Author/Editor     Andjelić, Sofija; Lumi, Xhevat; Yan, Xiaohe; Graw, Jochen; Moe, Morten C.; Facskó, Andrea; Hawlina, Marko; Petrovski, Goran
Title     Characterization of ex vivo cultured neuronal- and glial- like cells from human idiopathic epiretinal membranes
Type     članek
Vol. and No.     Letnik 14, št. 165
Publication year     2014
Volume     str. 1-21
ISSN     1471-2415 - BMC ophthalmology
Language     eng
Abstract     Background Characterization of the neuro-glial profile of cells growing out of human idiopathic epiretinal membranes (iERMs) and testing their proliferative and pluripotent properties ex vivo is needed to better understand the pathogenesis of their formation. Methods iERMs obtained during uneventful vitrectomies were cultivated ex vivo under adherent conditions and assessed by standard morphological and immunocytochemical methods. The intracellular calcium dynamics of the outgrowing cells was assessed by fluorescent dye Fura-2 in response to acetylcholine (ACh)- or mechano- stimulation. Results The cells from the iERMs formed sphere-like structures when cultured ex vivo. The diameter of the spheres increased by 5% at day 6 and kept an increasing tendency over a month time. The outgrowing cells from the iERM spheres had mainly glial- and some neuronal- like morphology. ACh- or mechano- stimulation of these cells induced intracellular calcium propagation in both cell types; in the neuronal-like cells resembling action potential from the soma to the dendrites. Immunocytochemistry confirmed presence of glial- and neuronal cell phenotype (GFAP and Nestin-1 positivity, respectively) in the iERMs, as well as presence of pluripotency marker (Sox2). Conclusion iERMs contain cells of neuronal- and glial- like origin which have proliferative and pluripotent potential, show functionality reflected through calcium dynamics upon ACh and mechano- stimulation, and a corresponding molecular phenotype.
Keywords     Idiopathic epiretinal membrane
Glial- and neuronal cell growth
Pluripotency
Calcium dynamics
Acetylcholine
Mechanostimulation