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Myopia

Dynamic Changes of AREG in the Sclera during the Development of Form-Deprivation Myopia in Guinea Pigs

ORCID Icon, , &
Pages 477-483 | Received 05 Jun 2021, Accepted 14 Oct 2021, Published online: 12 Nov 2021

References

  • Morgan IG, French AN, Ashby RS, Guo X, Ding X, He M, Rose KA. The epidemics of myopia: aetiology and prevention. Prog Retin Eye Res. 2018;62:134–49. doi:10.1016/j.preteyeres.2017.09.004.
  • Wu PC, Huang HM, Yu HJ, Fang PC, Chen CT. Epidemiology of Myopia. Asia-Pacific J Ophthalmol. 2016;5(6):386–93. doi:10.1097/APO.0000000000000236.
  • Read SA, Collins MJ, Vincent SJ. Light exposure and eye growth in childhood. Investig Ophthalmol Vis Sci. 2015;56(11):6779–87. doi:10.1167/iovs.14-15978.
  • Shoyab M, McDonald VL, Bradley JG, Todaro GJ. Amphiregulin: a bifunctional growth-modulating glycoprotein produced by the phorbol 12-myristate 13-acetate-treated human breast adenocarcinoma cell line MCF-7. Proc Natl Acad Sci USA. 1988;85(17):6528–32. doi:10.1073/pnas.85.17.6528.
  • Berasain C, Avila MA. Amphiregulin. Semin Cell Dev Biol. 2014;28:31–41. doi:10.1016/j.semcdb.2014.01.005.
  • Fan Q, Verhoeven VJ, Wojciechowski R, Barathi VA, Hysi PG, Guggenheim JA, Höhn R, Vitart V, Khawaja AP, Yamashiro K, et al. Meta-analysis of gene-environment-wide association scans accounting for education level identifies additional loci for refractive error. Nat Commun. 2016;7:11008. doi:10.1038/ncomms11008.
  • Shaoyu L. The effect and molecular mechanism of amphiregulin on binocular lens induced and congenital myopia eye axial growth. Shandong: Shandong University of Traditional Chinese Medicine; China, 2018.
  • Dong L, Shi XH, Kang YK, Wei WB, Wang YX, Xu XL, Gao F, Yuan LH, Zhen J, Jiang WJ, et al. Amphiregulin and ocular axial length. Acta Ophthalmol. 2019;97(3): e460-e470. doi: 10.1111/aos.14080.
  • Jiang WJ, Song HX, Li SY, Guo B, Wu JF, Li GP, Guo DD, Shi L, Bi HS, Jonas JB. Amphiregulin antibody and reduction of axial elongation in experimental myopia. EBioMedicine. 2017;17:134–44. doi:10.1016/j.ebiom.2017.02.021.
  • Harper AR, Summers JA. The dynamic sclera: extracellular matrix remodeling in normal ocular growth and myopia development. Exp Eye Res. 2015;133:100–11. doi:10.1016/j.exer.2014.07.015.
  • Wu H, Chen W, Zhao F, Zhou Q, Reinach PS, Deng L, Ma L, Luo S, Srinivasalu N, Pan M, et al. Scleral hypoxia is a target for myopia control. Proc Natl Acad Sci USA. 2018;115(30): e7091-e7100. doi: 10.1073/pnas.1721443115.
  • Metlapally R, Wildsoet CF. Scleral mechanisms underlying ocular growth and myopia. Prog Mol Biol Transl Sci. 2015;134:241–48.
  • Meng B, Li SM, Zhan SY, Wang NL. Research advances in sclera-remodeling relevant gene polymorphisms related to myopia. Zhonghua Yan Ke Za Zhi. 2016;52:876–80.
  • Turlejski T, Humoud I, Desai R, Smith KJ, Marina N. Immunohistochemical evidence of tissue hypoxia and astrogliosis in the rostral ventrolateral medulla of spontaneously hypertensive rats. Brain Res. 2016;1650:178–83. doi:10.1016/j.brainres.2016.09.012.
  • Jiang B, Shi CS. Dynamic changes of periostin and collagen I in the sclera during progressive myopia in Guinea pigs. Arq Bras Oftalmol. 2020;83:190–95.
  • Jiang B, Wu ZY, Zhu ZC, Ke GJ, Wen YC, Sun SQ. Expression and role of specificity protein 1 in the sclera remodeling of experimental myopia in Guinea pigs. Int J Ophthalmol. 2017;10:550–54.
  • Smith EL 3rd, Hung LF, Arumugam B, Wensveen JM, Chino YM, Harwerth RS. Observations on the relationship between anisometropia, amblyopia and strabismus. Vis Res. 2017;134:26–42. doi:10.1016/j.visres.2017.03.004.
  • Li M, Yuan Y, Chen Q, Me R, Gu Q, Yu Y, Sheng M, Ke B. Expression of Wnt/beta-Catenin signaling pathway and its regulatory role in type I collagen with TGF-beta1 in scleral fibroblasts from an experimentally induced myopia guinea pig model. J Ophthalmol. 2016;2016:5126560. doi:10.1155/2016/5126560.
  • Moriyama M, Ohno-Matsui K, Modegi T, Kondo J, Takahashi Y, Tomita M, Tokoro T, Morita I. Quantitative analyses of high-resolution 3D MR images of highly myopic eyes to determine their shapes. Invest Ophthalmol Vis Sci. 2012;53(8):4510–18. doi:10.1167/iovs.12-9426.
  • Tanaka H, Nishioka Y, Yokoyama Y, Higashiyama S, Matsuura N, Matsuura S, Hieda M. Nuclear envelope-localized EGF family protein amphiregulin activates breast cancer cell migration in an EGF-like domain independent manner. Biochem Biophys Res Commun. 2012;420(4):721–26. doi:10.1016/j.bbrc.2012.03.045.
  • Shoyab M, Plowman GD, McDonald VL, Bradley JG, Todaro GJ. Structure and function of human amphiregulin: a member of the epidermal growth factor family. Science. 1989;243(4894 Pt 1):1074–76. doi:10.1126/science.2466334.
  • Modrell B, McDonald VL, Shoyab M. The interaction of amphiregulin with nuclei and putative nuclear localization sequence binding proteins. Growth Factors. 1992;7(4):305–14. doi:10.3109/08977199209046413.
  • Wei CC, Kung YJ, Chen CS, Chang CY, Lin CJ, Tien PT, Chang HY, Chen HJ, Huang YS, Lin HJ, et al. Allergic conjunctivitis-induced retinal inflammation promotes myopia progression. EBioMedicine. 2018;28:274–86. doi:10.1016/j.ebiom.2018.01.024.
  • Zaiss DMW, Gause WC, Osborne LC, ArtisD. Emerging functions of amphiregulin in orchestrating immunity, inflammation, and tissue repair. Immunity. 2015;42(2):216–26. doi:10.1016/j.immuni.2015.01.020.
  • Rumelhard M, Ramgolam K, Auger F, Dazy AC, Blanchet S, Marano F, Baeza-Squiban A. Effects of PM2.5 components in the release of amphiregulin by human airway epithelial cells. Toxicol Lett. 2007;168(2):155–64. doi:10.1016/j.toxlet.2006.11.014.
  • Tao Y, Pan M, Liu S, Fang F, Lu R, Lu C, Zheng M, An J, Xu H, Zhao F, et al. cAMP level modulates scleral collagen remodeling, a critical step in the development of myopia. PloS One. 2013;8(8):e71441. doi:10.1371/journal.pone.0071441.
  • Platen C, Dreschers S, Reiss LK, Wappler J, Orlikowsky TW. Amphiregulin regulates phagocytosis-induced cell death in monocytes via EGFR and matrix metalloproteinases. Mediators Inflamm. 2018;2018:4310419. doi:10.1155/2018/4310419.
  • Zhao F, Wu H, Reinach PS, Wu Y, Zhai Y, Lei Y, Ma L, Su Y, Chen Y, Li F, et al. Up-regulation of matrix metalloproteinase-2 by scleral monocyte-derived macrophages contributes to myopia development. Am J Pathol. 2020;190(9):1888–908. doi:10.1016/j.ajpath.2020.06.002.