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Erschienen in: Journal of Cancer Research and Clinical Oncology 11/2016

21.05.2016 | Review – Cancer Research

Folate-conjugated gold nanoparticle as a new nanoplatform for targeted cancer therapy

verfasst von: Hadi Samadian, Samira Hosseini-Nami, Seyed Kamran Kamrava, Habib Ghaznavi, Ali Shakeri-Zadeh

Erschienen in: Journal of Cancer Research and Clinical Oncology | Ausgabe 11/2016

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Abstract

Conventional cancer treatment methods suffer from many limitations such as non-specificity and low efficacy in discrimination between healthy and cancer cells. Recent developments in nanotechnology have introduced novel and smart therapeutic nanomaterials that basically take advantage of various targeting approaches. Targeted nanomaterials selectively bind to the cancer cells and affect them with minor effects on healthy cells. Folic acid (folate) is an essential molecule in DNA synthesis pathway which is highly needed for cancer cell duplication. Some certain cancer cells overexpress folate receptors higher than normal cells, and this fact is the basis of folate targeting strategy. There are many publications reporting various folate conjugated nanomaterials among which folate-conjugated gold nanoparticles hold great promises in targeted cancer therapy. Gold nanoparticles have been identified as promising candidates for new cancer therapy modalities because of biocompatibility, easy synthesis and functionalization, chemo-physical stability, and optical tunable characteristics. In the last decade, there has been a significant explosion in gold nanoparticles research, with a rapid increase in publications related to the area of biomedicine. Although there are many reports published on “gold nanoparticles” and “folate targeting,” there are a few reports on “folate-conjugated gold nanoparticles” in biomedical literature. This paper intends to review and illustrate the recent advances in biomedicine which have been designed on the basis of folate-conjugated gold nanoparticles.
Literatur
Zurück zum Zitat Asadishad B, Vossoughi M, Alemzadeh I (2010) Folate-receptor-targeted delivery of doxorubicin using polyethylene glycol-functionalized gold nanoparticles. Ind Eng Chem Res 49(4):1958–1963CrossRef Asadishad B, Vossoughi M, Alemzadeh I (2010) Folate-receptor-targeted delivery of doxorubicin using polyethylene glycol-functionalized gold nanoparticles. Ind Eng Chem Res 49(4):1958–1963CrossRef
Zurück zum Zitat Begg A et al (1987) Radiosensitization in vitro by cis-diammine (1, 1-cyclobutanedicarboxylato) platinum (II)(carboplatin, JM8) and ethylenediammine-malonatoplatinum (II)(JM40). Radiother Oncol 9(2):157–165PubMedCrossRef Begg A et al (1987) Radiosensitization in vitro by cis-diammine (1, 1-cyclobutanedicarboxylato) platinum (II)(carboplatin, JM8) and ethylenediammine-malonatoplatinum (II)(JM40). Radiother Oncol 9(2):157–165PubMedCrossRef
Zurück zum Zitat Beik J et al (2016) Evaluation of the sonosensitizing properties of nano-graphene oxide in comparison with iron oxide and gold nanoparticles. Phys E 81:308–314CrossRef Beik J et al (2016) Evaluation of the sonosensitizing properties of nano-graphene oxide in comparison with iron oxide and gold nanoparticles. Phys E 81:308–314CrossRef
Zurück zum Zitat Bertrand N et al (2014) Cancer nanotechnology: the impact of passive and active targeting in the era of modern cancer biology. Adv Drug Deliv Rev 66:2–25PubMedCrossRef Bertrand N et al (2014) Cancer nanotechnology: the impact of passive and active targeting in the era of modern cancer biology. Adv Drug Deliv Rev 66:2–25PubMedCrossRef
Zurück zum Zitat Bharali DJ, Mousa SA (2010) Emerging nanomedicines for early cancer detection and improved treatment: current perspective and future promise. Pharmacol Ther 128(2):324–335PubMedCrossRef Bharali DJ, Mousa SA (2010) Emerging nanomedicines for early cancer detection and improved treatment: current perspective and future promise. Pharmacol Ther 128(2):324–335PubMedCrossRef
Zurück zum Zitat Biselli-Chicote P et al (2012) VEGF gene alternative splicing: pro-and anti-angiogenic isoforms in cancer. J Cancer Res Clin Oncol 138(3):363–370PubMedCrossRef Biselli-Chicote P et al (2012) VEGF gene alternative splicing: pro-and anti-angiogenic isoforms in cancer. J Cancer Res Clin Oncol 138(3):363–370PubMedCrossRef
Zurück zum Zitat Bohren CF, Huffman DR (2008) Absorption and scattering of light by small particles. Wiley, London Bohren CF, Huffman DR (2008) Absorption and scattering of light by small particles. Wiley, London
Zurück zum Zitat Brigger I, Dubernet C, Couvreur P (2002) Nanoparticles in cancer therapy and diagnosis. Adv Drug Deliv Rev 54(5):631–651PubMedCrossRef Brigger I, Dubernet C, Couvreur P (2002) Nanoparticles in cancer therapy and diagnosis. Adv Drug Deliv Rev 54(5):631–651PubMedCrossRef
Zurück zum Zitat Brun E, Sanche L, Sicard-Roselli C (2009) Parameters governing gold nanoparticle X-ray radiosensitization of DNA in solution. Colloids Surf B 72(1):128–134CrossRef Brun E, Sanche L, Sicard-Roselli C (2009) Parameters governing gold nanoparticle X-ray radiosensitization of DNA in solution. Colloids Surf B 72(1):128–134CrossRef
Zurück zum Zitat Byrne JD, Betancourt T, Brannon-Peppas L (2008) Active targeting schemes for nanoparticle systems in cancer therapeutics. Adv Drug Deliv Rev 60(15):1615–1626PubMedCrossRef Byrne JD, Betancourt T, Brannon-Peppas L (2008) Active targeting schemes for nanoparticle systems in cancer therapeutics. Adv Drug Deliv Rev 60(15):1615–1626PubMedCrossRef
Zurück zum Zitat Cai H-H et al (2015) Gold nanoprobes-based resonance rayleigh scattering assay platform: Sensitive cytosensing of breast cancer cells and facile monitoring of folate receptor expression. Biosens Bioelectron 74:165–169PubMedCrossRef Cai H-H et al (2015) Gold nanoprobes-based resonance rayleigh scattering assay platform: Sensitive cytosensing of breast cancer cells and facile monitoring of folate receptor expression. Biosens Bioelectron 74:165–169PubMedCrossRef
Zurück zum Zitat Chen J et al (2005) Gold nanocages: bioconjugation and their potential use as optical imaging contrast agents. Nano Lett 5(3):473–477PubMedCrossRef Chen J et al (2005) Gold nanocages: bioconjugation and their potential use as optical imaging contrast agents. Nano Lett 5(3):473–477PubMedCrossRef
Zurück zum Zitat Chen J et al (2007) Immuno gold nanocages with tailored optical properties for targeted photothermal destruction of cancer cells. Nano Lett 7(5):1318–1322PubMedPubMedCentralCrossRef Chen J et al (2007) Immuno gold nanocages with tailored optical properties for targeted photothermal destruction of cancer cells. Nano Lett 7(5):1318–1322PubMedPubMedCentralCrossRef
Zurück zum Zitat Cheng H et al (2015) Gold nanoparticle-enhanced near infrared fluorescent nanocomposites for targeted bio-imaging. RSC Adv 5(1):20–26CrossRef Cheng H et al (2015) Gold nanoparticle-enhanced near infrared fluorescent nanocomposites for targeted bio-imaging. RSC Adv 5(1):20–26CrossRef
Zurück zum Zitat Chithrani DB et al (2010) Gold nanoparticles as radiation sensitizers in cancer therapy. Radiat Res 173(6):719–728PubMedCrossRef Chithrani DB et al (2010) Gold nanoparticles as radiation sensitizers in cancer therapy. Radiat Res 173(6):719–728PubMedCrossRef
Zurück zum Zitat Das M, Mohanty C, Sahoo SK (2009) Ligand-based targeted therapy for cancer tissue. Expert Opin Drug Deliv 6(3):285–304PubMedCrossRef Das M, Mohanty C, Sahoo SK (2009) Ligand-based targeted therapy for cancer tissue. Expert Opin Drug Deliv 6(3):285–304PubMedCrossRef
Zurück zum Zitat del Burgo LS, Pedraz J, Orive G (2014) Advanced nanovehicles for cancer management. Drug Discov Today 19(10):1659–1670CrossRef del Burgo LS, Pedraz J, Orive G (2014) Advanced nanovehicles for cancer management. Drug Discov Today 19(10):1659–1670CrossRef
Zurück zum Zitat Dharmatti R et al (2014) Surface orchestration of gold nanoparticles using cysteamine as linke r and folate as navigating molecule for synaphic delivery of doxorubicin. J Nanomed Res 1(1):00002 Dharmatti R et al (2014) Surface orchestration of gold nanoparticles using cysteamine as linke r and folate as navigating molecule for synaphic delivery of doxorubicin. J Nanomed Res 1(1):00002
Zurück zum Zitat Drouet F, Lagrange J-L (2010) Dose de tolérance à l’irradiation des tissus sains: la moelle osseuse. Cancer/Radiothérapie 14(4):392–404CrossRef Drouet F, Lagrange J-L (2010) Dose de tolérance à l’irradiation des tissus sains: la moelle osseuse. Cancer/Radiothérapie 14(4):392–404CrossRef
Zurück zum Zitat Fazilati M (2014) Folate decorated magnetite nanoparticles: synthesis and targeted therapy against ovarian cancer. Cell Biol Int 38(2):154–163PubMedCrossRef Fazilati M (2014) Folate decorated magnetite nanoparticles: synthesis and targeted therapy against ovarian cancer. Cell Biol Int 38(2):154–163PubMedCrossRef
Zurück zum Zitat Garin-Chesa P et al (1993) Trophoblast and ovarian cancer antigen LK26. Sensitivity and specificity in immunopathology and molecular identification as a folate-binding protein. Am J Pathol 142(2):557PubMedPubMedCentral Garin-Chesa P et al (1993) Trophoblast and ovarian cancer antigen LK26. Sensitivity and specificity in immunopathology and molecular identification as a folate-binding protein. Am J Pathol 142(2):557PubMedPubMedCentral
Zurück zum Zitat Geng J et al (2012) Conjugated polymer and gold nanoparticle co-loaded PLGA nanocomposites with eccentric internal nanostructure for dual-modal targeted cellular imaging. Small 8(15):2421–2429PubMedCrossRef Geng J et al (2012) Conjugated polymer and gold nanoparticle co-loaded PLGA nanocomposites with eccentric internal nanostructure for dual-modal targeted cellular imaging. Small 8(15):2421–2429PubMedCrossRef
Zurück zum Zitat Hainfeld JF, Slatkin DN, Smilowitz HM (2005) The use of gold nanoparticles to enhance radiotherapy in mice. Cancer Res 65(9 Supplement):287 Hainfeld JF, Slatkin DN, Smilowitz HM (2005) The use of gold nanoparticles to enhance radiotherapy in mice. Cancer Res 65(9 Supplement):287
Zurück zum Zitat Hainfeld JF et al (2008) Radiotherapy enhancement with gold nanoparticles. J Pharm Pharmacol 60(8):977–986PubMedCrossRef Hainfeld JF et al (2008) Radiotherapy enhancement with gold nanoparticles. J Pharm Pharmacol 60(8):977–986PubMedCrossRef
Zurück zum Zitat Hering K et al (2008) SERS: a versatile tool in chemical and biochemical diagnostics. Anal Bioanal Chem 390(1):113–124PubMedCrossRef Hering K et al (2008) SERS: a versatile tool in chemical and biochemical diagnostics. Anal Bioanal Chem 390(1):113–124PubMedCrossRef
Zurück zum Zitat Huang P et al (2011) Folic acid-conjugated silica-modified gold nanorods for X-ray/CT imaging-guided dual-mode radiation and photo-thermal therapy. Biomaterials 32(36):9796–9809PubMedCrossRef Huang P et al (2011) Folic acid-conjugated silica-modified gold nanorods for X-ray/CT imaging-guided dual-mode radiation and photo-thermal therapy. Biomaterials 32(36):9796–9809PubMedCrossRef
Zurück zum Zitat Jin H et al (2012) Photothermal effects of folate-conjugated Au nanorods on HepG2 cells. Appl Microbiol Biotechnol 94(5):1199–1208PubMedCrossRef Jin H et al (2012) Photothermal effects of folate-conjugated Au nanorods on HepG2 cells. Appl Microbiol Biotechnol 94(5):1199–1208PubMedCrossRef
Zurück zum Zitat Kennedy LC et al (2011) A new era for cancer treatment: gold-nanoparticle-mediated thermal therapies. Small 7(2):169–183PubMedCrossRef Kennedy LC et al (2011) A new era for cancer treatment: gold-nanoparticle-mediated thermal therapies. Small 7(2):169–183PubMedCrossRef
Zurück zum Zitat Kerker M (2013) The scattering of light and other electromagnetic radiation: physical chemistry—a series of monographs, vol 16. Academic press, Cambridge Kerker M (2013) The scattering of light and other electromagnetic radiation: physical chemistry—a series of monographs, vol 16. Academic press, Cambridge
Zurück zum Zitat Khoei S et al (2014) The role of iron oxide nanoparticles in the radiosensitization of human prostate carcinoma cell line DU145 at megavoltage radiation energies. Int J Radiat Biol 90(5):351–356PubMedCrossRef Khoei S et al (2014) The role of iron oxide nanoparticles in the radiosensitization of human prostate carcinoma cell line DU145 at megavoltage radiation energies. Int J Radiat Biol 90(5):351–356PubMedCrossRef
Zurück zum Zitat Khoshgard K et al (2014) Radiosensitization effect of folate-conjugated gold nanoparticles on HeLa cancer cells under orthovoltage superficial radiotherapy techniques. Phys Med Biol 59(9):2249PubMedCrossRef Khoshgard K et al (2014) Radiosensitization effect of folate-conjugated gold nanoparticles on HeLa cancer cells under orthovoltage superficial radiotherapy techniques. Phys Med Biol 59(9):2249PubMedCrossRef
Zurück zum Zitat Kirpotin DB et al (2006) Antibody targeting of long-circulating lipidic nanoparticles does not increase tumor localization but does increase internalization in animal models. Cancer Res 66(13):6732–6740PubMedCrossRef Kirpotin DB et al (2006) Antibody targeting of long-circulating lipidic nanoparticles does not increase tumor localization but does increase internalization in animal models. Cancer Res 66(13):6732–6740PubMedCrossRef
Zurück zum Zitat Kong T et al (2008) Enhancement of radiation cytotoxicity in breast-cancer cells by localized attachment of gold nanoparticles. Small 4(9):1537–1543PubMedCrossRef Kong T et al (2008) Enhancement of radiation cytotoxicity in breast-cancer cells by localized attachment of gold nanoparticles. Small 4(9):1537–1543PubMedCrossRef
Zurück zum Zitat Kukowska-Latallo JF et al (2005) Nanoparticle targeting of anticancer drug improves therapeutic response in animal model of human epithelial cancer. Cancer Res 65(12):5317–5324PubMedCrossRef Kukowska-Latallo JF et al (2005) Nanoparticle targeting of anticancer drug improves therapeutic response in animal model of human epithelial cancer. Cancer Res 65(12):5317–5324PubMedCrossRef
Zurück zum Zitat Li J-L et al (2009) In vitro cancer cell imaging and therapy using transferrin-conjugated gold nanoparticles. Cancer Lett 274(2):319–326PubMedCrossRef Li J-L et al (2009) In vitro cancer cell imaging and therapy using transferrin-conjugated gold nanoparticles. Cancer Lett 274(2):319–326PubMedCrossRef
Zurück zum Zitat Li R et al (2011) Folate and iron difunctionalized multiwall carbon nanotubes as dual-targeted drug nanocarrier to cancer cells. Carbon 49(5):1797–1805CrossRef Li R et al (2011) Folate and iron difunctionalized multiwall carbon nanotubes as dual-targeted drug nanocarrier to cancer cells. Carbon 49(5):1797–1805CrossRef
Zurück zum Zitat Li W et al (2015) Radionuclide therapy using 131I-labeled anti-epidermal growth factor receptor-targeted nanoparticles suppresses cancer cell growth caused by EGFR overexpression. J Cancer Res Clin Oncol 142(3):619–632PubMedCrossRef Li W et al (2015) Radionuclide therapy using 131I-labeled anti-epidermal growth factor receptor-targeted nanoparticles suppresses cancer cell growth caused by EGFR overexpression. J Cancer Res Clin Oncol 142(3):619–632PubMedCrossRef
Zurück zum Zitat Link S, El-Sayed MA (2000) Shape and size dependence of radiative, non-radiative and photothermal properties of gold nanocrystals. Int Rev Phys Chem 19(3):409–453CrossRef Link S, El-Sayed MA (2000) Shape and size dependence of radiative, non-radiative and photothermal properties of gold nanocrystals. Int Rev Phys Chem 19(3):409–453CrossRef
Zurück zum Zitat Liu C-J et al (2010) Enhancement of cell radiation sensitivity by pegylated gold nanoparticles. Phys Med Biol 55(4):931PubMedCrossRef Liu C-J et al (2010) Enhancement of cell radiation sensitivity by pegylated gold nanoparticles. Phys Med Biol 55(4):931PubMedCrossRef
Zurück zum Zitat Maeda H et al (2000) Tumor vascular permeability and the EPR effect in macromolecular therapeutics: a review. J Controll Release 65(1):271–284CrossRef Maeda H et al (2000) Tumor vascular permeability and the EPR effect in macromolecular therapeutics: a review. J Controll Release 65(1):271–284CrossRef
Zurück zum Zitat Mansoori GA, Brandenburg KS, Shakeri-Zadeh A (2010) A comparative study of two folate-conjugated gold nanoparticles for cancer nanotechnology applications. Cancers 2(4):1911–1928PubMedPubMedCentralCrossRef Mansoori GA, Brandenburg KS, Shakeri-Zadeh A (2010) A comparative study of two folate-conjugated gold nanoparticles for cancer nanotechnology applications. Cancers 2(4):1911–1928PubMedPubMedCentralCrossRef
Zurück zum Zitat Mehdizadeh A et al (2014) The effects of folate-conjugated gold nanorods in combination with plasmonic photothermal therapy on mouth epidermal carcinoma cells. Lasers Med Sci 29(3):939–948PubMedCrossRef Mehdizadeh A et al (2014) The effects of folate-conjugated gold nanorods in combination with plasmonic photothermal therapy on mouth epidermal carcinoma cells. Lasers Med Sci 29(3):939–948PubMedCrossRef
Zurück zum Zitat Misra R, Acharya S, Sahoo SK (2010) Cancer nanotechnology: application of nanotechnology in cancer therapy. Drug Discov Today 15(19):842–850PubMedCrossRef Misra R, Acharya S, Sahoo SK (2010) Cancer nanotechnology: application of nanotechnology in cancer therapy. Drug Discov Today 15(19):842–850PubMedCrossRef
Zurück zum Zitat Mitra RN et al (2012) An activatable multimodal/multifunctional nanoprobe for direct imaging of intracellular drug delivery. Biomaterials 33(5):1500–1508PubMedCrossRef Mitra RN et al (2012) An activatable multimodal/multifunctional nanoprobe for direct imaging of intracellular drug delivery. Biomaterials 33(5):1500–1508PubMedCrossRef
Zurück zum Zitat Pandey S et al (2013) Biogenic gold nanoparticles as fotillas to fire berberine hydrochloride using folic acid as molecular road map. Mater Sci Eng C 33(7):3716–3722CrossRef Pandey S et al (2013) Biogenic gold nanoparticles as fotillas to fire berberine hydrochloride using folic acid as molecular road map. Mater Sci Eng C 33(7):3716–3722CrossRef
Zurück zum Zitat Papavassiliou GC (1979) Optical properties of small inorganic and organic metal particles. Prog Solid State Chem 12(3):185–271CrossRef Papavassiliou GC (1979) Optical properties of small inorganic and organic metal particles. Prog Solid State Chem 12(3):185–271CrossRef
Zurück zum Zitat Parker N et al (2005) Folate receptor expression in carcinomas and normal tissues determined by a quantitative radioligand binding assay. Anal Biochem 338(2):284–293PubMedCrossRef Parker N et al (2005) Folate receptor expression in carcinomas and normal tissues determined by a quantitative radioligand binding assay. Anal Biochem 338(2):284–293PubMedCrossRef
Zurück zum Zitat Parveen S, Sahoo SK (2008) Polymeric nanoparticles for cancer therapy. J Drug Target 16(2):108–123PubMedCrossRef Parveen S, Sahoo SK (2008) Polymeric nanoparticles for cancer therapy. J Drug Target 16(2):108–123PubMedCrossRef
Zurück zum Zitat Patra CR et al (2008) Application of gold nanoparticles for targeted therapy in cancer. J Biomed Nanotechnol 4(2):99–132 Patra CR et al (2008) Application of gold nanoparticles for targeted therapy in cancer. J Biomed Nanotechnol 4(2):99–132
Zurück zum Zitat Prabaharan M et al (2009) Gold nanoparticles with a monolayer of doxorubicin-conjugated amphiphilic block copolymer for tumor-targeted drug delivery. Biomaterials 30(30):6065–6075PubMedCrossRef Prabaharan M et al (2009) Gold nanoparticles with a monolayer of doxorubicin-conjugated amphiphilic block copolymer for tumor-targeted drug delivery. Biomaterials 30(30):6065–6075PubMedCrossRef
Zurück zum Zitat Rahman WN et al (2009) Enhancement of radiation effects by gold nanoparticles for superficial radiation therapy. Nanomed Nanotechnol Biol Med 5(2):136–142CrossRef Rahman WN et al (2009) Enhancement of radiation effects by gold nanoparticles for superficial radiation therapy. Nanomed Nanotechnol Biol Med 5(2):136–142CrossRef
Zurück zum Zitat Rathinaraj P et al (2015) Targeted images of KB cells using folate-conjugated gold nanoparticles. Nanoscale Res Lett 10(1):1–10CrossRef Rathinaraj P et al (2015) Targeted images of KB cells using folate-conjugated gold nanoparticles. Nanoscale Res Lett 10(1):1–10CrossRef
Zurück zum Zitat Rozenberg M, Shoham G (2007) FTIR spectra of solid poly-l-lysine in the stretching NH mode range. Biophys Chem 125(1):166–171PubMedCrossRef Rozenberg M, Shoham G (2007) FTIR spectra of solid poly-l-lysine in the stretching NH mode range. Biophys Chem 125(1):166–171PubMedCrossRef
Zurück zum Zitat Saw PE et al (2013) Aptide-conjugated liposome targeting tumor-associated fibronectin for glioma therapy. J Mater Chem B 1(37):4723–4726CrossRef Saw PE et al (2013) Aptide-conjugated liposome targeting tumor-associated fibronectin for glioma therapy. J Mater Chem B 1(37):4723–4726CrossRef
Zurück zum Zitat Shakeri-Zadeh A et al (2013) Targeted, monitored, and controlled chemotherapy: a multimodal nanotechnology-based approach against cancer. ISRN Nanotechnol 2013:5. doi:10.1155/2013/629510 CrossRef Shakeri-Zadeh A et al (2013) Targeted, monitored, and controlled chemotherapy: a multimodal nanotechnology-based approach against cancer. ISRN Nanotechnol 2013:5. doi:10.​1155/​2013/​629510 CrossRef
Zurück zum Zitat Shakeri-Zadeh A et al (2009) Gold nanoparticles conjugated with folic acid using mercaptohexanol as the linker. JONPI 1:13–23 Shakeri-Zadeh A et al (2009) Gold nanoparticles conjugated with folic acid using mercaptohexanol as the linker. JONPI 1:13–23
Zurück zum Zitat Shakeri-Zadeh A, Ghasemifard M, Mansoori GA (2010a) Structural and optical characterization of folate-conjugated gold-nanoparticles. Phys E 42(5):1272–1280CrossRef Shakeri-Zadeh A, Ghasemifard M, Mansoori GA (2010a) Structural and optical characterization of folate-conjugated gold-nanoparticles. Phys E 42(5):1272–1280CrossRef
Zurück zum Zitat Shakeri-Zadeh A et al (2010b) Cancerous cells targeting and destruction using folate-conjugated gold nanoparticles. Dyn Biochem Process Biotechnol Mol Biol 4(1):06–12 Shakeri-Zadeh A et al (2010b) Cancerous cells targeting and destruction using folate-conjugated gold nanoparticles. Dyn Biochem Process Biotechnol Mol Biol 4(1):06–12
Zurück zum Zitat Shakeri-Zadeh A et al (2014a) A new magnetic nanocapsule containing 5-fluorouracil: in vivo drug release, anti-tumor, and pro-apoptotic effects on CT26 cells allograft model. J Biomater Appl 29(4):548–556PubMedCrossRef Shakeri-Zadeh A et al (2014a) A new magnetic nanocapsule containing 5-fluorouracil: in vivo drug release, anti-tumor, and pro-apoptotic effects on CT26 cells allograft model. J Biomater Appl 29(4):548–556PubMedCrossRef
Zurück zum Zitat Shakeri-Zadeh A et al (2014b) A scientific paradigm for targeted nanophotothermolysis; the potential for nanosurgery of cancer. Lasers Med Sci 29(2):847–853PubMedCrossRef Shakeri-Zadeh A et al (2014b) A scientific paradigm for targeted nanophotothermolysis; the potential for nanosurgery of cancer. Lasers Med Sci 29(2):847–853PubMedCrossRef
Zurück zum Zitat Shakeri-Zadeh A et al (2015a) Synergistic effects of magnetic drug targeting using a newly developed nanocapsule and tumor irradiation by ultrasound on CT26 tumors in BALB/c mice. J Mater Chem B 3(9):1879–1887CrossRef Shakeri-Zadeh A et al (2015a) Synergistic effects of magnetic drug targeting using a newly developed nanocapsule and tumor irradiation by ultrasound on CT26 tumors in BALB/c mice. J Mater Chem B 3(9):1879–1887CrossRef
Zurück zum Zitat Shakeri-Zadeh A et al (2015b) Combination of ultrasound and newly synthesized magnetic nanocapsules affects the temperature profile of CT26 tumors in BALB/c mice. J Med Ultrason 42(1):9–16CrossRef Shakeri-Zadeh A et al (2015b) Combination of ultrasound and newly synthesized magnetic nanocapsules affects the temperature profile of CT26 tumors in BALB/c mice. J Med Ultrason 42(1):9–16CrossRef
Zurück zum Zitat Sinha R et al (2006) Nanotechnology in cancer therapeutics: bioconjugated nanoparticles for drug delivery. Mol Cancer Ther 5(8):1909–1917PubMedCrossRef Sinha R et al (2006) Nanotechnology in cancer therapeutics: bioconjugated nanoparticles for drug delivery. Mol Cancer Ther 5(8):1909–1917PubMedCrossRef
Zurück zum Zitat Sivakumar B et al (2014) Bacterial exopolysaccharide based magnetic nanoparticles: a versatile nanotool for cancer cell imaging, targeted drug delivery and synergistic effect of drug and hyperthermia mediated cancer therapy. J Biomed Nanotechnol 10(6):885–899PubMedCrossRef Sivakumar B et al (2014) Bacterial exopolysaccharide based magnetic nanoparticles: a versatile nanotool for cancer cell imaging, targeted drug delivery and synergistic effect of drug and hyperthermia mediated cancer therapy. J Biomed Nanotechnol 10(6):885–899PubMedCrossRef
Zurück zum Zitat Soltanpour MS et al (2013) Methylenetetrahydrofolate reductase C677T mutation and risk of retinal vein thrombosis. J Res Med Sci 18(6):487PubMedPubMedCentral Soltanpour MS et al (2013) Methylenetetrahydrofolate reductase C677T mutation and risk of retinal vein thrombosis. J Res Med Sci 18(6):487PubMedPubMedCentral
Zurück zum Zitat Svaasand LO, Gomer CJ, Morinelli E (1990) On the physical rationale of laser induced hyperthermia. Lasers Med Sci 5(2):121–128CrossRef Svaasand LO, Gomer CJ, Morinelli E (1990) On the physical rationale of laser induced hyperthermia. Lasers Med Sci 5(2):121–128CrossRef
Zurück zum Zitat Syu WJ et al (2012) Improved photodynamic cancer treatment by folate-conjugated polymeric micelles in a KB xenografted animal model. Small 8(13):2060–2069PubMedCrossRef Syu WJ et al (2012) Improved photodynamic cancer treatment by folate-conjugated polymeric micelles in a KB xenografted animal model. Small 8(13):2060–2069PubMedCrossRef
Zurück zum Zitat Talekar M et al (2011) Targeting of nanoparticles in cancer: drug delivery and diagnostics. Anticancer Drugs 22(10):949–962PubMedCrossRef Talekar M et al (2011) Targeting of nanoparticles in cancer: drug delivery and diagnostics. Anticancer Drugs 22(10):949–962PubMedCrossRef
Zurück zum Zitat Tiwari PM et al (2011) Functionalized gold nanoparticles and their biomedical applications. Nanomaterials 1(1):31–63CrossRef Tiwari PM et al (2011) Functionalized gold nanoparticles and their biomedical applications. Nanomaterials 1(1):31–63CrossRef
Zurück zum Zitat Tork MB et al (2014) In situ green synthesis of silver nanoparticles/chitosan/poly vinyl alcohol/poly ethylene glycol hydrogel nanocomposite for novel finishing of nasal tampons. J Ind Text 45(6):1399–1416. doi:10.1177/1528083714560255 CrossRef Tork MB et al (2014) In situ green synthesis of silver nanoparticles/chitosan/poly vinyl alcohol/poly ethylene glycol hydrogel nanocomposite for novel finishing of nasal tampons. J Ind Text 45(6):1399–1416. doi:10.​1177/​1528083714560255​ CrossRef
Zurück zum Zitat Veigele WJ (1973) Photon cross sections from 0.1 keV to 1 MeV for elements Z = 1 to Z = 94. Atomic Data Nucl Data Tables 5(1):51–111CrossRef Veigele WJ (1973) Photon cross sections from 0.1 keV to 1 MeV for elements Z = 1 to Z = 94. Atomic Data Nucl Data Tables 5(1):51–111CrossRef
Zurück zum Zitat Wang Y et al (2015) A photodynamic therapy combined with topical 5-aminolevulinic acid and systemic hematoporphyrin derivative is more efficient but less phototoxic for cancer. J Cancer Res Clin Oncol 142(4):813–821PubMedCrossRef Wang Y et al (2015) A photodynamic therapy combined with topical 5-aminolevulinic acid and systemic hematoporphyrin derivative is more efficient but less phototoxic for cancer. J Cancer Res Clin Oncol 142(4):813–821PubMedCrossRef
Zurück zum Zitat Yin M et al (2012) Water-dispersible multiwalled carbon nanotube/iron oxide hybrids as contrast agents for cellular magnetic resonance imaging. Carbon 50(6):2162–2170CrossRef Yin M et al (2012) Water-dispersible multiwalled carbon nanotube/iron oxide hybrids as contrast agents for cellular magnetic resonance imaging. Carbon 50(6):2162–2170CrossRef
Zurück zum Zitat Yoo HS, Park TG (2004) Folate-receptor-targeted delivery of doxorubicin nano-aggregates stabilized by doxorubicin–PEG–folate conjugate. J Control Release 100(2):247–256PubMedCrossRef Yoo HS, Park TG (2004) Folate-receptor-targeted delivery of doxorubicin nano-aggregates stabilized by doxorubicin–PEG–folate conjugate. J Control Release 100(2):247–256PubMedCrossRef
Zurück zum Zitat Zhang Z et al (2010) Conjugating folic acid to gold nanoparticles through glutathione for targeting and detecting cancer cells. Bioorganic Med Chem 18(15):5528–5534CrossRef Zhang Z et al (2010) Conjugating folic acid to gold nanoparticles through glutathione for targeting and detecting cancer cells. Bioorganic Med Chem 18(15):5528–5534CrossRef
Zurück zum Zitat Zhang X-Q et al (2012a) Interactions of nanomaterials and biological systems: implications to personalized nanomedicine. Adv Drug Deliv Rev 64(13):1363–1384PubMedPubMedCentralCrossRef Zhang X-Q et al (2012a) Interactions of nanomaterials and biological systems: implications to personalized nanomedicine. Adv Drug Deliv Rev 64(13):1363–1384PubMedPubMedCentralCrossRef
Zurück zum Zitat Zhang X-D et al (2012b) Size-dependent radiosensitization of PEG-coated gold nanoparticles for cancer radiation therapy. Biomaterials 33(27):6408–6419PubMedCrossRef Zhang X-D et al (2012b) Size-dependent radiosensitization of PEG-coated gold nanoparticles for cancer radiation therapy. Biomaterials 33(27):6408–6419PubMedCrossRef
Metadaten
Titel
Folate-conjugated gold nanoparticle as a new nanoplatform for targeted cancer therapy
verfasst von
Hadi Samadian
Samira Hosseini-Nami
Seyed Kamran Kamrava
Habib Ghaznavi
Ali Shakeri-Zadeh
Publikationsdatum
21.05.2016
Verlag
Springer Berlin Heidelberg
Erschienen in
Journal of Cancer Research and Clinical Oncology / Ausgabe 11/2016
Print ISSN: 0171-5216
Elektronische ISSN: 1432-1335
DOI
https://doi.org/10.1007/s00432-016-2179-3

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