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JOURNAL ARTICLES
Formation of corneal endothelium is essential for anterior segment development - a transgenic mouse model of anterior segment dysgenesis
L.W. Reneker, D.W. Silversides, L. Xu, P.A. Overbeek
Development 2000 127: 533-542;
L.W. Reneker
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D.W. Silversides
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L. Xu
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P.A. Overbeek
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Summary

The anterior segment of the vertebrate eye is constructed by proper spatial development of cells derived from the surface ectoderm, which become corneal epithelium and lens, neuroectoderm (posterior iris and ciliary body) and cranial neural crest (corneal stroma, corneal endothelium and anterior iris). Although coordinated interactions between these different cell types are presumed to be essential for proper spatial positioning and differentiation, the requisite intercellular signals remain undefined. We have generated transgenic mice that express either transforming growth factor (alpha) (TGF(alpha)) or epidermal growth factor (EGF) in the ocular lens using the mouse (alpha)A-crystallin promoter. Expression of either growth factor alters the normal developmental fate of the innermost corneal mesenchymal cells so that these cells often fail to differentiate into corneal endothelial cells. Both sets of transgenic mice subsequently manifest multiple anterior segment defects, including attachment of the iris and lens to the cornea, a reduction in the thickness of the corneal epithelium, corneal opacity, and modest disorganization in the corneal stroma. Our data suggest that formation of a corneal endothelium during early ocular morphogenesis is required to prevent attachment of the lens and iris to the corneal stroma, therefore permitting the normal formation of the anterior segment.

REFERENCES

    1. Adamson E. D.
    (1990) Developmental activities of the epidermal growth factor receptor. Curr. Top. Dev. Biol 24, 1–29
    OpenUrlPubMed
    1. Bard J. B.,
    2. Hay E. D.
    (1975) The behavior of fibroblasts from the developing avian cornea. Morphology and movement in situ and in vitro. J. Cell Biol 67, 400–418
    1. Bard J. B.,
    2. Hay E. D.,
    3. Meller S. M.
    (1975) Formation of the endothelium of the avian cornea: a study of cell movement in vivo. Dev. Biol 42, 334–361
    OpenUrlCrossRefPubMed
    1. Churchill A.,
    2. Booth A.
    (1996) Genetics of aniridia and anterior segment dysgenesis. Br. J. Ophthalmol 80, 669–673
    OpenUrlFREE Full Text
    1. Cook C. S.
    (1989) Experimental models of anterior segment dysgenesis. Ophthalmic Paediatr. Genet 10, 33–46
    OpenUrlPubMed
    1. Cook C. S.,
    2. Nowotny A. Z.,
    3. Sulik K. K.
    (1987) Fetal alcohol syndrome. Eye malformations in a mouse model. Arch. Ophthalmol 105, 1576–1581
    OpenUrlCrossRefPubMedWeb of Science
    1. Cook C. S.,
    2. Sulik K. K.
    (1988) Keratolenticular dysgenesis (Peters' anomaly) as a result of acute embryonic insult during gastrulation. J. Pediatr. Ophthalmol. Strabismus 25, 60–66
    OpenUrlPubMed
    1. Cousins S. W.,
    2. McCabe M. M.,
    3. Danielpour D.,
    4. Streilein J. W.
    (1991) Identification of transforming growth factor-beta as an immunosuppressive factor in aqueous humor. Invest. Ophthalmol. Vis. Sci 32, 2201–2211
    OpenUrlAbstract/FREE Full Text
    1. Decsi A.,
    2. Peiffer R. L.,
    3. Qiu T.,
    4. Lee D. C.,
    5. Friday J. T.,
    6. Bautch V. L.
    (1994) Lens expression of TGF alpha in transgenic mice produces two distinct eye pathologies in the absence of tumors. Oncogene 9, 1965–1975
    OpenUrlPubMedWeb of Science
    1. Derynck R.,
    2. Zhang Y.,
    3. Feng X. H.
    (1998) Smads: transcriptional activators of TGF-beta responses. Cell 95, 737–740
    OpenUrlCrossRefPubMedWeb of Science
    1. Dublin I.
    (1970) Comparative embryologic studies of the early development of the cornea and the pupillary membrane in reptiles, birds and mammals. Acta Anat 76, 381–408
    OpenUrlPubMed
    1. Gage P. J.,
    2. Camper S. A.
    (1997) Pituitary homeobox 2, a novel member of the bicoid-related family of homeobox genes, is a potential regulator of anterior structure formation. Hum. Mol. Genet 6, 457–464
    OpenUrlAbstract/FREE Full Text
    1. Gordon-Thomson C.,
    2. de Iongh R. U.,
    3. Hales A. M.,
    4. Chamberlain C. G.,
    5. McAvoy J. W.
    (1998) Differential cataractogenic potency of TGF-beta1,-beta2, and-beta3 and their expression in the postnatal rat eye. Invest. Ophthalmol. Vis. Sci 39, 1399–1409
    OpenUrlAbstract/FREE Full Text
    1. Gumbiner B. M.
    (1996) Cell adhesion: the molecular basis of tissue architecture and morphogenesis. Cell 84, 345–357
    OpenUrlCrossRefPubMedWeb of Science
    1. Hanson I. M.,
    2. Fletcher J. M.,
    3. Jordan T.,
    4. Brown A.,
    5. Taylor D.,
    6. Adams R. J.,
    7. Punnett H. H.,
    8. van Heyningen V.
    (1994) Mutations at the PAX6 locus are found in heterogeneous anterior segment malformations including Peters' anomaly. Nat. Genet 6, 168–173
    OpenUrlCrossRefPubMedWeb of Science
    1. Hay E. D.
    (1979) Development of the vertebrate cornea. Int. Rev. Cytol 63, 263–322
    OpenUrlPubMed
    1. Ie D.,
    2. Gordon L. W.,
    3. Glaser B. M.,
    4. Pena R. A.
    (1994) Transforming growth factor-beta 2 levels increase following retinal laser photocoagulation. Curr. Eye Res 13, 743–746
    OpenUrlPubMedWeb of Science
    1. Johnston M. C.,
    2. Noden D. M.,
    3. Hazelton R. D.,
    4. Coulombre J. L.,
    5. Coulombre A. J.
    (1979) Origins of avian ocular and periocular tissues. Exp. Eye Res 29, 27–43
    OpenUrlCrossRefPubMedWeb of Science
    1. Joyce N. C.,
    2. Zieske J. D.
    (1997) Transforming growth factor-beta receptor expression in human cornea. Invest. Ophthalmol. Vis. Sci 38, 1922–1928
    OpenUrlAbstract/FREE Full Text
    1. Kemler R.
    (1992) Classical cadherins. Semin. Cell Biol 3, 149–155
    OpenUrlCrossRefPubMed
    1. Kenyon K. R.
    (1975) Mesenchymal dysgenesis in Peter's anomaly, sclerocornea and congenital endothelial dystrophy. Exp. Eye Res 21, 125–142
    OpenUrlCrossRefPubMedWeb of Science
    1. Kidson S. H.,
    2. Kume T.,
    3. Deng K. Y.,
    4. Winfrey V.,
    5. Hogan B. L. M.
    (1999) The forkhead/winged-helix gene, Mf1, is necessary for the normal development of the cornea and formation of the anterior chamber in the mouse eye. Dev. Biol 211, 306–322
    OpenUrlCrossRefPubMedWeb of Science
    1. Kretzschmar M.,
    2. Massague J.
    (1998) SMADs: mediators and regulators of TGF-beta signaling. Curr. Opin. Genet. Dev 8, 103–111
    OpenUrlCrossRefPubMedWeb of Science
    1. Kume T.,
    2. Deng K. Y.,
    3. Winfrey V.,
    4. Gould D. B.,
    5. Walter M. A.,
    6. Hogan B. L.
    (1998) The forkhead/winged helix gene Mf1 is disrupted in the pleiotropic mouse mutation congenital hydrocephalus. Cell 93, 985–996
    OpenUrlCrossRefPubMedWeb of Science
    1. Lee C. F.,
    2. Yue B. Y.,
    3. Robin J.,
    4. Sawaguchi S.,
    5. Sugar J.
    (1989) Immunohistochemical studies of Peters' anomaly. Ophthalmology 96, 958–964
    OpenUrlPubMed
    1. Lu M. F.,
    2. Pressman C.,
    3. Dyer R.,
    4. Johnson R. L.,
    5. Martin J. F.
    (1999) Function of Rieger syndrome gene in left-right asymmetry and craniofacial development. Nature 401, 276–278
    OpenUrlCrossRefPubMedWeb of Science
    1. Luetteke N. C.,
    2. Qiu T. H.,
    3. Peiffer R. L.,
    4. Oliver P.,
    5. Smithies O.,
    6. Lee D. C.
    (1993) TGF alpha deficiency results in hair follicle and eye abnormalities in targeted and waved-1 mice. Cell 73, 263–278
    OpenUrlCrossRefPubMedWeb of Science
    1. Mann G. B.,
    2. Fowler K. J.,
    3. Gabriel A.,
    4. Nice E. C.,
    5. Williams R. L.,
    6. Dunn A. R.
    (1993) Mice with a null mutation of the TGF alpha gene have abnormal skin architecture, wavy hair, and curly whiskers and often develop corneal inflammation. Cell 73, 249–261
    OpenUrlCrossRefPubMedWeb of Science
    1. Mears A. J.,
    2. Jordan T.,
    3. Mirzayans F.,
    4. Dubois S.,
    5. Kume T.,
    6. Parlee M.,
    7. Ritch R.,
    8. Koop B.,
    9. Kuo W. L.,
    10. Collins C.,
    11. Marshall J.,
    12. Gould D. B.,
    13. Pearce W.,
    14. Carlsson P.,
    15. Enerback S.,
    16. Morissette J.,
    17. Bhattacharya S.,
    18. Hogan B.,
    19. Raymond V.,
    20. Walter M. A.
    (1998) Mutations of the forkhead/winged-helix gene, FKHL7, in patients with Axenfeld-Rieger anomaly. Am. J. Hum. Genet 63, 1316–1328
    OpenUrlCrossRefPubMedWeb of Science
    1. Myles W. M.,
    2. Flanders M. E.,
    3. Chitayat D.,
    4. Brownstein S.
    (1992) Peters' anomaly: a clinicopathologic study. J. Pediatr. Ophthalmol. Strabismus 29, 374–381
    OpenUrlPubMed
    1. Nishimura D. Y.,
    2. Swiderski R. E.,
    3. Alward W. L.,
    4. Searby C. C.,
    5. Patil S. R.,
    6. Bennet S. R.,
    7. Kanis A. B.,
    8. Gastier J. M.,
    9. Stone E. M.,
    10. Sheffield V. C.
    (1998) The forkhead transcription factor gene FKHL7 is responsible for glaucoma phenotypes which map to 6p25. Nat. Genet 19, 140–147
    OpenUrlCrossRefPubMedWeb of Science
    1. Overbeek P. A.,
    2. Chepelinsky A. B.,
    3. Khillan J. S.,
    4. Piatigorsky J.,
    5. Westphal H.
    (1985) Lens-specific expression and developmental regulation of the bacterial chloramphenicol acetyltransferase gene driven by the murine alpha A-crystallin promoter in transgenic mice. Proc.Natl. Acad. Sci. USA 82, 7815–7819
    OpenUrlAbstract/FREE Full Text
    1. Partanen A. M.
    (1990) Epidermal growth factor and transforming growth factor-alpha in the development of epithelial-mesenchymal organs of the mouse. Curr. Top. Dev. Biol 24, 31–55
    OpenUrlPubMed
    1. Pei Y. F.,
    2. Rhodin J. A.
    (1970) The prenatal development of the mouse eye. Anat. Rec 168, 105–125
    OpenUrlCrossRefPubMed
    1. Reneker L. W.,
    2. Silversides D. W.,
    3. Patel K.,
    4. Overbeek P. A.
    (1995) TGF alpha can act as a chemoattractant to perioptic mesenchymal cells in developing mouse eyes. Development 121, 1669–1680
    OpenUrlAbstract
    1. Robinson M. L.,
    2. Ohtaka-Maruyama C.,
    3. Chan C. C.,
    4. Jamieson S.,
    5. Dickson C.,
    6. Overbeek P. A.,
    7. Chepelinsky A. B.
    (1998) Disregulation of ocular morphogenesis by lens-specific expression of FGF-3/int-2 in transgenic mice. Dev. Biol 198, 13–31
    OpenUrlCrossRefPubMedWeb of Science
    1. Robinson M. L.,
    2. Overbeek P. A.,
    3. Verran D. J.,
    4. Grizzle W. E.,
    5. Stockard C. R.,
    6. Friesel R.,
    7. Maciag T.,
    8. Thompson J. A.
    (1995) Extracellular FGF-1 acts as a lens differentiation factor in transgenic mice. Development 121, 505–514
    OpenUrlAbstract
    1. Rosenthal A.,
    2. Lindquist P. B.,
    3. Bringman T. S.,
    4. Goeddel D. V.,
    5. Derynck R.
    (1986) Expression in rat fibroblasts of a human transforming growth factor-alpha cDNA results in transformation. Cell 46, 301–319
    OpenUrlCrossRefPubMedWeb of Science
    1. Sanford L. P.,
    2. Ormsby I.,
    3. Gittenberger-de Groot A. C.,
    4. Sariola H.,
    5. Friedman R.,
    6. Boivin G. P.,
    7. Cardell E. L.,
    8. Doetschman T.
    (1997) TGFbeta2 knockout mice have multiple developmental defects that are non-overlapping with other TGFbeta knockout phenotypes. Development 124, 2659–2670
    OpenUrlAbstract
    1. Semina E. V.,
    2. Reiter R.,
    3. Leysens N. J.,
    4. Alward W. L.,
    5. Small K. W.,
    6. Datson N. A.,
    7. Siegel-Bartelt J.,
    8. Bierke-Nelson D.,
    9. Bitoun P.,
    10. Zabel B. U.,
    11. Carey J. C.,
    12. Murray J. C.
    (1996) Cloning and characterization of a novel bicoid-related homeobox transcription factor gene, RIEG, involved in Rieger syndrome. Nature Genet 14, 392–399
    OpenUrlCrossRefPubMedWeb of Science
    1. Shields M. B.,
    2. Buckley E.,
    3. Klintworth G. K.,
    4. Thresher R.
    (1985) Axenfeld-Rieger syndrome. A spectrum of developmental disorders. Surv. Ophthalmol 29, 387–409
    OpenUrlCrossRefPubMedWeb of Science
    1. Srinivasan Y.,
    2. Lovicu F. J.,
    3. Overbeek P. A.
    (1998) Lens-specific expression of transforming growth factor beta1 in transgenic mice causes anterior subcapsular cataracts. J. Clin. Invest 101, 625–634
    OpenUrlPubMedWeb of Science
    1. Takeichi M.
    (1991) Cadherin cell adhesion receptors as a morphogenetic regulator. Science 251, 1451–1415
    OpenUrlAbstract/FREE Full Text
    1. Taketo M.,
    2. Schroeder A. C.,
    3. Mobraaten L. E.,
    4. Gunning K. B.,
    5. Hanten G.,
    6. Fox R. R.,
    7. Roderick T. H.,
    8. Stewart C. L.,
    9. Lilly F.,
    10. Hansen C. T.,
    11. et al.
    (1991) FVB/N: an inbred mouse strain preferable for transgenic analyses. Proc.Natl. Acad. Sci. USA 88, 2065–2069
    OpenUrlAbstract/FREE Full Text
    1. Vleminckx K.,
    2. Kemler R.
    (1999) Cadherins and tissue formation: integrating adhesion and signaling. BioEssays 21, 211–220
    OpenUrlCrossRefPubMedWeb of Science
    1. Waring G. O., 3rd.,
    2. Rodrigues M. M.,
    3. Laibson P. R.
    (1975) Anterior chamber cleavage syndrome. A stepladder classification. Surv. Ophthalmol 20, 3–27
    OpenUrlCrossRefPubMed
    1. Williams D. L.
    (1993) A comparative approach to anterior segment dysgenesis. Eye 7, 607–616
    1. Zinn K. M.
    (1970) Changes in corneal ultrastructure resulting from early lens removal in the developing chick embryo. Invest. Ophthalmol 9, 165–182
    OpenUrlAbstract/FREE Full Text
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JOURNAL ARTICLES
Formation of corneal endothelium is essential for anterior segment development - a transgenic mouse model of anterior segment dysgenesis
L.W. Reneker, D.W. Silversides, L. Xu, P.A. Overbeek
Development 2000 127: 533-542;
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JOURNAL ARTICLES
Formation of corneal endothelium is essential for anterior segment development - a transgenic mouse model of anterior segment dysgenesis
L.W. Reneker, D.W. Silversides, L. Xu, P.A. Overbeek
Development 2000 127: 533-542;

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