Endogenous bioelectric currents promote differentiation of the mammalian lens.

J Cell Physiol

Institute of Medical Sciences, School of Medicine, Medical Sciences and Nutrition, University of Aberdeen, Aberdeen, UK.

Published: March 2018

AI Article Synopsis

  • The study investigates the role of bioelectrical signals in the mammalian lens, focusing on how ion flow affects cell differentiation and membrane potential changes in lens fibers.
  • Mature lens fibers show high levels of Na/K-ATPase, leading to a hyperpolarized membrane potential, while differentiating lens cells exhibit low ATPase levels and a depolarized state.
  • Applying an electrical field stimulates the reorientation of lens epithelial cells and enhances the expression of key differentiation markers, suggesting that manipulating electrical signals could offer new treatments for lens-related diseases and aid in lens regeneration after cataract surgery.

Article Abstract

The functional roles of bioelectrical signals (ES) created by the flow of specific ions at the mammalian lens equator are poorly understood. We detected that mature, denucleated lens fibers expressed high levels of the α1 and β1 subunits of Na /K -ATPase (ATP1A1 and ATP1B1 of the sodium pump) and had a hyperpolarized membrane potential difference (V ). In contrast, differentiating, nucleated lens fiber cells had little ATP1A1 and ATP1B1 and a depolarized V . Mimicking the natural equatorial ES with an applied electrical field (EF) induced a striking reorientation of lens epithelial cells to lie perpendicular to the direction of the EF. An EF also promoted the expression of β-crystallin, aquaporin-0 (AQP0) and the Beaded Filament Structural Protein 2 (BFSP2) in lens epithelial cells (LECs), all of which are hallmarks of differentiation. In addition, applied EF activated the AKT and CDC2 and inhibition of AKT reduced the activation of CDC2. Our results indicate that the endogenous bioelectrical signal at the lens equator promotes differentiation of LECs into denucleated lens fiber cells via depolarization of V Development of methods and devices of EF application or amplification in vivo may supply a novel treatment for lens diseases and even promote regeneration of a complete new lens following cataract surgery.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5724684PMC
http://dx.doi.org/10.1002/jcp.26074DOI Listing

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