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Culture of Highly Differentiated Human Retinal Pigment Epithelium for Analysis of the Polarized Uptake, Processing, and Secretion of Retinoids

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Retinoids

Part of the book series: Methods in Molecular Biology ((MIMB,volume 652))

Abstract

The retinal pigment epithelium (RPE) occupies a strategic position within the eye, given its location between the neurosensory retina and the vascular bed (choroid) that nourishes the photoreceptor cells (rods and cones). Among the many attributes of this versatile monolayer of cells is its unique ability to convert vitamin A (retinol) into the prosthetic group (11-cis-retinal) for the rod and cone opsins, the photopigments essential for vision. It does so by absorbing retinol via a receptor-mediated process that involves the interaction of a carrier protein secreted by the liver, retinol-binding protein (RBP), and a receptor/channel that is the gene product of STRA6 (stimulated by retinoic acid 6). Following its uptake through the basolateral plasma membrane of the RPE, retinol encounters a brigade of binding proteins, membrane-bound receptors, and enzymes that mediate its multi-step conversion to 11-cis-retinal and the transport of this visual chromophore to the light-sensitive photoreceptor cell outer segment, the portion of the cell that houses the phototransduction cascade. This process is iterative, repeating itself via the retinoid visual cycle. Most of the human genes that code for this cohort of proteins carry disease-causing mutations in humans. The consequences of these mutations range in severity from relatively mild dysfunction such as congenital stationary night blindness to total blindness. The RPE, although post-mitotic in situ, is capable of proliferation when removed from its native milieu. This offers one the opportunity to study the retinoid visual cycle in modular form, providing insights into this intriguing process in health and disease. This chapter describes a cell culture method whereby the entire visual cycle can be created in vitro.

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References

  1. Allikmets, R., Singh, N., Sun, H., et al. (1997) A photoreceptor cell-specific ATP-binding transporter gene (ABCR) is mutated in recessive Stargardt macular dystrophy. Nat. Genet. 15, 236–246.

    Article  PubMed  CAS  Google Scholar 

  2. Weng, J., Mata, N.L., Azarian, S.M., Tzekov, R.T. Birch, D.G., Travis, G.H. (1999) Insights into the function of Rim protein in photoreceptors and etiology of Stargardt’s disease from the phenotype in abcr knockout mice. Cell 98, 13–23.

    Article  PubMed  CAS  Google Scholar 

  3. Marlhens, F., Bareil, D., Griffoin, J-M, et al. (1997) Mutations in RPE65 cause Leber’s congenital Amaurosis. Nat. Genet. 17, 139–141.

    Article  PubMed  CAS  Google Scholar 

  4. Redmond, T.M., Yu, S., Lee, E., et al. (1998) Rpe65 is necessary for production of 11-cis-vitamin A in the retinal visual cycle. Nat. Genet. 20, 344–351.

    Article  PubMed  CAS  Google Scholar 

  5. Allikmets, R., Dean, M. (2008) Bringing age-related macular degeneration into focus. Nat. Genet. 40, 820–821.

    Article  PubMed  CAS  Google Scholar 

  6. Gehrs, K.M., Jackson, J.R., Brown, E.N., Allikmets, M., Hageman, G. (2009) Complement, age-related macular degeneration and a vision of the future. Arch. Ophthalmol. 128, 349–358.

    Google Scholar 

  7. Travis, G.H., Golczak, M., Moise, A.R., Palczewski, K. (2007) Diseases caused by defects in the visual cycle: Retinoids as potential therapeutic agents. Annu. Rev. Pharmacol. Toxicol. 47, 469–512.

    Article  PubMed  CAS  Google Scholar 

  8. Bok, D., Heller, J. (1976) Transport of retinol from the blood to the retina: An autoradiographic study of the pigment epithelial cell surface receptor for plasma retinol-binding protein. Exp. Eye Res. 22, 395–402.

    Article  PubMed  CAS  Google Scholar 

  9. Kanai, M., Raz, A., Goodman, D.S. (1968) Retinol-binding protein: The transport protein for vitamin A in human plasma. J. Clin. Invest. 47, 2025–2044.

    Article  PubMed  CAS  Google Scholar 

  10. Bok, D., Heller, J. (1980). Autoradiographic localization of serum retinol-binding protein receptors on the pigment epithelium of dystrophic rat retinas. Invest. Ophthalmol. Vis. Sci. 19, 1405–1414.

    PubMed  CAS  Google Scholar 

  11. Kawaguchi, R., Yu, J., Honda, J., et al. (2007) A membrane receptor for retinol binding protein mediates cellular uptake of Vitamin A. Science 315, 820–825.

    Article  PubMed  CAS  Google Scholar 

  12. Golzio, C., Martinovic-Bouriel, J., Thomas, S., et al. (2007) Matthew-Wood syndrome is caused by truncating mutations in the retinol-binding protein receptor gene STRA6. Am. M. Hum. Genet. 80, 1179–1187.

    Article  CAS  Google Scholar 

  13. Pasutto, F., Sticht, H., Hammersen, G., et al. (2007) Mutations in STRA6 cause a broad spectrum of malformations including anophthalmia, congenital heart defects, diaphragmatic hernia, alveolar capillary dysplasia, lung hypoplasia and mental retardation. Am. J. Hum. Genet. 80, 550–560.

    Article  PubMed  CAS  Google Scholar 

  14. MacDonald, P.N., Ong, D.E. (1988) Evidence for a lecithin-retinol acyltransferase activity in the rat small intestine. J. Biol. Chem. 263, 12478–12482.

    PubMed  CAS  Google Scholar 

  15. Saari, J., Bredberg, L. (1989) Lecithin: Retinolacyltransferase in retinal pigment epithelial microsomes. J. Biol. Chem. 264, 8636–8648.

    PubMed  CAS  Google Scholar 

  16. Ruiz, A., Winston, A., Rando, R., Bok, D. (1999) Molecular and biochemical characterization of lecithin retinol acyltransferase. J. Biol. Chem. 274, 3834–3841.

    Article  PubMed  CAS  Google Scholar 

  17. Bernstein, P., Law, W., Rando, R. (1987) Biochemical characterization of the retinoid isomerase4 system of the eye. J. Biol. Chem. 262, 16848–16857.

    PubMed  CAS  Google Scholar 

  18. Deigner, P., Law, W., Canada, F., Rando, R. (1989) Membranes as the energy source in the undergone transformation of vitamin A to 11-cis-retinol. Science 244, 968–971.

    Article  PubMed  CAS  Google Scholar 

  19. Jin, M., Moghrabi, W.N., Sun, H., Travis, G.H. (2005) Rpe65 is the retinoid isomerase in bovine retinal pigment epithelium. Cell 122, 449–459.

    Article  PubMed  CAS  Google Scholar 

  20. Moiseyev, G., Chen, Y., Takahashi, Y., Wu, B.X., Ma, J.X. (2005) RPE65 is the isomerhydrolase in the retinoid visual cycle. Proc. Nat. Acad. Sci. USA 102, 12413–12418.

    Article  PubMed  CAS  Google Scholar 

  21. Bok, D. (1994) The retinal pigment epithelium; a versatile partner in vision. J. Cell Sci. 17(Suppl), 189–195.

    Google Scholar 

  22. Redmond, R.M., Poliakov, E., Yu, S., Tsai, J.Y., Lu, Z., Gentlemen, S. (2005) Mutation of key residues of ROE65 abolishes its enzymatic role as isomerohydrolase in the visual cycle. Proc. Natl. Acad. Sci. USA 102, 13658–13663.

    Article  PubMed  CAS  Google Scholar 

  23. Molday, L.L., Rabin, A.R., Molday, R.S. (2000) ABCR expression in foveal cone photoreceptors and its role in Stargardt macular dystrophy. Nat. Genet. 25, 67–73.

    Article  PubMed  Google Scholar 

  24. Eldred, G.E., Lasky, M.R. (1993) Retinal age pigments generated by self-assembling lysosomotropic detergents. Nature 361, 724–726.

    Article  PubMed  CAS  Google Scholar 

  25. Maguire, A.M., Simonelli, F., Pierce, E.A. et al. (2008) Safety and efficacy of gene transfer for Leber’s congenital Amaurosis. N. Engl. J. Med. 358, 2240–2248.

    Article  PubMed  CAS  Google Scholar 

  26. Bainbridge, J.W., Smith, A.J., Barker, S.S., et al. (2008) Effect of gene therapy on visual function in Leber’s congenital Amaurosis. N. Engl. J. Med. 358, 2231–2239.

    Article  PubMed  CAS  Google Scholar 

  27. Hauswirth, W.W., Aleman, T.S., Causal, S., et al. (2008) Treatment of Leber congenital amaurosis due to RPE65 mutations by ocular subretinal injection of adeno-associated virus gene vector: Short-term results of a phase I trial. Hum. Gene Ther. 19, 979–990.

    Article  PubMed  CAS  Google Scholar 

  28. Zhou, J., Jang, P., Kim, S.R., Sparrow, J.R. (2006) Complement activation by photooxidation products of A2E, a lipofuscin constituent of the retinal pigment epithelium. Proc. Natl. Acad. Sci. USA 103, 16182–16187.

    Article  PubMed  CAS  Google Scholar 

  29. Hageman, G.S., Anderson, D.H. Johnson, L.V., et al. (2005) A common haplotype in the complement regulatory gene factor H (HF1/CFH) predisposes individuals to age-related macular degeneration. Proc. Natl. Acad. Sci. USA 102, 7227–7232.

    Article  PubMed  CAS  Google Scholar 

  30. Haines, J.L., Hauser, M.A., Schmidt, S., et al. (2005) Complement factor H variant increases the risk of age-related macular degeneration. Science 308, 419–421.

    Article  PubMed  CAS  Google Scholar 

  31. Klein, R.J., Zeiss, D., Chew, E.Y., et al. (2005) Complement factor H polymorphism in age-related macular degeneration. Science 308, 385–389.

    Article  PubMed  CAS  Google Scholar 

  32. Edwards, A.O., Ritter, R., 3rd, Abel, K.J., Manning, A., Panhuysen, C. Farrer, L.A. (2005) Complement factor H polymorphism and age-related macular degeneration. Science 308, 421–424.

    Article  PubMed  CAS  Google Scholar 

  33. Carlson, A., Bok, D. Promotion of the release of 11-cis-retinal from cultured retinal pigment epithelium by interphotoreceptor retinoid-binding protein. Biochemistry 31, 9056–9062.

    Google Scholar 

  34. Radu, R.A., Hu, J., Peng, J., Bok, D., Mata, N., Travis, G.H. (2008) Retinal pigment epithelium-retinal G protein receptor-opsin mediates light-dependent translocation of all-trans-retinyl esters for synthesis of visual chromophore in retinal pigment epithelial cells. J. Biol. Chem. 283, 19730–19738.

    Article  PubMed  CAS  Google Scholar 

  35. Maminishkis, A., Chen, S., Jalickee, S., et al. (2006) Confluent monolayers of cultured human fetal retinal pigment epithelium exhibit morphology and physiology of native tissue. Invest. Ophthalmol. Vis. Sci. 47, 3612–3624.

    Article  PubMed  Google Scholar 

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Hu, J., Bok, D. (2010). Culture of Highly Differentiated Human Retinal Pigment Epithelium for Analysis of the Polarized Uptake, Processing, and Secretion of Retinoids. In: Sun, H., Travis, G. (eds) Retinoids. Methods in Molecular Biology, vol 652. Humana Press, Totowa, NJ. https://doi.org/10.1007/978-1-60327-325-1_2

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  • DOI: https://doi.org/10.1007/978-1-60327-325-1_2

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  • Publisher Name: Humana Press, Totowa, NJ

  • Print ISBN: 978-1-60327-324-4

  • Online ISBN: 978-1-60327-325-1

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