Inhibition of Rho kinase (ROCK) impairs cytoskeletal contractility in human Müller glial cells without effects on

Vinicius Moraes de Paiva Roda1, Rafael André da Silva1, Paula Veloso Siqueira1

  • 1Department of Cell & Developmental Biology, Institute of Biomedical Sciences, University of São Paulo, São Paulo, SP, Brazil.

Experimental Eye Research
|December 3, 2023
PubMed

Insights

ROCK inhibition in Müller cells reduces epiretinal membrane progression by decreasing cell proliferation and contractility. This approach targets cellular dysfunctions without impacting cell viability, offering a promising therapeutic strategy for this common fibrosis condition.

Area of Science:

  • Ophthalmology
  • Cell Biology
  • Biochemistry

Background:

  • Epiretinal membrane (ERM) is a fibrosis on the retina involving Müller glial cells, leading to vision loss.
  • The Rho GTPases signaling pathway, particularly Rho kinase (ROCK), is implicated in ERM pathogenesis.
  • ROCK inhibition presents a potential therapeutic target for ERM.

Purpose of the Study:

  • To investigate the effects of the ROCK inhibitor Y27632 on human Müller cells (MIO-M1 lineage).
  • To assess the impact on cell viability, growth, cytoskeleton, extracellular matrix, myofibroblast differentiation, migration, and contractility.

Main Methods:

  • Müller cells were treated with Y27632, followed by assays for viability (MTT, trypan blue), growth (growth curve, BrdU), cytoskeletal organization (phalloidin, immunofluorescence for vimentin, α-tubulin).
  • Gene and protein expression of extracellular matrix components and myofibroblast markers were analyzed (rt-PCR, immunofluorescence).
  • Cell migration (transwell, time-lapse) and contractility (collagen gel assay) were evaluated.

Main Results:

  • Y27632 did not affect cell viability but decreased cell growth and proliferation after 72 hours.
  • ROCK inhibition altered cell morphology, reduced stress fibers, and decreased myofibroblast differentiation (α-smooth muscle actin expression).
  • Cell contractility was substantially reduced, while extracellular matrix expression and chemotactic migration remained unchanged.

Conclusions:

  • Pharmacological inhibition of ROCK in Müller cells shows potential for treating epiretinal membranes.
  • This approach may prevent cell proliferation, contractility, and transdifferentiation without compromising cell viability.
  • ROCK inhibition offers a promising therapeutic strategy for managing epiretinal membrane fibrosis.

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