. (2005). FAK-mediated src phosphorylation of endophilin A2 inhibits endocytosis of MT1-MMP and promotes ECM degradation. Developmental Cell, 9, 185–196.PubMed
76.
Zurück zum Zitat Irby, R. B., & Yeatman, T. J. (2002). Increased Src activity disrupts cadherin/catenin-mediated homotypic adhesion in human colon cancer and transformed rodent cells. Cancer Research, 62, 2669–2674.PubMed Irby, R. B., & Yeatman, T. J. (2002). Increased Src activity disrupts cadherin/catenin-mediated homotypic adhesion in human colon cancer and transformed rodent cells. Cancer Research, 62, 2669–2674.PubMed
77.
Zurück zum Zitat Avizienyte, E., & Frame, M. C. (2005). Src and FAK signalling controls adhesion fate and the epithelial-to-mesenchymal transition. Current Opinion in Cell Biology, 17, 542–547.PubMed Avizienyte, E., & Frame, M. C. (2005). Src and FAK signalling controls adhesion fate and the epithelial-to-mesenchymal transition. Current Opinion in Cell Biology, 17, 542–547.PubMed
78.
Zurück zum Zitat McLean, G. W., Carragher, N. O., Avizienyte, E., Evans, J., Brunton, V. G., & Frame, M. C. (2005). The role of focal-adhesion kinase in cancer—a new therapeutic opportunity. Nature Reviews. Cancer, 5, 505–515.PubMed McLean, G. W., Carragher, N. O., Avizienyte, E., Evans, J., Brunton, V. G., & Frame, M. C. (2005). The role of focal-adhesion kinase in cancer—a new therapeutic opportunity. Nature Reviews. Cancer, 5, 505–515.PubMed
79.
Zurück zum Zitat Thiery, J. P., & Sleeman, J. P. (2006). Complex networks orchestrate epithelial-mesenchymal transitions. Nature Reviews. Molecular and Cellular Biology, 7, 131–142. Thiery, J. P., & Sleeman, J. P. (2006). Complex networks orchestrate epithelial-mesenchymal transitions. Nature Reviews. Molecular and Cellular Biology, 7, 131–142.
80.
Zurück zum Zitat Avizienyte, E., Wyke, A. W., Jones, R. J., McLean, G. W., Westhoff, M. A., Brunton, V. G., et al. (2002). Src-induced de-regulation of E-cadherin in colon cancer cells requires integrin signalling. Nature Cell Biology, 4, 632–638.PubMed Avizienyte, E., Wyke, A. W., Jones, R. J., McLean, G. W., Westhoff, M. A., Brunton, V. G., et al. (2002). Src-induced de-regulation of E-cadherin in colon cancer cells requires integrin signalling. Nature Cell Biology, 4, 632–638.PubMed
81.
Zurück zum Zitat Bailey, K. M., & Liu, J. (2008). Caveolin-1 up-regulation during epithelial to mesenchymal transition is mediated by focal adhesion kinase. Journal of Biological Chemistry, 283, 13714–13724.PubMed Bailey, K. M., & Liu, J. (2008). Caveolin-1 up-regulation during epithelial to mesenchymal transition is mediated by focal adhesion kinase. Journal of Biological Chemistry, 283, 13714–13724.PubMed
82.
Zurück zum Zitat Cicchini, C., Laudadio, I., Citarella, F., Corazzari, M., Steindler, C., Conigliaro, A., et al. (2008). TGFbeta-induced EMT requires focal adhesion kinase (FAK) signaling. Experimental Cell Research, 314, 143–152.PubMed Cicchini, C., Laudadio, I., Citarella, F., Corazzari, M., Steindler, C., Conigliaro, A., et al. (2008). TGFbeta-induced EMT requires focal adhesion kinase (FAK) signaling. Experimental Cell Research, 314, 143–152.PubMed
83.
Zurück zum Zitat Nakamura, K., Yano, H., Schaefer, E., & Sabe, H. (2001). Different modes and qualities of tyrosine phosphorylation of Fak and Pyk2 during epithelial-mesenchymal transdifferentiation and cell migration: analysis of specific phosphorylation events using site-directed antibodies. Oncogene, 20, 2626–2635.PubMed Nakamura, K., Yano, H., Schaefer, E., & Sabe, H. (2001). Different modes and qualities of tyrosine phosphorylation of Fak and Pyk2 during epithelial-mesenchymal transdifferentiation and cell migration: analysis of specific phosphorylation events using site-directed antibodies. Oncogene, 20, 2626–2635.PubMed
84.
Zurück zum Zitat Prunier, C., & Howe, P. H. (2005). Disabled-2 (Dab2) is required for transforming growth factor beta-induced epithelial to mesenchymal transition (EMT). Journal of Biological Chemistry, 280, 17540–17548.PubMed Prunier, C., & Howe, P. H. (2005). Disabled-2 (Dab2) is required for transforming growth factor beta-induced epithelial to mesenchymal transition (EMT). Journal of Biological Chemistry, 280, 17540–17548.PubMed
85.
Zurück zum Zitat Strizzi, L., Bianco, C., Normanno, N., Seno, M., Wechselberger, C., Wallace-Jones, B., et al. (2004). Epithelial mesenchymal transition is a characteristic of hyperplasias and tumors in mammary gland from MMTV-Cripto-1 transgenic mice. Journal of Cellular Physiology, 201, 266–276.PubMed Strizzi, L., Bianco, C., Normanno, N., Seno, M., Wechselberger, C., Wallace-Jones, B., et al. (2004). Epithelial mesenchymal transition is a characteristic of hyperplasias and tumors in mammary gland from MMTV-Cripto-1 transgenic mice. Journal of Cellular Physiology, 201, 266–276.PubMed
86.
Zurück zum Zitat Rodrigo, J. P., Dominguez, F., Suarez, V., Canel, M., Secades, P., & Chiara, M. D. (2007). Focal adhesion kinase and E-cadherin as markers for nodal metastasis in laryngeal cancer. Archives of Otolaryngology-head & Neck Surgery, 133, 145–150. Rodrigo, J. P., Dominguez, F., Suarez, V., Canel, M., Secades, P., & Chiara, M. D. (2007). Focal adhesion kinase and E-cadherin as markers for nodal metastasis in laryngeal cancer. Archives of Otolaryngology-head & Neck Surgery, 133, 145–150.
87.
Zurück zum Zitat Wang, X., Zheng, M., Liu, G., Xia, W., McKeown-Longo, P. J., Hung, M. C., et al. (2007). Kruppel-like factor 8 induces epithelial to mesenchymal transition and epithelial cell invasion. Cancer Research, 67, 7184–7193.PubMed Wang, X., Zheng, M., Liu, G., Xia, W., McKeown-Longo, P. J., Hung, M. C., et al. (2007). Kruppel-like factor 8 induces epithelial to mesenchymal transition and epithelial cell invasion. Cancer Research, 67, 7184–7193.PubMed
88.
Zurück zum Zitat Wang, X., Urvalek, A. M., Liu, J., & Zhao, J. (2008). Activation of KLF8 transcription by focal adhesion kinase in human ovarian epithelial and cancer cells. Journal of Biological Chemistry, 283, 13934–13942.PubMed Wang, X., Urvalek, A. M., Liu, J., & Zhao, J. (2008). Activation of KLF8 transcription by focal adhesion kinase in human ovarian epithelial and cancer cells. Journal of Biological Chemistry, 283, 13934–13942.PubMed
89.
Zurück zum Zitat Wang, X., & Zhao, J. (2007). KLF8 transcription factor participates in oncogenic transformation. Oncogene, 26, 456–461.PubMed Wang, X., & Zhao, J. (2007). KLF8 transcription factor participates in oncogenic transformation. Oncogene, 26, 456–461.PubMed
90.
Zurück zum Zitat Polte, T. R., Naftilan, A. J., & Hanks, S. K. (1994). Focal adhesion kinase is abundant in developing blood vessels and elevation of its phosphotyrosine content in vascular smooth muscle cells is a rapid response to angiotensin II. Journal of Cellular Biochemistry, 55, 106–119.PubMed Polte, T. R., Naftilan, A. J., & Hanks, S. K. (1994). Focal adhesion kinase is abundant in developing blood vessels and elevation of its phosphotyrosine content in vascular smooth muscle cells is a rapid response to angiotensin II. Journal of Cellular Biochemistry, 55, 106–119.PubMed
91.
Zurück zum Zitat Qi, J. H., & Claesson-Welsh, L. (2001). VEGF-induced activation of phosphoinositide 3-kinase is dependent on focal adhesion kinase. Experimental Cell Research, 263, 173–182.PubMed Qi, J. H., & Claesson-Welsh, L. (2001). VEGF-induced activation of phosphoinositide 3-kinase is dependent on focal adhesion kinase. Experimental Cell Research, 263, 173–182.PubMed
92.
Zurück zum Zitat Kim, I., Kim, H. G., Moon, S. O., Chae, S. W., So, J. N., Koh, K. N., et al. (2000). Angiopoietin-1 induces endothelial cell sprouting through the activation of focal adhesion kinase and plasmin secretion. Circulation Research, 86, 952–959.PubMed Kim, I., Kim, H. G., Moon, S. O., Chae, S. W., So, J. N., Koh, K. N., et al. (2000). Angiopoietin-1 induces endothelial cell sprouting through the activation of focal adhesion kinase and plasmin secretion. Circulation Research, 86, 952–959.PubMed
93.
Zurück zum Zitat Brooks, P. C., Montgomery, A. M., Rosenfeld, M., Reisfeld, R. A., Hu, T., Klier, G., et al. (1994). Integrin alpha v beta 3 antagonists promote tumor regression by inducing apoptosis of angiogenic blood vessels. Cell, 79, 1157–1164.PubMed Brooks, P. C., Montgomery, A. M., Rosenfeld, M., Reisfeld, R. A., Hu, T., Klier, G., et al. (1994). Integrin alpha v beta 3 antagonists promote tumor regression by inducing apoptosis of angiogenic blood vessels. Cell, 79, 1157–1164.PubMed
94.
Zurück zum Zitat Brooks, P. C., Stromblad, S., Klemke, R., Visscher, D., Sarkar, F. H., & Cheresh, D. A. (1995). Antiintegrin alpha v beta 3 blocks human breast cancer growth and angiogenesis in human skin. Journal of Clinical Investigation, 96, 1815–1822.PubMed Brooks, P. C., Stromblad, S., Klemke, R., Visscher, D., Sarkar, F. H., & Cheresh, D. A. (1995). Antiintegrin alpha v beta 3 blocks human breast cancer growth and angiogenesis in human skin. Journal of Clinical Investigation, 96, 1815–1822.PubMed
95.
Zurück zum Zitat Eliceiri, B. P., & Cheresh, D. A. (1999). The role of alphav integrins during angiogenesis: insights into potential mechanisms of action and clinical development. Journal of Clinical Investigation, 103, 1227–1230.PubMed Eliceiri, B. P., & Cheresh, D. A. (1999). The role of alphav integrins during angiogenesis: insights into potential mechanisms of action and clinical development. Journal of Clinical Investigation, 103, 1227–1230.PubMed
96.
Zurück zum Zitat Eliceiri, B. P., Puente, X. S., Hood, J. D., Stupack, D. G., Schlaepfer, D. D., Huang, X. Z., et al. (2002). Src-mediated coupling of focal adhesion kinase to integrin alpha(v)beta5 in vascular endothelial growth factor signaling. Journal of Cell Biology, 157, 149–160.PubMed Eliceiri, B. P., Puente, X. S., Hood, J. D., Stupack, D. G., Schlaepfer, D. D., Huang, X. Z., et al. (2002). Src-mediated coupling of focal adhesion kinase to integrin alpha(v)beta5 in vascular endothelial growth factor signaling. Journal of Cell Biology, 157, 149–160.PubMed
97.
Zurück zum Zitat Ilic, D., Kovacic, B., McDonagh, S., Jin, F., Baumbusch, C., Gardner, D. G., et al. (2003). Focal adhesion kinase is required for blood vessel morphogenesis. Circulation Research, 92, 300–307.PubMed Ilic, D., Kovacic, B., McDonagh, S., Jin, F., Baumbusch, C., Gardner, D. G., et al. (2003). Focal adhesion kinase is required for blood vessel morphogenesis. Circulation Research, 92, 300–307.PubMed
98.
Zurück zum Zitat Braren, R., Hu, H., Kim, Y. H., Beggs, H. E., Reichardt, L. F., & Wang, R. (2006). Endothelial FAK is essential for vascular network stability, cell survival, and lamellipodial formation. Journal of Cell Biology, 172, 151–162.PubMed Braren, R., Hu, H., Kim, Y. H., Beggs, H. E., Reichardt, L. F., & Wang, R. (2006). Endothelial FAK is essential for vascular network stability, cell survival, and lamellipodial formation. Journal of Cell Biology, 172, 151–162.PubMed
99.
Zurück zum Zitat Peng, X., Ueda, H., Zhou, H., Stokol, T., Shen, T. L., Alcaraz, A., et al. (2004). Overexpression of focal adhesion kinase in vascular endothelial cells promotes angiogenesis in transgenic mice. Cardiovascular Research, 64, 421–430.PubMed Peng, X., Ueda, H., Zhou, H., Stokol, T., Shen, T. L., Alcaraz, A., et al. (2004). Overexpression of focal adhesion kinase in vascular endothelial cells promotes angiogenesis in transgenic mice. Cardiovascular Research, 64, 421–430.PubMed
100.
Zurück zum Zitat Abdel-Ghany, M., Cheng, H. C., Elble, R. C., & Pauli, B. U. (2002). Focal adhesion kinase activated by beta(4) integrin ligation to mCLCA1 mediates early metastatic growth. Journal of Biological Chemistry, 277, 34391–34400.PubMed Abdel-Ghany, M., Cheng, H. C., Elble, R. C., & Pauli, B. U. (2002). Focal adhesion kinase activated by beta(4) integrin ligation to mCLCA1 mediates early metastatic growth. Journal of Biological Chemistry, 277, 34391–34400.PubMed
101.
Zurück zum Zitat Benlimame, N., He, Q., Jie, S., Xiao, D., Xu, Y. J., Loignon, M., et al. (2005). FAK signaling is critical for ErbB-2/ErbB-3 receptor cooperation for oncogenic transformation and invasion. Journal of Cell Biology, 171, 505–516.PubMed Benlimame, N., He, Q., Jie, S., Xiao, D., Xu, Y. J., Loignon, M., et al. (2005). FAK signaling is critical for ErbB-2/ErbB-3 receptor cooperation for oncogenic transformation and invasion. Journal of Cell Biology, 171, 505–516.PubMed
102.
Zurück zum Zitat van Nimwegen, M. J., Verkoeijen, S., van Buren, L., Burg, D., & van de Water, B. (2005). Requirement for focal adhesion kinase in the early phase of mammary adenocarcinoma lung metastasis formation. Cancer Research, 65, 4698–4706.PubMed van Nimwegen, M. J., Verkoeijen, S., van Buren, L., Burg, D., & van de Water, B. (2005). Requirement for focal adhesion kinase in the early phase of mammary adenocarcinoma lung metastasis formation. Cancer Research, 65, 4698–4706.PubMed
103.
Zurück zum Zitat Mitra, S. K., Lim, S. T., Chi, A., & Schlaepfer, D. D. (2006). Intrinsic focal adhesion kinase activity controls orthotopic breast carcinoma metastasis via the regulation of urokinase plasminogen activator expression in a syngeneic tumor model. Oncogene, 25, 4429–4440.PubMed Mitra, S. K., Lim, S. T., Chi, A., & Schlaepfer, D. D. (2006). Intrinsic focal adhesion kinase activity controls orthotopic breast carcinoma metastasis via the regulation of urokinase plasminogen activator expression in a syngeneic tumor model. Oncogene, 25, 4429–4440.PubMed
104.
Zurück zum Zitat Wang, D., Grammer, J. R., Cobbs, C. S., Stewart Jr., J. E., Liu, Z., Rhoden, R., et al. (2000). p125 focal adhesion kinase promotes malignant astrocytoma cell proliferation in vivo. Journal of Cell Science, 113, 4221–4230.PubMed Wang, D., Grammer, J. R., Cobbs, C. S., Stewart Jr., J. E., Liu, Z., Rhoden, R., et al. (2000). p125 focal adhesion kinase promotes malignant astrocytoma cell proliferation in vivo. Journal of Cell Science, 113, 4221–4230.PubMed
105.
Zurück zum Zitat McLean, G. W., Brown, K., Arbuckle, M. I., Wyke, A. W., Pikkarainen, T., Ruoslahti, E., et al. (2001). Decreased focal adhesion kinase suppresses papilloma formation during experimental mouse skin carcinogenesis. Cancer Research, 61, 8385–8389.PubMed McLean, G. W., Brown, K., Arbuckle, M. I., Wyke, A. W., Pikkarainen, T., Ruoslahti, E., et al. (2001). Decreased focal adhesion kinase suppresses papilloma formation during experimental mouse skin carcinogenesis. Cancer Research, 61, 8385–8389.PubMed
106.
Zurück zum Zitat McLean, G. W., Komiyama, N. H., Serrels, B., Asano, H., Reynolds, L., Conti, F., et al. (2004). Specific deletion of focal adhesion kinase suppresses tumor formation and blocks malignant progression. Genes & Development, 18, 2998–3003. McLean, G. W., Komiyama, N. H., Serrels, B., Asano, H., Reynolds, L., Conti, F., et al. (2004). Specific deletion of focal adhesion kinase suppresses tumor formation and blocks malignant progression. Genes & Development, 18, 2998–3003.
107.
Zurück zum Zitat Lahlou, H., Sanguin-Gendreau, V., Zuo, D., Cardiff, R. D., McLean, G. W., Frame, M. C., et al. (2007). Mammary epithelial-specific disruption of the focal adhesion kinase blocks mammary tumor progression. Proceedings of the National Academy of Sciences of the United States of America, 104, 20302–20307.PubMed Lahlou, H., Sanguin-Gendreau, V., Zuo, D., Cardiff, R. D., McLean, G. W., Frame, M. C., et al. (2007). Mammary epithelial-specific disruption of the focal adhesion kinase blocks mammary tumor progression. Proceedings of the National Academy of Sciences of the United States of America, 104, 20302–20307.PubMed
108.
Zurück zum Zitat Owens, L. V., Xu, L., Craven, R. J., Dent, G. A., Weiner, T. M., Kornberg, L., et al. (1995). Overexpression of the focal adhesion kinase (p125FAK) in invasive human tumors. Cancer Research, 55, 2752–2755.PubMed Owens, L. V., Xu, L., Craven, R. J., Dent, G. A., Weiner, T. M., Kornberg, L., et al. (1995). Overexpression of the focal adhesion kinase (p125FAK) in invasive human tumors. Cancer Research, 55, 2752–2755.PubMed
109.
Zurück zum Zitat Owens, L. V., Xu, L., Dent, G. A., Yang, X., Sturge, G. C., Craven, R. J., et al. (1996). Focal adhesion kinase as a marker of invasive potential in differentiated human thyroid cancer. Annals of Surgical Oncology, 3, 100–105.PubMed Owens, L. V., Xu, L., Dent, G. A., Yang, X., Sturge, G. C., Craven, R. J., et al. (1996). Focal adhesion kinase as a marker of invasive potential in differentiated human thyroid cancer. Annals of Surgical Oncology, 3, 100–105.PubMed
110.
Zurück zum Zitat Weiner, T. M., Liu, E. T., Craven, R. J., & Cance, W. G. (1993). Expression of focal adhesion kinase gene and invasive cancer. Lancet, 342, 1024–1025.PubMed Weiner, T. M., Liu, E. T., Craven, R. J., & Cance, W. G. (1993). Expression of focal adhesion kinase gene and invasive cancer. Lancet, 342, 1024–1025.PubMed
111.
Zurück zum Zitat Agochiya, M., Brunton, V. G., Owens, D. W., Parkinson, E. K., Paraskeva, C., Keith, W. N., et al. (1999). Increased dosage and amplification of the focal adhesion kinase gene in human cancer cells. Oncogene, 18, 5646–5653.PubMed Agochiya, M., Brunton, V. G., Owens, D. W., Parkinson, E. K., Paraskeva, C., Keith, W. N., et al. (1999). Increased dosage and amplification of the focal adhesion kinase gene in human cancer cells. Oncogene, 18, 5646–5653.PubMed
112.
Zurück zum Zitat Tremblay, L., Hauck, W., Aprikian, A. G., Begin, L. R., Chapdelaine, A., & Chevalier, S. (1996). Focal adhesion kinase (pp125FAK) expression, activation and association with paxillin and p50CSK in human metastatic prostate carcinoma. International Journal of Cancer, 68, 164–171. Tremblay, L., Hauck, W., Aprikian, A. G., Begin, L. R., Chapdelaine, A., & Chevalier, S. (1996). Focal adhesion kinase (pp125FAK) expression, activation and association with paxillin and p50CSK in human metastatic prostate carcinoma. International Journal of Cancer, 68, 164–171.
113.
Zurück zum Zitat Zagzag, D., Friedlander, D. R., Margolis, B., Grumet, M., Semenza, G. L., Zhong, H., et al. (2000). Molecular events implicated in brain tumor angiogenesis and invasion. Pediatric Neurosurgery, 33, 49–55.PubMed Zagzag, D., Friedlander, D. R., Margolis, B., Grumet, M., Semenza, G. L., Zhong, H., et al. (2000). Molecular events implicated in brain tumor angiogenesis and invasion. Pediatric Neurosurgery, 33, 49–55.PubMed
114.
Zurück zum Zitat Wang, J. F., Park, I. W., & Groopman, J. E. (2000). Stromal cell-derived factor-1alpha stimulates tyrosine phosphorylation of multiple focal adhesion proteins and induces migration of hematopoietic progenitor cells: roles of phosphoinositide-3 kinase and protein kinase C. Blood, 95, 2505–2513.PubMed Wang, J. F., Park, I. W., & Groopman, J. E. (2000). Stromal cell-derived factor-1alpha stimulates tyrosine phosphorylation of multiple focal adhesion proteins and induces migration of hematopoietic progenitor cells: roles of phosphoinositide-3 kinase and protein kinase C. Blood, 95, 2505–2513.PubMed
115.
Zurück zum Zitat Gutenberg, A., Bruck, W., Buchfelder, M., & Ludwig, H. C. (2004). Expression of tyrosine kinases FAK and Pyk2 in 331 human astrocytomas. Acta Neuropathologica, 108, 224–230.PubMed Gutenberg, A., Bruck, W., Buchfelder, M., & Ludwig, H. C. (2004). Expression of tyrosine kinases FAK and Pyk2 in 331 human astrocytomas. Acta Neuropathologica, 108, 224–230.PubMed
116.
Zurück zum Zitat Hecker, T. P., Grammer, J. R., Gillespie, G. Y., Stewart Jr., J., & Gladson, C. L. (2002). Focal adhesion kinase enhances signaling through the Shc/extracellular signal-regulated kinase pathway in anaplastic astrocytoma tumor biopsy samples. Cancer Research, 62, 2699–2707.PubMed Hecker, T. P., Grammer, J. R., Gillespie, G. Y., Stewart Jr., J., & Gladson, C. L. (2002). Focal adhesion kinase enhances signaling through the Shc/extracellular signal-regulated kinase pathway in anaplastic astrocytoma tumor biopsy samples. Cancer Research, 62, 2699–2707.PubMed
117.
Zurück zum Zitat Jones, G., Machado Jr., J., & Merlo, A. (2001). Loss of focal adhesion kinase (FAK) inhibits epidermal growth factor receptor-dependent migration and induces aggregation of nh(2)-terminal FAK in the nuclei of apoptotic glioblastoma cells. Cancer Research, 61, 4978–4981.PubMed Jones, G., Machado Jr., J., & Merlo, A. (2001). Loss of focal adhesion kinase (FAK) inhibits epidermal growth factor receptor-dependent migration and induces aggregation of nh(2)-terminal FAK in the nuclei of apoptotic glioblastoma cells. Cancer Research, 61, 4978–4981.PubMed
118.
Zurück zum Zitat Garcia, S., Dales, J. P., Charafe-Jauffret, E., Carpentier-Meunier, S., Andrac-Meyer, L., Jacquemier, J., et al. (2007). Overexpression of c-Met and of the transducers PI3K, FAK and JAK in breast carcinomas correlates with shorter survival and neoangiogenesis. International Journal of Oncology, 31, 49–58.PubMed Garcia, S., Dales, J. P., Charafe-Jauffret, E., Carpentier-Meunier, S., Andrac-Meyer, L., Jacquemier, J., et al. (2007). Overexpression of c-Met and of the transducers PI3K, FAK and JAK in breast carcinomas correlates with shorter survival and neoangiogenesis. International Journal of Oncology, 31, 49–58.PubMed
119.
Zurück zum Zitat Cance, W. G., Harris, J. E., Iacocca, M. V., Roche, E., Yang, X., Chang, J., et al. (2000). Immunohistochemical analyses of focal adhesion kinase expression in benign and malignant human breast and colon tissues: correlation with preinvasive and invasive phenotypes. Clinical Cancer Research, 6, 2417–2423.PubMed Cance, W. G., Harris, J. E., Iacocca, M. V., Roche, E., Yang, X., Chang, J., et al. (2000). Immunohistochemical analyses of focal adhesion kinase expression in benign and malignant human breast and colon tissues: correlation with preinvasive and invasive phenotypes. Clinical Cancer Research, 6, 2417–2423.PubMed
120.
Zurück zum Zitat Lark, A. L., Livasy, C. A., Dressler, L., Moore, D. T., Millikan, R. C., Geradts, J., et al. (2005). High focal adhesion kinase expression in invasive breast carcinomas is associated with an aggressive phenotype. Modern Pathology, 18, 1289–1294.PubMed Lark, A. L., Livasy, C. A., Dressler, L., Moore, D. T., Millikan, R. C., Geradts, J., et al. (2005). High focal adhesion kinase expression in invasive breast carcinomas is associated with an aggressive phenotype. Modern Pathology, 18, 1289–1294.PubMed
121.
Zurück zum Zitat Su, J. M., Gui, L., Zhou, Y. P., & Zha, X. L. (2002). Expression of focal adhesion kinase and alpha5 and beta1 integrins in carcinomas and its clinical significance. World Journal of Gastroenterology, 8, 613–618.PubMed Su, J. M., Gui, L., Zhou, Y. P., & Zha, X. L. (2002). Expression of focal adhesion kinase and alpha5 and beta1 integrins in carcinomas and its clinical significance. World Journal of Gastroenterology, 8, 613–618.PubMed
122.
Zurück zum Zitat Gabriel, B., zur Hausen, A., Stickeler, E., Dietz, C., Gitsch, G., Fischer, D. C., et al. (2006). Weak expression of focal adhesion kinase (pp125FAK) in patients with cervical cancer is associated with poor disease outcome. Clinical Cancer Research, 12, 2476–2483.PubMed Gabriel, B., zur Hausen, A., Stickeler, E., Dietz, C., Gitsch, G., Fischer, D. C., et al. (2006). Weak expression of focal adhesion kinase (pp125FAK) in patients with cervical cancer is associated with poor disease outcome. Clinical Cancer Research, 12, 2476–2483.PubMed
123.
Zurück zum Zitat Han, N. M., Fleming, R. Y., Curley, S. A., & Gallick, G. E. (1997). Overexpression of focal adhesion kinase (p125FAK) in human colorectal carcinoma liver metastases: independence from c-src or c-yes activation. Annals of Surgical Oncology, 4, 264–268.PubMed Han, N. M., Fleming, R. Y., Curley, S. A., & Gallick, G. E. (1997). Overexpression of focal adhesion kinase (p125FAK) in human colorectal carcinoma liver metastases: independence from c-src or c-yes activation. Annals of Surgical Oncology, 4, 264–268.PubMed
124.
Zurück zum Zitat Ayaki, M., Komatsu, K., Mukai, M., Murata, K., Kameyama, M., Ishiguro, S., et al. (2001). Reduced expression of focal adhesion kinase in liver metastases compared with matched primary human colorectal adenocarcinomas. Clinical Cancer Research, 7, 3106–3112.PubMed Ayaki, M., Komatsu, K., Mukai, M., Murata, K., Kameyama, M., Ishiguro, S., et al. (2001). Reduced expression of focal adhesion kinase in liver metastases compared with matched primary human colorectal adenocarcinomas. Clinical Cancer Research, 7, 3106–3112.PubMed
125.
Zurück zum Zitat Lark, A. L., Livasy, C. A., Calvo, B., Caskey, L., Moore, D. T., Yang, X., et al. (2003). Overexpression of focal adhesion kinase in primary colorectal carcinomas and colorectal liver metastases: immunohistochemistry and real-time PCR analyses. Clinical Cancer Research, 9, 215–222.PubMed Lark, A. L., Livasy, C. A., Calvo, B., Caskey, L., Moore, D. T., Yang, X., et al. (2003). Overexpression of focal adhesion kinase in primary colorectal carcinomas and colorectal liver metastases: immunohistochemistry and real-time PCR analyses. Clinical Cancer Research, 9, 215–222.PubMed
126.
Zurück zum Zitat Theocharis, S. E., Kouraklis, G. P., Kakisis, J. D., Kanelli, H. G., Apostolakou, F. E., Karatzas, G. M., et al. (2003). Focal adhesion kinase expression is not a prognostic predictor in colon adenocarcinoma patients. European Journal of Surgical Oncology, 29, 571–574.PubMed Theocharis, S. E., Kouraklis, G. P., Kakisis, J. D., Kanelli, H. G., Apostolakou, F. E., Karatzas, G. M., et al. (2003). Focal adhesion kinase expression is not a prognostic predictor in colon adenocarcinoma patients. European Journal of Surgical Oncology, 29, 571–574.PubMed
127.
Zurück zum Zitat Yu, H. G., Tong, S. L., Ding, Y. M., Ding, J., Fang, X. M., Zhang, X. F., et al. (2006). Enhanced expression of cholecystokinin-2 receptor promotes the progression of colon cancer through activation of focal adhesion kinase. International Journal of Cancer, 119, 2724–2732. Yu, H. G., Tong, S. L., Ding, Y. M., Ding, J., Fang, X. M., Zhang, X. F., et al. (2006). Enhanced expression of cholecystokinin-2 receptor promotes the progression of colon cancer through activation of focal adhesion kinase. International Journal of Cancer, 119, 2724–2732.
128.
Zurück zum Zitat Livasy, C. A., Moore, D., Cance, W. G., & Lininger, R. A. (2004). Focal adhesion kinase overexpression in endometrial neoplasia. Applied Immunohistochemistry & Molecular Morphology, 12, 342–345. Livasy, C. A., Moore, D., Cance, W. G., & Lininger, R. A. (2004). Focal adhesion kinase overexpression in endometrial neoplasia. Applied Immunohistochemistry & Molecular Morphology, 12, 342–345.
129.
Zurück zum Zitat Miyazaki, T., Kato, H., Nakajima, M., Sohda, M., Fukai, Y., Masuda, N., et al. (2003). FAK overexpression is correlated with tumour invasiveness and lymph node metastasis in oesophageal squamous cell carcinoma. British Journal of Cancer, 89, 140–145.PubMed Miyazaki, T., Kato, H., Nakajima, M., Sohda, M., Fukai, Y., Masuda, N., et al. (2003). FAK overexpression is correlated with tumour invasiveness and lymph node metastasis in oesophageal squamous cell carcinoma. British Journal of Cancer, 89, 140–145.PubMed
130.
Zurück zum Zitat Canel, M., Secades, P., Rodrigo, J. P., Cabanillas, R., Herrero, A., Suarez, C., et al. (2006). Overexpression of focal adhesion kinase in head and neck squamous cell carcinoma is independent of fak gene copy number. Clinical Cancer Research, 12, 3272–3279.PubMed Canel, M., Secades, P., Rodrigo, J. P., Cabanillas, R., Herrero, A., Suarez, C., et al. (2006). Overexpression of focal adhesion kinase in head and neck squamous cell carcinoma is independent of fak gene copy number. Clinical Cancer Research, 12, 3272–3279.PubMed
131.
Zurück zum Zitat Fujii, T., Koshikawa, K., Nomoto, S., Okochi, O., Kaneko, T., Inoue, S., et al. (2004). Focal adhesion kinase is overexpressed in hepatocellular carcinoma and can be served as an independent prognostic factor. Journal of Hepatology, 41, 104–111.PubMed Fujii, T., Koshikawa, K., Nomoto, S., Okochi, O., Kaneko, T., Inoue, S., et al. (2004). Focal adhesion kinase is overexpressed in hepatocellular carcinoma and can be served as an independent prognostic factor. Journal of Hepatology, 41, 104–111.PubMed
132.
Zurück zum Zitat Itoh, S., Maeda, T., Shimada, M., Aishima, S., Shirabe, K., Tanaka, S., et al. (2004). Role of expression of focal adhesion kinase in progression of hepatocellular carcinoma. Clinical Cancer Research, 10, 2812–2817.PubMed Itoh, S., Maeda, T., Shimada, M., Aishima, S., Shirabe, K., Tanaka, S., et al. (2004). Role of expression of focal adhesion kinase in progression of hepatocellular carcinoma. Clinical Cancer Research, 10, 2812–2817.PubMed
133.
Zurück zum Zitat Miyasaka, Y., Enomoto, N., Nagayama, K., Izumi, N., Marumo, F., Watanabe, M., et al. (2001). Analysis of differentially expressed genes in human hepatocellular carcinoma using suppression subtractive hybridization. British Journal of Cancer, 85, 228–234.PubMed Miyasaka, Y., Enomoto, N., Nagayama, K., Izumi, N., Marumo, F., Watanabe, M., et al. (2001). Analysis of differentially expressed genes in human hepatocellular carcinoma using suppression subtractive hybridization. British Journal of Cancer, 85, 228–234.PubMed
134.
Zurück zum Zitat Yuan, Z., Fan, J., Wu, Z. Q., Zhou, J., & Qiu, S. J. (2007). [Focal adhesion kinase mRNA overexpression in hepatocellular carcinoma HCC) and correlation thereof with prognosis of HCC]. Zhonghua Yi Xue Za Zhi, 87, 1256–1259.PubMed Yuan, Z., Fan, J., Wu, Z. Q., Zhou, J., & Qiu, S. J. (2007). [Focal adhesion kinase mRNA overexpression in hepatocellular carcinoma HCC) and correlation thereof with prognosis of HCC]. Zhonghua Yi Xue Za Zhi, 87, 1256–1259.PubMed
135.
Zurück zum Zitat Aronsohn, M. S., Brown, H. M., Hauptman, G., & Kornberg, L. J. (2003). Expression of focal adhesion kinase and phosphorylated focal adhesion kinase in squamous cell carcinoma of the larynx. Laryngoscope, 113, 1944–1948.PubMed Aronsohn, M. S., Brown, H. M., Hauptman, G., & Kornberg, L. J. (2003). Expression of focal adhesion kinase and phosphorylated focal adhesion kinase in squamous cell carcinoma of the larynx. Laryngoscope, 113, 1944–1948.PubMed
136.
Zurück zum Zitat Yu, H. G., Schrader, H., Otte, J. M., Schmidt, W. E., & Schmitz, F. (2004). Rapid tyrosine phosphorylation of focal adhesion kinase, paxillin, and p130Cas by gastrin in human colon cancer cells. Biochemical Pharmacology, 67, 135–146.PubMed Yu, H. G., Schrader, H., Otte, J. M., Schmidt, W. E., & Schmitz, F. (2004). Rapid tyrosine phosphorylation of focal adhesion kinase, paxillin, and p130Cas by gastrin in human colon cancer cells. Biochemical Pharmacology, 67, 135–146.PubMed
137.
Zurück zum Zitat Carelli, S., Zadra, G., Vaira, V., Falleni, M., Bottiglieri, L., Nosotti, M., et al. (2006). Up-regulation of focal adhesion kinase in non-small cell lung cancer. Lung Cancer, 53, 263–271.PubMed Carelli, S., Zadra, G., Vaira, V., Falleni, M., Bottiglieri, L., Nosotti, M., et al. (2006). Up-regulation of focal adhesion kinase in non-small cell lung cancer. Lung Cancer, 53, 263–271.PubMed
138.
Zurück zum Zitat Hsu, N. Y., Chen, C. Y., Hsu, C. P., Lin, T. Y., Chou, M. C., Chiou, S. H., et al. (2007). Prognostic significance of expression of nm23-H1 and focal adhesion kinase in non-small cell lung cancer. Oncology Reports, 18, 81–85.PubMed Hsu, N. Y., Chen, C. Y., Hsu, C. P., Lin, T. Y., Chou, M. C., Chiou, S. H., et al. (2007). Prognostic significance of expression of nm23-H1 and focal adhesion kinase in non-small cell lung cancer. Oncology Reports, 18, 81–85.PubMed
139.
Zurück zum Zitat Imaizumi, M., Nishimura, M., Takeuchi, S., Murase, M., & Hamaguchi, M. (1997). Role of tyrosine specific phosphorylation of cellular proteins, especially EGF receptor and p125FAK in human lung cancer cells. Lung Cancer, 17, 69–84.PubMed Imaizumi, M., Nishimura, M., Takeuchi, S., Murase, M., & Hamaguchi, M. (1997). Role of tyrosine specific phosphorylation of cellular proteins, especially EGF receptor and p125FAK in human lung cancer cells. Lung Cancer, 17, 69–84.PubMed
140.
Zurück zum Zitat Nishimura, M., Machida, K., Imaizumi, M., Abe, T., Umeda, T., Takeshima, E., et al. (1996). Tyrosine phosphorylation of 100–130 kDa proteins in lung cancer correlates with poor prognosis. British Journal of Cancer, 74, 780–787.PubMed Nishimura, M., Machida, K., Imaizumi, M., Abe, T., Umeda, T., Takeshima, E., et al. (1996). Tyrosine phosphorylation of 100–130 kDa proteins in lung cancer correlates with poor prognosis. British Journal of Cancer, 74, 780–787.PubMed
141.
Zurück zum Zitat Wang, X. Y., Liu, T., Zhu, C. Z., Li, Y., Sun, R., Sun, C. Y., et al. (2005). Expression of KAI1, MRP-1, and FAK proteins in lung cancer detected by high-density tissue microarray. Ai Zheng, 24, 1091–1095.PubMed Wang, X. Y., Liu, T., Zhu, C. Z., Li, Y., Sun, R., Sun, C. Y., et al. (2005). Expression of KAI1, MRP-1, and FAK proteins in lung cancer detected by high-density tissue microarray. Ai Zheng, 24, 1091–1095.PubMed
142.
Zurück zum Zitat He, Z. X., He, H. W., Wang, D., & Fang, M. X. (2006). Expression and clinical significance of focal adhesion kinase in oral squamous cell carcinoma. Sichuan Da Xue Xue Bao Yi Xue Ban, 37, 876–878.PubMed He, Z. X., He, H. W., Wang, D., & Fang, M. X. (2006). Expression and clinical significance of focal adhesion kinase in oral squamous cell carcinoma. Sichuan Da Xue Xue Bao Yi Xue Ban, 37, 876–878.PubMed
143.
Zurück zum Zitat Kornberg, L. J. (1998). Focal adhesion kinase expression in oral cancers. Head Neck, 20, 634–639.PubMed Kornberg, L. J. (1998). Focal adhesion kinase expression in oral cancers. Head Neck, 20, 634–639.PubMed
144.
Zurück zum Zitat Grisaru-Granovsky, S., Salah, Z., Maoz, M., Pruss, D., Beller, U., & Bar-Shavit, R. (2005). Differential expression of protease activated receptor 1 (Par1) and pY397FAK in benign and malignant human ovarian tissue samples. International Journal of Cancer, 113, 372–378. Grisaru-Granovsky, S., Salah, Z., Maoz, M., Pruss, D., Beller, U., & Bar-Shavit, R. (2005). Differential expression of protease activated receptor 1 (Par1) and pY397FAK in benign and malignant human ovarian tissue samples. International Journal of Cancer, 113, 372–378.
145.
Zurück zum Zitat Judson, P. L., He, X., Cance, W. G., & Van Le, L. (1999). Overexpression of focal adhesion kinase, a protein tyrosine kinase, in ovarian carcinoma. Cancer, 86, 1551–1556.PubMed Judson, P. L., He, X., Cance, W. G., & Van Le, L. (1999). Overexpression of focal adhesion kinase, a protein tyrosine kinase, in ovarian carcinoma. Cancer, 86, 1551–1556.PubMed
146.
Zurück zum Zitat Sood, A. K., Coffin, J. E., Schneider, G. B., Fletcher, M. S., DeYoung, B. R., Gruman, L. M., et al. (2004). Biological significance of focal adhesion kinase in ovarian cancer: role in migration and invasion. American Journal of Pathology, 165, 1087–1095.PubMed Sood, A. K., Coffin, J. E., Schneider, G. B., Fletcher, M. S., DeYoung, B. R., Gruman, L. M., et al. (2004). Biological significance of focal adhesion kinase in ovarian cancer: role in migration and invasion. American Journal of Pathology, 165, 1087–1095.PubMed
147.
Zurück zum Zitat Rovin, J. D., Frierson Jr., H. F., Ledinh, W., Parsons, J. T., & Adams, R. B. (2002). Expression of focal adhesion kinase in normal and pathologic human prostate tissues. Prostate, 53, 124–132.PubMed Rovin, J. D., Frierson Jr., H. F., Ledinh, W., Parsons, J. T., & Adams, R. B. (2002). Expression of focal adhesion kinase in normal and pathologic human prostate tissues. Prostate, 53, 124–132.PubMed
148.
Zurück zum Zitat Kim, S. J., Park, J. W., Yoon, J. S., Mok, J. O., Kim, Y. J., Park, H. K., et al. (2004). Increased expression of focal adhesion kinase in thyroid cancer: immunohistochemical study. Journal of Korean Medical Science, 19, 710–715.PubMedCrossRef Kim, S. J., Park, J. W., Yoon, J. S., Mok, J. O., Kim, Y. J., Park, H. K., et al. (2004). Increased expression of focal adhesion kinase in thyroid cancer: immunohistochemical study. Journal of Korean Medical Science, 19, 710–715.PubMedCrossRef
149.
Zurück zum Zitat Gabarra-Niecko, V., Schaller, M. D., & Dunty, J. M. (2003). FAK regulates biological processes important for the pathogenesis of cancer. Cancer Metastasis Reviews, 22, 359–374.PubMed Gabarra-Niecko, V., Schaller, M. D., & Dunty, J. M. (2003). FAK regulates biological processes important for the pathogenesis of cancer. Cancer Metastasis Reviews, 22, 359–374.PubMed
150.
Zurück zum Zitat Recher, C., Ysebaert, L., Beyne-Rauzy, O., Mansat-De Mas, V., Ruidavets, J. B., Cariven, P., et al. (2004). Expression of focal adhesion kinase in acute myeloid leukemia is associated with enhanced blast migration, increased cellularity, and poor prognosis. Cancer Research, 64, 3191–3197.PubMed Recher, C., Ysebaert, L., Beyne-Rauzy, O., Mansat-De Mas, V., Ruidavets, J. B., Cariven, P., et al. (2004). Expression of focal adhesion kinase in acute myeloid leukemia is associated with enhanced blast migration, increased cellularity, and poor prognosis. Cancer Research, 64, 3191–3197.PubMed
151.
Zurück zum Zitat Schlaepfer, D. D., Mitra, S. K., & Ilic, D. (2004). Control of motile and invasive cell phenotypes by focal adhesion kinase. Biochimica et Biophysica Acta, 1692, 77–102.PubMed Schlaepfer, D. D., Mitra, S. K., & Ilic, D. (2004). Control of motile and invasive cell phenotypes by focal adhesion kinase. Biochimica et Biophysica Acta, 1692, 77–102.PubMed
152.
Zurück zum Zitat Furuyama, K., Doi, R., Mori, T., Toyoda, E., Ito, D., Kami, K., et al. (2006). Clinical significance of focal adhesion kinase in resectable pancreatic cancer. World Journal of Surgery, 30, 219–226.PubMed Furuyama, K., Doi, R., Mori, T., Toyoda, E., Ito, D., Kami, K., et al. (2006). Clinical significance of focal adhesion kinase in resectable pancreatic cancer. World Journal of Surgery, 30, 219–226.PubMed
153.
Zurück zum Zitat Oktay, M. H., Oktay, K., Hamele-Bena, D., Buyuk, A., & Koss, L. G. (2003). Focal adhesion kinase as a marker of malignant phenotype in breast and cervical carcinomas. Human Pathology, 34, 240–245.PubMed Oktay, M. H., Oktay, K., Hamele-Bena, D., Buyuk, A., & Koss, L. G. (2003). Focal adhesion kinase as a marker of malignant phenotype in breast and cervical carcinomas. Human Pathology, 34, 240–245.PubMed
154.
Zurück zum Zitat Madan, R., Smolkin, M. B., Cocker, R., Fayyad, R., & Oktay, M. H. (2006). Focal adhesion proteins as markers of malignant transformation and prognostic indicators in breast carcinoma. Human Pathology, 37, 9–15.PubMed Madan, R., Smolkin, M. B., Cocker, R., Fayyad, R., & Oktay, M. H. (2006). Focal adhesion proteins as markers of malignant transformation and prognostic indicators in breast carcinoma. Human Pathology, 37, 9–15.PubMed
155.
Zurück zum Zitat Okamoto, H., Yasui, K., Zhao, C., Arii, S., & Inazawa, J. (2003). PTK2 and EIF3S3 genes may be amplification targets at 8q23-q24 and are associated with large hepatocellular carcinomas. Hepatology, 38, 1242–1249.PubMed Okamoto, H., Yasui, K., Zhao, C., Arii, S., & Inazawa, J. (2003). PTK2 and EIF3S3 genes may be amplification targets at 8q23-q24 and are associated with large hepatocellular carcinomas. Hepatology, 38, 1242–1249.PubMed
156.
Zurück zum Zitat Golubovskaya, V., Kaur, A., & Cance, W. (2004). Cloning and characterization of the promoter region of human focal adhesion kinase gene: nuclear factor kappa B and p53 binding sites. Biochimica et Biophysica Acta, 1678, 111–125.PubMed Golubovskaya, V., Kaur, A., & Cance, W. (2004). Cloning and characterization of the promoter region of human focal adhesion kinase gene: nuclear factor kappa B and p53 binding sites. Biochimica et Biophysica Acta, 1678, 111–125.PubMed
157.
Zurück zum Zitat Golubovskaya, V. M., & Cance, W. G. (2007). Focal adhesion kinase and p53 signaling in cancer cells. International Review of Cytology, 263, 103–153.PubMed Golubovskaya, V. M., & Cance, W. G. (2007). Focal adhesion kinase and p53 signaling in cancer cells. International Review of Cytology, 263, 103–153.PubMed
158.
Zurück zum Zitat Slack-Davis, J. K., Martin, K. H., Tilghman, R. W., Iwanicki, M., Ung, E. J., Autry, C., et al. (2007). Cellular characterization of a novel focal adhesion kinase inhibitor. Journal of Biological Chemistry, 282, 14845–14852.PubMed Slack-Davis, J. K., Martin, K. H., Tilghman, R. W., Iwanicki, M., Ung, E. J., Autry, C., et al. (2007). Cellular characterization of a novel focal adhesion kinase inhibitor. Journal of Biological Chemistry, 282, 14845–14852.PubMed
159.
Zurück zum Zitat Roberts, W. G., Ung, E., Whalen, P., Cooper, B., Hulford, C., Autry, C., et al. (2008). Antitumor activity and pharmacology of a selective focal adhesion kinase inhibitor, PF-562,271. Cancer Research, 68, 1935–1944.PubMed Roberts, W. G., Ung, E., Whalen, P., Cooper, B., Hulford, C., Autry, C., et al. (2008). Antitumor activity and pharmacology of a selective focal adhesion kinase inhibitor, PF-562,271. Cancer Research, 68, 1935–1944.PubMed
160.
Zurück zum Zitat Bagi, C. M., Roberts, G. W., & Andresen, C. J. (2008). Dual focal adhesion kinase/Pyk2 inhibitor has positive effects on bone tumors: implications for bone metastases. Cancer, 112, 2313–2321.PubMed Bagi, C. M., Roberts, G. W., & Andresen, C. J. (2008). Dual focal adhesion kinase/Pyk2 inhibitor has positive effects on bone tumors: implications for bone metastases. Cancer, 112, 2313–2321.PubMed
161.
Zurück zum Zitat Siu, L. L., Burris, H. A., Mileshkin, L., Camidge, D., Rischin, D. R., Chen, E. X., et al. (2007). Phase 1 study of a focal adhesion kinase (FAK) inhibitor PF-00562271 in patients (pts) with advanced solid tumors. Journal of Clinical Oncology, 25, 3527. Siu, L. L., Burris, H. A., Mileshkin, L., Camidge, D., Rischin, D. R., Chen, E. X., et al. (2007). Phase 1 study of a focal adhesion kinase (FAK) inhibitor PF-00562271 in patients (pts) with advanced solid tumors. Journal of Clinical Oncology, 25, 3527.
162.
Zurück zum Zitat Liu, T. J., LaFortune, T., Honda, T., Ohmori, O., Hatakeyama, S., Meyer, T., et al. (2007). Inhibition of both focal adhesion kinase and insulin-like growth factor-I receptor kinase suppresses glioma proliferation in vitro and in vivo. Molecular Cancer Therapeutics, 6, 1357–1367.PubMed Liu, T. J., LaFortune, T., Honda, T., Ohmori, O., Hatakeyama, S., Meyer, T., et al. (2007). Inhibition of both focal adhesion kinase and insulin-like growth factor-I receptor kinase suppresses glioma proliferation in vitro and in vivo. Molecular Cancer Therapeutics, 6, 1357–1367.PubMed
163.
Zurück zum Zitat Beierle, E. A., Trujillo, A., Nagaram, A., Golubovskaya, V. M., Cance, W. G., & Kurenova, E. V. (2008). TAE226 inhibits human neuroblastoma cell survival. Cancer Investigation, 26, 145–151.PubMed Beierle, E. A., Trujillo, A., Nagaram, A., Golubovskaya, V. M., Cance, W. G., & Kurenova, E. V. (2008). TAE226 inhibits human neuroblastoma cell survival. Cancer Investigation, 26, 145–151.PubMed
164.
Zurück zum Zitat Golubovskaya, V. M., Virnig, C., & Cance, W. G. (2008). TAE226-induced apoptosis in breast cancer cells with overexpressed Src or EGFR. Molecular Carcinogenesis, 47, 222–234.PubMed Golubovskaya, V. M., Virnig, C., & Cance, W. G. (2008). TAE226-induced apoptosis in breast cancer cells with overexpressed Src or EGFR. Molecular Carcinogenesis, 47, 222–234.PubMed
165.
Zurück zum Zitat Halder, J., Lin, Y. G., Merritt, W. M., Spannuth, W. A., Nick, A. M., Honda, T., et al. (2007). Therapeutic efficacy of a novel focal adhesion kinase inhibitor TAE226 in ovarian carcinoma. Cancer Research, 67, 10976–10983.PubMed Halder, J., Lin, Y. G., Merritt, W. M., Spannuth, W. A., Nick, A. M., Honda, T., et al. (2007). Therapeutic efficacy of a novel focal adhesion kinase inhibitor TAE226 in ovarian carcinoma. Cancer Research, 67, 10976–10983.PubMed
166.
Zurück zum Zitat Watanabe, N., Takaoka, M., Sakurama, K., Tomono, Y., Hatakeyama, S., Ohmori, O., et al. (2008). Dual tyrosine kinase inhibitor for focal adhesion kinase and insulin-like growth factor-I receptor exhibits anticancer effect in esophageal adenocarcinoma in vitro and in vivo. Clinical Cancer Research, 14, 4631–4639.PubMed Watanabe, N., Takaoka, M., Sakurama, K., Tomono, Y., Hatakeyama, S., Ohmori, O., et al. (2008). Dual tyrosine kinase inhibitor for focal adhesion kinase and insulin-like growth factor-I receptor exhibits anticancer effect in esophageal adenocarcinoma in vitro and in vivo. Clinical Cancer Research, 14, 4631–4639.PubMed
167.
Zurück zum Zitat Shi, Q., Hjelmeland, A. B., Keir, S. T., Song, L., Wickman, S., Jackson, D., et al. (2007). A novel low-molecular weight inhibitor of focal adhesion kinase, TAE226, inhibits glioma growth. Molecular Carcinogenesis, 46, 488–496.PubMed Shi, Q., Hjelmeland, A. B., Keir, S. T., Song, L., Wickman, S., Jackson, D., et al. (2007). A novel low-molecular weight inhibitor of focal adhesion kinase, TAE226, inhibits glioma growth. Molecular Carcinogenesis, 46, 488–496.PubMed
168.
Zurück zum Zitat Dalerba, P., Cho, R. W., & Clarke, M. F. (2007). Cancer stem cells: models and concepts. Annual Review of Medicine, 58, 267–284.PubMed Dalerba, P., Cho, R. W., & Clarke, M. F. (2007). Cancer stem cells: models and concepts. Annual Review of Medicine, 58, 267–284.PubMed
169.
Zurück zum Zitat Wicha, M. S., Liu, S., & Dontu, G. (2006). Cancer stem cells: an old idea—a paradigm shift. Cancer Research, 66, 1883–1890 discussion 1895–1886.PubMed Wicha, M. S., Liu, S., & Dontu, G. (2006). Cancer stem cells: an old idea—a paradigm shift. Cancer Research, 66, 1883–1890 discussion 1895–1886.PubMed
170.
Zurück zum Zitat Shackleton, M., Vaillant, F., Simpson, K. J., Stingl, J., Smyth, G. K., Asselin-Labat, M-L., et al. (2006). Generation of a functional mammary gland from a single stem cell. Nature, 439, 84–88.PubMed Shackleton, M., Vaillant, F., Simpson, K. J., Stingl, J., Smyth, G. K., Asselin-Labat, M-L., et al. (2006). Generation of a functional mammary gland from a single stem cell. Nature, 439, 84–88.PubMed
171.
Zurück zum Zitat Stingl, J., Eirew, P., Ricketson, I., Shackleton, M., Vaillant, F., Choi, D., et al. (2006). Purification and unique properties of mammary epithelial stem cells. Nature, 439, 993–997.PubMed Stingl, J., Eirew, P., Ricketson, I., Shackleton, M., Vaillant, F., Choi, D., et al. (2006). Purification and unique properties of mammary epithelial stem cells. Nature, 439, 993–997.PubMed
172.
Zurück zum Zitat Kouros-Mehr, H., Bechis, S. K., Slorach, E. M., Littlepage, L. E., Egeblad, M., Ewald, A. J., et al. (2008). GATA-3 links tumor differentiation and dissemination in a luminal breast cancer model. Cancer Cell, 13, 141–152.PubMed Kouros-Mehr, H., Bechis, S. K., Slorach, E. M., Littlepage, L. E., Egeblad, M., Ewald, A. J., et al. (2008). GATA-3 links tumor differentiation and dissemination in a luminal breast cancer model. Cancer Cell, 13, 141–152.PubMed
Metadaten
Titel
Signal transduction by focal adhesion kinase in cancer
verfasst von
Jihe Zhao
Jun-Lin Guan
Publikationsdatum
01.06.2009
Verlag
Springer US
Erschienen in
Cancer and Metastasis Reviews / Ausgabe 1-2/2009
Print ISSN: 0167-7659
Elektronische ISSN: 1573-7233
DOI
https://doi.org/10.1007/s10555-008-9165-4

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