Revisão Acesso aberto Revisado por pares

Multiple neurotrophic signalling: certain TGF molecules are involved in retinal development and maturation, but do they complement one another's actions?

2003; Wiley; Volume: 27; Issue: 12 Linguagem: Inglês

10.1016/j.cellbi.2003.09.008

ISSN

1095-8355

Autores

Néstor Gabriel Carri,

Tópico(s)

Retinal Development and Disorders

Resumo

Cell Biology InternationalVolume 27, Issue 12 p. 1033-1036 Full Access Multiple neurotrophic signalling: certain TGF molecules are involved in retinal development and maturation, but do they complement one another's actions? Néstor Gabriel Carri, Corresponding Author Néstor Gabriel Carri Molecular Biology, IMBICE, Camino Belgrano y 526, La Plata 1900, Argentina Developmental Neuroscience, Department of Neuroscience, Uppsala University, Uppsala, SwedenCorresponding author. Tel.: +54-221-4210112; fax: +54-221-4253320 [email protected]Search for more papers by this author Néstor Gabriel Carri, Corresponding Author Néstor Gabriel Carri Molecular Biology, IMBICE, Camino Belgrano y 526, La Plata 1900, Argentina Developmental Neuroscience, Department of Neuroscience, Uppsala University, Uppsala, SwedenCorresponding author. Tel.: +54-221-4210112; fax: +54-221-4253320 [email protected]Search for more papers by this author First published: 02 January 2013 https://doi.org/10.1016/j.cellbi.2003.09.008Citations: 2AboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL Share a linkShare onEmailFacebookxLinkedInRedditWechat References R. Adler, T.L. Belecky-Adams The role of bone morphogenetic proteins in the differentiation of the ventral optic cup. Development 129 2002 3161–3171. 10.1242/dev.129.13.3161 CASPubMedWeb of Science®Google Scholar C. Allington, I.L. Shamovsky, G.M. Ross, R.J. Riopelle Zinc inhibits p75NTR-mediated apoptosis in chick neural retina. Cell Death Differ 8 2001 451–456. 10.1038/sj.cdd.4400831 CASPubMedWeb of Science®Google Scholar J. Atkinson, M.K. Panni, R.D. Lund Effects of neurotrophins on embryonic retinal outgrowth. Brain Res, Dev Brain Res 112 1999 173–180. 10.1016/S0165-3806(98)00165-5 CASPubMedWeb of Science®Google Scholar A.J. Barber, M. Nakamura, E.B. Wolpert, C.E. Reiter, G.M. Seigel, D.A. Antonetti et al. Insulin rescues retinal neurons from apoptosis by a phosphatidylinositol 3-kinase/Akt-mediated mechanism that reduces the activation of caspase-3. J Biol Chem 276 2001 32814–32821. 10.1074/jbc.M104738200 CASPubMedWeb of Science®Google Scholar T.L. Belecky-Adams, D. Scheurer, R. Adler Activin family members in the developing chick retina: expression patterns, protein distribution, and in vitro effects. Dev Biol 210 1999 107–123. 10.1006/dbio.1999.9268 CASPubMedWeb of Science®Google Scholar T. Belecky-Adams, R. Adler Developmental expression patterns of bone morphogenetic proteins, receptors, and binding proteins in the chick retina. J Comp Neurol 430 2001 562–572. 10.1002/1096-9861(20010219)430:4 3.0.CO;2-S CASPubMedWeb of Science®Google Scholar A. Bosco, R. Linden BDNF and NT-4 differentially modulate neurite outgrowth in developing retinal ganglion cells. J Neurosci Res 57 1999 759–769. 10.1002/(SICI)1097-4547(19990915)57:6 3.0.CO;2-Y CASPubMedWeb of Science®Google Scholar R. Butowt, C.S. Von Bartheld Sorting of internalized neurotrophins into an endocytic transcytosis pathway via the Golgi system: Ultrastructural analysis in retinal ganglion cells. J Neurosci 21 2001 8915–8930. CASPubMedWeb of Science®Google Scholar M. Caleo, E. Menna, S. Chierzi, M.C. Cenni, L. Maffei Brain-derived neurotrophic factor is an anterograde survival factor in the rat visual system. Curr Biol 10 2000 1155–1161. 10.1016/S0960-9822(00)00713-2 CASPubMedWeb of Science®Google Scholar G. Calvaruso, E. Gerbino, M. Lauricella, G. Tesoriere The effects of TGF-β1 on chick embryo retina development in vitro. Int J Dev Neurosci 15 1997 973–981. 10.1016/S0736-5748(97)00046-4 CASPubMedWeb of Science®Google Scholar W. Cao, F. Li, R.H. Steinberg, M.M. Lavail Development of normal and injury-induced gene expression of α and β FGF, CNTF, BDNF, GFAP and IGF-I in the rat retina. Exp Eye Res 72 2001 591–604. 10.1006/exer.2001.0990 CASPubMedWeb of Science®Google Scholar N.G. Carri, H. Bengtsson, M.F. Charette, T. Ebendal BMPR-II expression and OP-1 effects in developing chicken retinal explants. Neuroreport 9 1998 1097–1101. 10.1097/00001756-199804200-00026 CASPubMedWeb of Science®Google Scholar A. Cellerino, K. Kohler Brain-derived neurotrophic factor/neurotrophin-4 receptor TrkB is localized on ganglion cells and dopaminergic amacrine cells in the vertebrate retina. J Comp Neurol 386 1997 149–160. 10.1002/(SICI)1096-9861(19970915)386:1 3.0.CO;2-F CASPubMedWeb of Science®Google Scholar S.H. Chalasani, F. Baribaud, C.M. Coughlan, M.J. Sunshine, V.M. Lee, R.W. Doms et al. The chemokine stromal cell-derived factor-1 promotes the survival of embryonic retinal ganglion cells. J Neurosci 23 2003 4601–4612. 10.1523/JNEUROSCI.23-11-04601.2003 CASPubMedWeb of Science®Google Scholar S.H. Chalasani, K.A. Sabelko, M.J. Sunshine, D.R. Littman, J.A. Raper A chemokine, SDF-1, reduces the effectiveness of multiple axonal repellents and is required for normal axon pathfinding. J Neurosci 23 2003 1360–1371. 10.1523/JNEUROSCI.23-04-01360.2003 CASPubMedWeb of Science®Google Scholar L. Cheng, P. Sapieha, P. Kittlerova, W.W. Hauswirth, A. Di Polo TrkB gene transfer protects retinal ganglion cells from axotomy-induced death in vivo. J Neurosci 22 2002 3977–3986. 10.1523/JNEUROSCI.22-10-03977.2002 CASPubMedWeb of Science®Google Scholar S. Cohen-Cory, E. Escandon, S.E. Fraser The cellular patterns of BDNF and TrkB expression suggest multiple roles for BDNF during Xenopus visual system development. Dev Biol 179 1996 102–115. 10.1006/dbio.1996.0244 CASPubMedWeb of Science®Google Scholar Q. Cui, K.F. So, H.K. Yip Major biological effects of neurotrophic factors on retinal ganglion cells in mammals. Biol Signals Recept 7 1998 220–226 Review. 10.1159/000014546 CASPubMedWeb of Science®Google Scholar K. Cusato, A. Bosco, R. Linden, B.E. Reese Cell death in the inner nuclear layer of the retina is modulated by BDNF. Brain Res Dev Brain Res 139 2002 325–330. 10.1016/S0165-3806(02)00570-9 CASPubMedWeb of Science®Google Scholar I. Das, J.R. Sparrow, M.I. Lin, E. Shih, T. Mikawa, B.L. Hempstead TrkC signaling is required for retinal progenitor cell proliferation. J Neurosci 20 2000 2887–2895. CASPubMedWeb of Science®Google Scholar A.A. Davis, M.M. Matzuk, T.A. Reh Activin A promotes progenitor differentiation into photoreceptors in rodent retina. Mol Cell Neurosci 5 2000 11–21. 10.1006/mcne.1999.0806 CASWeb of Science®Google Scholar J. Ding, B. Hu, L.S. Tang, H.K. Yip Study of the role of the low-affinity neurotrophin receptor p75 in naturally occurring cell death during development of the rat retina. Dev Neurosci 23 2001 390–398. 10.1159/000048725 CASPubMedWeb of Science®Google Scholar I. Ezeonu, B. Derrickson, K. Dutt Cell fate decisions in a human retinal precursor cell line: basic fibroblast growth factor- and transforming growth factor-alpha-mediated differentiation. DNA Cell Biol 19 2000 527–537. 10.1089/104454900439764 CASPubMedWeb of Science®Google Scholar Z.D. Ezzeddine, X. Yang, T. Dechiara, G. Yancopoulos, C.L. Cepko Postmitotic cells fated to become rod photoreceptors can be respecified by CNTF treatment of the retina. Development 124 1997 1055–1067. CASPubMedWeb of Science®Google Scholar A.J. Fischer, T.A. Reh Growth factors induce neurogenesis in the ciliary body. Dev Biol 259 2003 225–240. 10.1016/S0012-1606(03)00178-7 CASPubMedWeb of Science®Google Scholar J.M. Frade Unscheduled re-entry into the cell cycle induced by NGF precedes cell death in nascent retinal neurones. J Cell Sci 3 2000 1139–1148. Google Scholar M. Gonzalez-Hoyuela, J.A. Barbas, A. Rodriguez-Tebar The autoregulation of retinal ganglion cell number. Development 128 2001 117–124. CASPubMedWeb of Science®Google Scholar G. Gutierrez-Ospina, A. Gutierrez de la Barrera, J. Larriva, M. Giordano Insulin-like growth factor I partly prevents axon elimination in the neonate rat optic nerve. Neurosci Lett 325 2002 207–210. 10.1016/S0304-3940(02)00293-8 CASPubMedWeb of Science®Google Scholar F. Hallbook, A. Backstrom, K. Kullander, T. Ebendal, N.G. Carri Expression of neurotrophins and Trk receptors in the avian retina. J Comp Neurol 364 1996 664–676. 10.1002/(SICI)1096-9861(19960122)364:4 3.0.CO;2-1 CASPubMedWeb of Science®Google Scholar K.H. Herzog, C.S. Von Bartheld Contributions of the optic tectum and the retina as sources of brain-derived neurotrophic factor for retinal ganglion cells in the chick embryo. J Neurosci 18 1998 2891–2906. 10.1523/JNEUROSCI.18-08-02891.1998 CASPubMedWeb of Science®Google Scholar S. Hirsch, M. Labes, M. Bahr Changes in BDNF and neurotrophin receptor expression in degenerating and regenerating rat retinal ganglion cells. Restor Neurol Neurosci 17 2000 125–134. CASPubMedWeb of Science®Google Scholar J.H. Holland: Emergence from chaos to order. 1998, Helix Books, Addison-Wesley Publishing Company Inc, Reading (MA, USA) 299 pages. Web of Science®Google Scholar L.D. Hutson, M. Bothwell Expression and function of Xenopus laevis p75 (NTR) suggest evolution of developmental regulatory mechanisms. J Neurobiol 49 2001 79–98 Review. 10.1002/neu.1067 CASPubMedWeb of Science®Google Scholar M.F. Insua, A. Garelli, N.P. Rotstein, O.L. German, A. Arias, L.E. Politi Cell cycle regulation in retinal progenitors by glia-derived neurotrophic factor and docosahexaenoic acid. Invest Ophthalmol Vis Sci 44 2003 2235–2244. 10.1167/iovs.02-0952 PubMedWeb of Science®Google Scholar S.A. Jo, E.Y. Wang, L.I. Benowitz CNTF is a major outgrowth-promoting factor for mammalian retinal ganglion cells. J Neurochem 69 1 1997 S141. Google Scholar M. Karlsson, N. Lindqvist, R. Mayordomo, F. Hallbook Overlapping and specific patterns of GDNF, c-ret and GFRα mRNA expression in the developing chicken retina. Mech Dev 114 2002 161–165. 10.1016/S0925-4773(02)00045-X CASPubMedWeb of Science®Google Scholar F. Kashiwagi, K. Kashiwagi, Y. Iizuka, S. Tsukahara Effects of brain-derived neurotrophic factor and neurotrophin-4 on isolated cultured retinal ganglion cells: evaluation by flow cytometry. Invest Ophthalmol Vis Sci 41 2000 2373–2377. CASPubMedWeb of Science®Google Scholar N. Kinkl, J. Ruiz, E. Vecino, M. Frasson, J. Sahel, D. Hicks Possible involvement of an FGF9-FGF receptor-3-mediated pathway in adult pig retinal ganglion cell survival in vitro. Mol Cell Neurosci 23 2003 39–53. 10.1016/S1044-7431(03)00070-8 CASPubMedWeb of Science®Google Scholar N. Klocker, P. Kermer, J.H. Weishaupt, M. Labes, R. Ankerhold, M. Bahr Brain-derived neurotrophic factor-mediated neuroprotection of adult rat retinal ganglion cells in vivo does not exclusively depend on phosphatidyl-inositol-3′-kinase/protein kinase B signaling. J Neurosci 20 2000 6962–6967. 10.1523/JNEUROSCI.20-18-06962.2000 CASPubMedWeb of Science®Google Scholar P.D. Koeberle, A.K. Ball Neurturin enhances the survival of axotomized retinal ganglion cells in vivo: combined effects with glial cell line-derived neurotrophic factor and brain-derived neurotrophic factor. Neuroscience 110 2002 555–567. 10.1016/S0306-4522(01)00557-7 CASPubMedWeb of Science®Google Scholar F.Q. Liang, N.S. Dejneka, D.R. Cohen, N.V. Krasnoperova, J. Lem, A.M. Maguire et al. AAV-mediated delivery of ciliary neurotrophic factor prolongs photoreceptor survival in the rhodopsin knockout mouse. Mol Ther 3 2001 241–248. 10.1006/mthe.2000.0252 CASPubMedWeb of Science®Google Scholar B. Lom, J. Cogen, A.L. Sanchez, T. Vu, S. Cohen-Cory Local and target-derived brain-derived neurotrophic factor exerts opposing effects on the dendritic arborization of retinal ganglion cells in vivo. J Neurosci 22 2002 7639–7649. 10.1523/JNEUROSCI.22-17-07639.2002 CASPubMedWeb of Science®Google Scholar B. Lom, S. Cohen-Cory Brain-derived neurotrophic factor differentially regulates retinal ganglion cell dendritic and axonal arborization in vivo. J Neurosci 19 1999 9928–9938. 10.1523/JNEUROSCI.19-22-09928.1999 CASPubMedWeb of Science®Google Scholar I. Masai, Z. Lele, M. Yamaguchi, A. Komori, A. Nakata, Y. Nishiwaki et al. N-cadherin mediates retinal lamination, maintenance of forebrain compartments and patterning of retinal neurites. Development 130 2003 2479–2494. 10.1242/dev.00465 CASPubMedWeb of Science®Google Scholar L.H. McGee Sanftner, H. Abel, W.W. Hauswirth, J.G. Flannery Glial cell line derived neurotrophic factor delays photoreceptor degeneration in a transgenic rat model of retinitis pigmentosa. Mol Ther 4 2001 622–629. 10.1006/mthe.2001.0498 CASPubMedWeb of Science®Google Scholar T.C. Nag, S. Wadhwa Neurotrophin receptors (Trk A, Trk B, and Trk C) in the developing and adult human retina. Brain Res, Dev Brain Res 117 1999 179–189. 10.1016/S0165-3806(99)00121-2 CASPubMedWeb of Science®Google Scholar J.M. Ogilvie, J.D. Speck, J.M. Lett Growth factors in combination, but not individually, rescue rd mouse photoreceptors in organ culture. Exp Neurol 161 2000 676–685. 10.1006/exnr.1999.7291 CASPubMedWeb of Science®Google Scholar H. Oku, T. Ikeda, Y. Honma, C. Sotozono, K. Nishida, Y. Nakamura et al. Gene expression of neurotrophins and their high-affinity Trk receptors in cultured human Muller cells. Ophthalmic Res 34 2002 38–42. 10.1159/000048323 CASPubMedWeb of Science®Google Scholar D.C. Otteson, P.F. Cirenza, P.F. Hitchcock Persistent neurogenesis in the teleost retina: evidence for regulation by the growth-hormone/insulin-like growth factor-I axis. Mech Dev 117 2002 137–149. 10.1016/S0925-4773(02)00188-0 CASPubMedWeb of Science®Google Scholar L. Politi, N. Rotstein, N. Carri Effects of docosahexaenoic acid on retinal development: cellular and molecular aspects. Lipids 36 2001 927–935. 10.1007/s11745-001-0803-8 CASPubMedWeb of Science®Google Scholar L. Politi, N.P. Rotstein, N.G. Carri Effect of GDNF on neuroblast proliferation and photoreceptor survival: additive protection with docosahexaenoic acid. Invest Ophthalmol Vis Sci 42 2001 3008–3015. CASPubMedWeb of Science®Google Scholar L.E. Politi, N.P. Rotstein, G. Salvador, N.M. Giusto, M.F. Insua Insulin-like growth factor-I is a potential trophic factor for amacrine cells. J Neurochem 76 2001 1199–1211. 10.1046/j.1471-4159.2001.00128.x CASPubMedWeb of Science®Google Scholar D.W. Rickman Parvalbumin immunoreactivity is enhanced by brain-derived neurotrophic factor in organotypic cultures of rat retina. J Neurobiol 41 1999 376–384. 10.1002/(SICI)1097-4695(19991115)41:3 3.0.CO;2-F CASPubMedWeb of Science®Google Scholar M. Solursh, R.M. Langille, J. Wood, T.K. Sampath Osteogenic protein-1 is required for mammalian eye development. Biochem Biophys Res Commun 218 1996 438–443. 10.1006/bbrc.1996.0078 CASPubMedWeb of Science®Google Scholar G. Straten, C. Schmeer, A. Kretz, E. Gerhardt, S. Kugler, J.B. Schulz et al. Potential synergistic protection of retinal ganglion cells from axotomy-induced apoptosis by adenoviral administration of glial cell line-derived neurotrophic factor and X-chromosome-linked inhibitor of apoptosis. Neurobiol Dis 11 2003 123–133. 10.1006/nbdi.2002.0543 CASWeb of Science®Google Scholar K. Takahata, H. Katsuki, T. Kume, D. Nakata, K. Ito, S. Muraoka et al. Retinal neuronal death induced by intraocular administration of a nitric oxide donor and its rescue by neurotrophic factors in rats. Invest Ophthalmol Vis Sci 44 2003 1760–1766. 10.1167/iovs.02-0471 PubMedWeb of Science®Google Scholar M. Takano, H. Horie, Y. Iijima, M. Dezawa, H. Sawada, Y. Ishikawa Brain derived neurotrophic factor enhances neurite regeneration from retinal ganglion cells in aged human retina in vitro. Exp Eye Res 74 2002 319–323. 10.1006/exer.2001.1118 CASPubMedWeb of Science®Google Scholar B.A. Van Adel, C. Kostic, N. Deglon, A.K. Ball, Y. Arsenijevic Delivery of ciliary neurotrophic factor via lentiviral-mediated transfer protects axotomized retinal ganglion cells for an extended period of time. Hum Gene Ther 14 2003 103–115. 10.1089/104303403321070801 CASPubMedWeb of Science®Google Scholar C.S. Von Bartheld, R. Butowt Expression of neurotrophin-3 (NT-3) and anterograde axonal transport of endogenous NT-3 by retinal ganglion cells in chick embryos. J Neurosci 20 2000 736–748. PubMedWeb of Science®Google Scholar X. Wang, R. Butowt, M.R. Vasko, C.S. Von Bartheld Links Mechanisms of the release of anterogradely transported neurotrophin-3 from axon terminals. J Neurosci 22 2002 931–945. CASPubMedWeb of Science®Google Scholar D. Watkins Reviving retina. Sci Am 129 special issue 2003 20. Google Scholar Citing Literature Volume27, Issue12December 2003Pages 1033-1036 ReferencesRelatedInformation

Referência(s)