Skip to main content
Erschienen in: Journal of the Association for Research in Otolaryngology 1/2007

01.03.2007

Differential Distribution of Stem Cells in the Auditory and Vestibular Organs of the Inner Ear

verfasst von: Kazuo Oshima, Christian M. Grimm, C. Eduardo Corrales, Pascal Senn, Rodrigo Martinez Monedero, Gwenaëlle S. G. Géléoc, Albert Edge, Jeffrey R. Holt, Stefan Heller

Erschienen in: Journal of the Association for Research in Otolaryngology | Ausgabe 1/2007

Einloggen, um Zugang zu erhalten

Abstract

The adult mammalian cochlea lacks regenerative capacity, which is the main reason for the permanence of hearing loss. Vestibular organs, in contrast, replace a small number of lost hair cells. The reason for this difference is unknown. In this work we show isolation of sphere-forming stem cells from the early postnatal organ of Corti, vestibular sensory epithelia, the spiral ganglion, and the stria vascularis. Organ of Corti and vestibular sensory epithelial stem cells give rise to cells that express multiple hair cell markers and express functional ion channels reminiscent of nascent hair cells. Spiral ganglion stem cells display features of neural stem cells and can give rise to neurons and glial cell types. We found that the ability for sphere formation in the mouse cochlea decreases about 100-fold during the second and third postnatal weeks; this decrease is substantially faster than the reduction of stem cells in vestibular organs, which maintain their stem cell population also at older ages. Coincidentally, the relative expression of developmental and progenitor cell markers in the cochlea decreases during the first 3 postnatal weeks, which is in sharp contrast to the vestibular system, where expression of progenitor cell markers remains constant or even increases during this period. Our findings indicate that the lack of regenerative capacity in the adult mammalian cochlea is either a result of an early postnatal loss of stem cells or diminishment of stem cell features of maturing cochlear cells.
Literatur
Zurück zum Zitat Adler HJ, Belyantseva IA, Merritt RC Jr., Frolenkov GI, Dougherty GW, Kachar B. Expression of prestin, a membrane motor protein, in the mammalian auditory and vestibular periphery. Hear. Res. 184:27–40, 2003.PubMedCrossRef Adler HJ, Belyantseva IA, Merritt RC Jr., Frolenkov GI, Dougherty GW, Kachar B. Expression of prestin, a membrane motor protein, in the mammalian auditory and vestibular periphery. Hear. Res. 184:27–40, 2003.PubMedCrossRef
Zurück zum Zitat Bermingham NA, Hassan BA, Price SD, Vollrath MA, Ben-Arie N, Eatock RA, Bellen HJ, Lysakowski A, Zoghbi HY. Math1: an essential gene for the generation of inner ear hair cells. Science 284:1837–1841, 1999.PubMedCrossRef Bermingham NA, Hassan BA, Price SD, Vollrath MA, Ben-Arie N, Eatock RA, Bellen HJ, Lysakowski A, Zoghbi HY. Math1: an essential gene for the generation of inner ear hair cells. Science 284:1837–1841, 1999.PubMedCrossRef
Zurück zum Zitat Chen P, Johnson JE, Zoghbi HY, Segil N. The role of Math1 in inner ear development: uncoupling the establishment of the sensory primordium from hair cell fate determination. Development 129:2495–2505, 2002.PubMedCrossRef Chen P, Johnson JE, Zoghbi HY, Segil N. The role of Math1 in inner ear development: uncoupling the establishment of the sensory primordium from hair cell fate determination. Development 129:2495–2505, 2002.PubMedCrossRef
Zurück zum Zitat Collinson JM, Morris L, Reid AI, Ramaesh T, Keighren MA, Flockhart JH, Hill RE, Tan SS, Ramaesh K, Dhillon B, West JD. Clonal analysis of patterns of growth, stem cell activity, and cell movement during the development and maintenance of the murine corneal epithelium. Dev. Dyn. 224:432–440, 2002.PubMedCrossRef Collinson JM, Morris L, Reid AI, Ramaesh T, Keighren MA, Flockhart JH, Hill RE, Tan SS, Ramaesh K, Dhillon B, West JD. Clonal analysis of patterns of growth, stem cell activity, and cell movement during the development and maintenance of the murine corneal epithelium. Dev. Dyn. 224:432–440, 2002.PubMedCrossRef
Zurück zum Zitat Corwin JT, Oberholtzer JC. Fish n’ chicks: model recipes for hair-cell regeneration? Neuron. 19:951–954, 1997.PubMedCrossRef Corwin JT, Oberholtzer JC. Fish n’ chicks: model recipes for hair-cell regeneration? Neuron. 19:951–954, 1997.PubMedCrossRef
Zurück zum Zitat Corwin JT, Finley JE, Saffer R, Gu R, Cunningham L, Xia B, Warchol ME. Isolation of pure living hair cell epithelia by use of thermolysin. Assoc. Res. Otolaryngol. Abstr. 18:87, 1995. Corwin JT, Finley JE, Saffer R, Gu R, Cunningham L, Xia B, Warchol ME. Isolation of pure living hair cell epithelia by use of thermolysin. Assoc. Res. Otolaryngol. Abstr. 18:87, 1995.
Zurück zum Zitat Feghali JG, Lefebvre PP, Staecker H, Kopke R, Frenz DA, Malgrange B, Liu W, Moonen G, Ruben RJ, Van de Water TR. Mammalian auditory hair cell regeneration/repair and protection: a review and future directions. Ear Nose Throat J. 77:276, 280, 282–275, 1998. Feghali JG, Lefebvre PP, Staecker H, Kopke R, Frenz DA, Malgrange B, Liu W, Moonen G, Ruben RJ, Van de Water TR. Mammalian auditory hair cell regeneration/repair and protection: a review and future directions. Ear Nose Throat J. 77:276, 280, 282–275, 1998.
Zurück zum Zitat Forge A, Li L, Corwin JT, Nevill G. Ultrastructural evidence for hair cell regeneration in the mammalian inner ear. Science 259:1616–1619, 1993.PubMedCrossRef Forge A, Li L, Corwin JT, Nevill G. Ultrastructural evidence for hair cell regeneration in the mammalian inner ear. Science 259:1616–1619, 1993.PubMedCrossRef
Zurück zum Zitat Géléoc GS, Holt JR. Developmental acquisition of sensory transduction in hair cells of the mouse inner ear. Nat. Neurosci. 6:1019–1020, 2003.PubMedCrossRef Géléoc GS, Holt JR. Developmental acquisition of sensory transduction in hair cells of the mouse inner ear. Nat. Neurosci. 6:1019–1020, 2003.PubMedCrossRef
Zurück zum Zitat Géléoc GS, Risner JR, Holt JR. Developmental acquisition of voltage-dependent conductances and sensory signaling in hair cells of the embryonic mouse inner ear. J. Neurosci. 24:11148–11159, 2004.PubMedCrossRef Géléoc GS, Risner JR, Holt JR. Developmental acquisition of voltage-dependent conductances and sensory signaling in hair cells of the embryonic mouse inner ear. J. Neurosci. 24:11148–11159, 2004.PubMedCrossRef
Zurück zum Zitat Gritti A, Bonfanti L, Doetsch F, Caille I, Alvarez-Buylla A, Lim DA, Galli R, Verdugo JM, Herrera DG, Vescovi AL. Multipotent neural stem cells reside into the rostral extension and olfactory bulb of adult rodents. J. Neurosci. 22:437–445, 2002.PubMed Gritti A, Bonfanti L, Doetsch F, Caille I, Alvarez-Buylla A, Lim DA, Galli R, Verdugo JM, Herrera DG, Vescovi AL. Multipotent neural stem cells reside into the rostral extension and olfactory bulb of adult rodents. J. Neurosci. 22:437–445, 2002.PubMed
Zurück zum Zitat Gritti A, Parati EA, Cova L, Frolichsthal P, Galli R, Wanke E, Faravelli L, Morassutti DJ, Roisen F, Nickel DD, Vescovi AL. Multipotential stem cells from the adult mouse brain proliferate and self-renew in response to basic fibroblast growth factor. J. Neurosci. 16:1091–1100, 1996.PubMed Gritti A, Parati EA, Cova L, Frolichsthal P, Galli R, Wanke E, Faravelli L, Morassutti DJ, Roisen F, Nickel DD, Vescovi AL. Multipotential stem cells from the adult mouse brain proliferate and self-renew in response to basic fibroblast growth factor. J. Neurosci. 16:1091–1100, 1996.PubMed
Zurück zum Zitat Hafidi A. Peripherin-like immunoreactivity in type II spiral ganglion cell body and projections. Brain Res. 805:181–190, 1998.PubMedCrossRef Hafidi A. Peripherin-like immunoreactivity in type II spiral ganglion cell body and projections. Brain Res. 805:181–190, 1998.PubMedCrossRef
Zurück zum Zitat Heller S, Bell A, Denis CS, Choe Y, Hudspeth AJ. Parvalbumin 3 is an abundant Ca2+ buffer in hair cells. J. Assoc. Res. Otolaryngol. 3:488–498, 2002a.PubMedCrossRef Heller S, Bell A, Denis CS, Choe Y, Hudspeth AJ. Parvalbumin 3 is an abundant Ca2+ buffer in hair cells. J. Assoc. Res. Otolaryngol. 3:488–498, 2002a.PubMedCrossRef
Zurück zum Zitat Helms AW, Abney AL, Ben-Arie N, Zoghbi HY, Johnson JE. Autoregulation and multiple enhancers control Math1 expression in the developing nervous system. Development 127:1185–1196, 2000.PubMed Helms AW, Abney AL, Ben-Arie N, Zoghbi HY, Johnson JE. Autoregulation and multiple enhancers control Math1 expression in the developing nervous system. Development 127:1185–1196, 2000.PubMed
Zurück zum Zitat Imai T, Tokunaga A, Yoshida T, Hashimoto M, Mikoshiba K, Weinmaster G, Nakafuku M, Okano H. The neural RNA-binding protein Musashi1 translationally regulates mammalian numb gene expression by interacting with its mRNA. Mol. Cell Biol. 21:3888–3900, 2001.PubMedCrossRef Imai T, Tokunaga A, Yoshida T, Hashimoto M, Mikoshiba K, Weinmaster G, Nakafuku M, Okano H. The neural RNA-binding protein Musashi1 translationally regulates mammalian numb gene expression by interacting with its mRNA. Mol. Cell Biol. 21:3888–3900, 2001.PubMedCrossRef
Zurück zum Zitat Izumikawa M, Minoda R, Kawamoto K, Abrashkin KA, Swiderski DL, Dolan DF, Brough DE, Raphael Y. Auditory hair cell replacement and hearing improvement by Atoh1 gene therapy in deaf mammals. Nat. Med. 11:271–276, 2005.PubMedCrossRef Izumikawa M, Minoda R, Kawamoto K, Abrashkin KA, Swiderski DL, Dolan DF, Brough DE, Raphael Y. Auditory hair cell replacement and hearing improvement by Atoh1 gene therapy in deaf mammals. Nat. Med. 11:271–276, 2005.PubMedCrossRef
Zurück zum Zitat Kamiya K, Takahashi K, Kitamura K, Momoi T, Yoshikawa Y. Mitosis and apoptosis in postnatal auditory system of the C3H/He strain. Brain Res. 901:296–302, 2001.PubMedCrossRef Kamiya K, Takahashi K, Kitamura K, Momoi T, Yoshikawa Y. Mitosis and apoptosis in postnatal auditory system of the C3H/He strain. Brain Res. 901:296–302, 2001.PubMedCrossRef
Zurück zum Zitat Kelley MW, Talreja DR, Corwin JT. Replacement of hair cells after laser microbeam irradiation in cultured organs of corti from embryonic and neonatal mice. J. Neurosci. 15:3013–3026, 1995.PubMed Kelley MW, Talreja DR, Corwin JT. Replacement of hair cells after laser microbeam irradiation in cultured organs of corti from embryonic and neonatal mice. J. Neurosci. 15:3013–3026, 1995.PubMed
Zurück zum Zitat Lendahl U, Zimmerman LB, McKay RD. CNS stem cells express a new class of intermediate filament protein. Cell 60:585–595, 1990.PubMedCrossRef Lendahl U, Zimmerman LB, McKay RD. CNS stem cells express a new class of intermediate filament protein. Cell 60:585–595, 1990.PubMedCrossRef
Zurück zum Zitat Li H, Liu H, Heller S. Pluripotent stem cells from the adult mouse inner ear. Nat. Med. 9:1293–1299, 2003a.PubMedCrossRef Li H, Liu H, Heller S. Pluripotent stem cells from the adult mouse inner ear. Nat. Med. 9:1293–1299, 2003a.PubMedCrossRef
Zurück zum Zitat Li H, Roblin G, Liu H, Heller S. Generation of hair cells by stepwise differentiation of embryonic stem cells. Proc. Natl. Acad. Sci. U. S. A. 100:13495–13500, 2003b.PubMedCrossRef Li H, Roblin G, Liu H, Heller S. Generation of hair cells by stepwise differentiation of embryonic stem cells. Proc. Natl. Acad. Sci. U. S. A. 100:13495–13500, 2003b.PubMedCrossRef
Zurück zum Zitat Li H, Liu H, Corrales CE, Mutai H, Heller S. Correlation of Pax-2 expression with cell proliferation in the developing chicken inner ear. J. Neurobiol. 60:61–70, 2004a.PubMedCrossRef Li H, Liu H, Corrales CE, Mutai H, Heller S. Correlation of Pax-2 expression with cell proliferation in the developing chicken inner ear. J. Neurobiol. 60:61–70, 2004a.PubMedCrossRef
Zurück zum Zitat Li H, Liu H, Sage C, Huang M, Chen ZY, Heller S. Islet-1 expression in the developing chicken inner ear. J. Comp. Neurol. 477:1–10, 2004b.PubMedCrossRef Li H, Liu H, Sage C, Huang M, Chen ZY, Heller S. Islet-1 expression in the developing chicken inner ear. J. Comp. Neurol. 477:1–10, 2004b.PubMedCrossRef
Zurück zum Zitat Li H, Corrales CE, Wang Z, Zhao Y, Wang Y, Liu H, Heller S. BMP4 is involved in the generation of inner ear sensory epithelia. BMC Dev. Biol. 5:16, 2005.PubMedCrossRef Li H, Corrales CE, Wang Z, Zhao Y, Wang Y, Liu H, Heller S. BMP4 is involved in the generation of inner ear sensory epithelia. BMC Dev. Biol. 5:16, 2005.PubMedCrossRef
Zurück zum Zitat Lim DJ, Rueda J. Structural development of the cochlea. In: Romand R (ed) Development of the Auditory and Vestibular Systems 2. Elsevier, New York, pp. 33–58, 1992. Lim DJ, Rueda J. Structural development of the cochlea. In: Romand R (ed) Development of the Auditory and Vestibular Systems 2. Elsevier, New York, pp. 33–58, 1992.
Zurück zum Zitat Lumpkin EA, Collisson T, Parab P, Omer-Abdalla A, Haeberle H, Chen P, Doetzlhofer A, White P, Groves A, Segil N, Johnson JE. Math1-driven GFP expression in the developing nervous system of transgenic mice. Gene Expr. Patterns 3:389–395, 2003.PubMedCrossRef Lumpkin EA, Collisson T, Parab P, Omer-Abdalla A, Haeberle H, Chen P, Doetzlhofer A, White P, Groves A, Segil N, Johnson JE. Math1-driven GFP expression in the developing nervous system of transgenic mice. Gene Expr. Patterns 3:389–395, 2003.PubMedCrossRef
Zurück zum Zitat Malgrange B, Belachew S, Thiry M, Nguyen L, Rogister B, Alvarez ML, Rigo JM, Van De Water TR, Moonen G, Lefebvre PP. Proliferative generation of mammalian auditory hair cells in culture. Mech. Dev. 112:79–88, 2002.PubMedCrossRef Malgrange B, Belachew S, Thiry M, Nguyen L, Rogister B, Alvarez ML, Rigo JM, Van De Water TR, Moonen G, Lefebvre PP. Proliferative generation of mammalian auditory hair cells in culture. Mech. Dev. 112:79–88, 2002.PubMedCrossRef
Zurück zum Zitat Maslov AY, Barone TA, Plunkett RJ, Pruitt SC. Neural stem cell detection, characterization, and age-related changes in the subventricular zone of mice. J. Neurosci. 24:1726–1733, 2004.PubMedCrossRef Maslov AY, Barone TA, Plunkett RJ, Pruitt SC. Neural stem cell detection, characterization, and age-related changes in the subventricular zone of mice. J. Neurosci. 24:1726–1733, 2004.PubMedCrossRef
Zurück zum Zitat Morsli H, Tuorto F, Choo D, Postiglione MP, Simeone A, Wu DK. Otx1 and Otx2 activities are required for the normal development of the mouse inner ear. Development 126:2335–2343, 1999.PubMed Morsli H, Tuorto F, Choo D, Postiglione MP, Simeone A, Wu DK. Otx1 and Otx2 activities are required for the normal development of the mouse inner ear. Development 126:2335–2343, 1999.PubMed
Zurück zum Zitat Murata J, Murayama A, Horii A, Doi K, Harada T, Okano H, Kubo T. Expression of Musashi1, a neural RNA-binding protein, in the cochlea of young adult mice. Neurosci. Lett. 354:201–204, 2004.PubMedCrossRef Murata J, Murayama A, Horii A, Doi K, Harada T, Okano H, Kubo T. Expression of Musashi1, a neural RNA-binding protein, in the cochlea of young adult mice. Neurosci. Lett. 354:201–204, 2004.PubMedCrossRef
Zurück zum Zitat Nadol JB Jr. Comparative anatomy of the cochlea and auditory nerve in mammals. Hear. Res. 34:253–266, 1988.PubMedCrossRef Nadol JB Jr. Comparative anatomy of the cochlea and auditory nerve in mammals. Hear. Res. 34:253–266, 1988.PubMedCrossRef
Zurück zum Zitat Oh SH, Johnson R, Wu DK. Differential expression of bone morphogenetic proteins in the developing vestibular and auditory sensory organs. J. Neurosci. 16:6463–6475, 1996.PubMed Oh SH, Johnson R, Wu DK. Differential expression of bone morphogenetic proteins in the developing vestibular and auditory sensory organs. J. Neurosci. 16:6463–6475, 1996.PubMed
Zurück zum Zitat Rask-Andersen H, Bostrom M, Gerdin B, Kinnefors A, Nyberg G, Engstrand T, Miller JM, Lindholm D. Regeneration of human auditory nerve. In vitro/in video demonstration of neural progenitor cells in adult human and guinea pig spiral ganglion. Hear. Res. 203:180–191, 2005.PubMedCrossRef Rask-Andersen H, Bostrom M, Gerdin B, Kinnefors A, Nyberg G, Engstrand T, Miller JM, Lindholm D. Regeneration of human auditory nerve. In vitro/in video demonstration of neural progenitor cells in adult human and guinea pig spiral ganglion. Hear. Res. 203:180–191, 2005.PubMedCrossRef
Zurück zum Zitat Rietze RL, Valcanis H, Brooker GF, Thomas T, Voss AK, Bartlett PF. Purification of a pluripotent neural stem cell from the adult mouse brain. Nature 412:736–739, 2001.PubMedCrossRef Rietze RL, Valcanis H, Brooker GF, Thomas T, Voss AK, Bartlett PF. Purification of a pluripotent neural stem cell from the adult mouse brain. Nature 412:736–739, 2001.PubMedCrossRef
Zurück zum Zitat Rusch A, Lysakowski A, Eatock RA. Postnatal development of type I and type II hair cells in the mouse utricle: acquisition of voltage-gated conductances and differentiated morphology. J. Neurosci. 18:7487–7501, 1998.PubMed Rusch A, Lysakowski A, Eatock RA. Postnatal development of type I and type II hair cells in the mouse utricle: acquisition of voltage-gated conductances and differentiated morphology. J. Neurosci. 18:7487–7501, 1998.PubMed
Zurück zum Zitat Sage C, Huang M, Karimi K, Gutierrez G, Vollrath MA, Zhang DS, Garcia-Anoveros J, Hinds PW, Corwin JT, Corey DP, Chen ZY. Proliferation of functional hair cells in vivo in the absence of the retinoblastoma protein. Science 307:1114–1118, 2005.PubMedCrossRef Sage C, Huang M, Karimi K, Gutierrez G, Vollrath MA, Zhang DS, Garcia-Anoveros J, Hinds PW, Corwin JT, Corey DP, Chen ZY. Proliferation of functional hair cells in vivo in the absence of the retinoblastoma protein. Science 307:1114–1118, 2005.PubMedCrossRef
Zurück zum Zitat Sahly I, El-Amraoui A, Abitbol M, Petit C, Dufier JL. Expression of myosin VIIA during mouse embryogenesis. Anat. Embryol. (Berl.) 196:159–170, 1997.CrossRef Sahly I, El-Amraoui A, Abitbol M, Petit C, Dufier JL. Expression of myosin VIIA during mouse embryogenesis. Anat. Embryol. (Berl.) 196:159–170, 1997.CrossRef
Zurück zum Zitat Sakaguchi H, Yaoi T, Suzuki T, Okano H, Hisa Y, Fushiki S. Spatiotemporal patterns of Musashi1 expression during inner ear development. NeuroReport 15:997–1001, 2004.PubMedCrossRef Sakaguchi H, Yaoi T, Suzuki T, Okano H, Hisa Y, Fushiki S. Spatiotemporal patterns of Musashi1 expression during inner ear development. NeuroReport 15:997–1001, 2004.PubMedCrossRef
Zurück zum Zitat Sanchez-Calderon H, Martin-Partido G, Hidalgo-Sanchez M. Differential expression of Otx2, Gbx2, Pax2, and Fgf8 in the developing vestibular and auditory sensory organs. Brain Res. Bull. 57:321–323, 2002.PubMedCrossRef Sanchez-Calderon H, Martin-Partido G, Hidalgo-Sanchez M. Differential expression of Otx2, Gbx2, Pax2, and Fgf8 in the developing vestibular and auditory sensory organs. Brain Res. Bull. 57:321–323, 2002.PubMedCrossRef
Zurück zum Zitat Stone JS, Oesterle EC, Rubel EW. Recent insights into regeneration of auditory and vestibular hair cells. Curr. Opin. Neurol. 11:17–24, 1998.PubMedCrossRef Stone JS, Oesterle EC, Rubel EW. Recent insights into regeneration of auditory and vestibular hair cells. Curr. Opin. Neurol. 11:17–24, 1998.PubMedCrossRef
Zurück zum Zitat Suslov ON, Kukekov VG, Ignatova TN, Steindler DA. Neural stem cell heterogeneity demonstrated by molecular phenotyping of clonal neurospheres. Proc. Natl. Acad. Sci. U. S. A. 99:14506–14511, 2002.PubMedCrossRef Suslov ON, Kukekov VG, Ignatova TN, Steindler DA. Neural stem cell heterogeneity demonstrated by molecular phenotyping of clonal neurospheres. Proc. Natl. Acad. Sci. U. S. A. 99:14506–14511, 2002.PubMedCrossRef
Zurück zum Zitat Warchol ME, Lambert PR, Goldstein BJ, Forge A, Corwin JT. Regenerative proliferation in inner ear sensory epithelia from adult guinea pigs and humans. Science 259:1619–1622, 1993.PubMedCrossRef Warchol ME, Lambert PR, Goldstein BJ, Forge A, Corwin JT. Regenerative proliferation in inner ear sensory epithelia from adult guinea pigs and humans. Science 259:1619–1622, 1993.PubMedCrossRef
Zurück zum Zitat White PM, Doetzlhofer A, Lee YS, Groves AK, Segil N. Mammalian cochlear supporting cells can divide and trans-differentiate into hair cells. Nature 441:984–987, 2006.PubMedCrossRef White PM, Doetzlhofer A, Lee YS, Groves AK, Segil N. Mammalian cochlear supporting cells can divide and trans-differentiate into hair cells. Nature 441:984–987, 2006.PubMedCrossRef
Zurück zum Zitat Xiang M, Gan L, Li D, Chen ZY, Zhou L, O’Malley BW Jr, Klein W, Nathans J. Essential role of POU-domain factor Brn-3c in auditory and vestibular hair cell development. Proc. Natl. Acad. Sci. U. S. A. 94:9445–9450, 1997.PubMedCrossRef Xiang M, Gan L, Li D, Chen ZY, Zhou L, O’Malley BW Jr, Klein W, Nathans J. Essential role of POU-domain factor Brn-3c in auditory and vestibular hair cell development. Proc. Natl. Acad. Sci. U. S. A. 94:9445–9450, 1997.PubMedCrossRef
Zurück zum Zitat Zhai S, Shi L, Wang BE, Zheng G, Song W, Hu Y, Gao WQ. Isolation and culture of hair cell progenitors from postnatal rat cochleae. J. Neurobiol. 65:282–293, 2005.PubMedCrossRef Zhai S, Shi L, Wang BE, Zheng G, Song W, Hu Y, Gao WQ. Isolation and culture of hair cell progenitors from postnatal rat cochleae. J. Neurobiol. 65:282–293, 2005.PubMedCrossRef
Zurück zum Zitat Zheng J, Shen W, He DZ, Long KB, Madison LD, Dallos P. Prestin is the motor protein of cochlear outer hair cells. Nature 405:149–155, 2000a.PubMedCrossRef Zheng J, Shen W, He DZ, Long KB, Madison LD, Dallos P. Prestin is the motor protein of cochlear outer hair cells. Nature 405:149–155, 2000a.PubMedCrossRef
Zurück zum Zitat Zheng JL, Helbig C, Gao WQ. Induction of cell proliferation by fibroblast and insulin-like growth factors in pure rat inner ear epithelial cell cultures. J. Neurosci. 17:216–226, 1997.PubMed Zheng JL, Helbig C, Gao WQ. Induction of cell proliferation by fibroblast and insulin-like growth factors in pure rat inner ear epithelial cell cultures. J. Neurosci. 17:216–226, 1997.PubMed
Zurück zum Zitat Zheng L, Sekerkova G, Vranich K, Tilney LG, Mugnaini E, Bartles JR. The deaf jerker mouse has a mutation in the gene encoding the espin actin-bundling proteins of hair cell stereocilia and lacks espins. Cell 102:377–385, 2000b.PubMedCrossRef Zheng L, Sekerkova G, Vranich K, Tilney LG, Mugnaini E, Bartles JR. The deaf jerker mouse has a mutation in the gene encoding the espin actin-bundling proteins of hair cell stereocilia and lacks espins. Cell 102:377–385, 2000b.PubMedCrossRef
Metadaten
Titel
Differential Distribution of Stem Cells in the Auditory and Vestibular Organs of the Inner Ear
verfasst von
Kazuo Oshima
Christian M. Grimm
C. Eduardo Corrales
Pascal Senn
Rodrigo Martinez Monedero
Gwenaëlle S. G. Géléoc
Albert Edge
Jeffrey R. Holt
Stefan Heller
Publikationsdatum
01.03.2007
Verlag
Springer-Verlag
Erschienen in
Journal of the Association for Research in Otolaryngology / Ausgabe 1/2007
Print ISSN: 1525-3961
Elektronische ISSN: 1438-7573
DOI
https://doi.org/10.1007/s10162-006-0058-3

Weitere Artikel der Ausgabe 1/2007

Journal of the Association for Research in Otolaryngology 1/2007 Zur Ausgabe

Erhebliches Risiko für Kehlkopfkrebs bei mäßiger Dysplasie

29.05.2024 Larynxkarzinom Nachrichten

Fast ein Viertel der Personen mit mäßig dysplastischen Stimmlippenläsionen entwickelt einen Kehlkopftumor. Solche Personen benötigen daher eine besonders enge ärztliche Überwachung.

Hörschwäche erhöht Demenzrisiko unabhängig von Beta-Amyloid

29.05.2024 Hörstörungen Nachrichten

Hört jemand im Alter schlecht, nimmt das Hirn- und Hippocampusvolumen besonders schnell ab, was auch mit einem beschleunigten kognitiven Abbau einhergeht. Und diese Prozesse scheinen sich unabhängig von der Amyloidablagerung zu ereignen.

„Übersichtlicher Wegweiser“: Lauterbachs umstrittener Klinik-Atlas ist online

17.05.2024 Klinik aktuell Nachrichten

Sie sei „ethisch geboten“, meint Gesundheitsminister Karl Lauterbach: mehr Transparenz über die Qualität von Klinikbehandlungen. Um sie abzubilden, lässt er gegen den Widerstand vieler Länder einen virtuellen Klinik-Atlas freischalten.

Betalaktam-Allergie: praxisnahes Vorgehen beim Delabeling

16.05.2024 Pädiatrische Allergologie Nachrichten

Die große Mehrheit der vermeintlichen Penicillinallergien sind keine. Da das „Etikett“ Betalaktam-Allergie oft schon in der Kindheit erworben wird, kann ein frühzeitiges Delabeling lebenslange Vorteile bringen. Ein Team von Pädiaterinnen und Pädiatern aus Kanada stellt vor, wie sie dabei vorgehen.

Update HNO

Bestellen Sie unseren Fach-Newsletter und bleiben Sie gut informiert – ganz bequem per eMail.