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.
Abstract:
The epiretinal membrane is a fibrocontractile tissue that forms on the inner surface of the retina, causing visual impairment ranging from mild to severe, and even retinal detachment. Müller glial cells actively participate in the formation of this membrane. Current research is constantly seeking for new therapeutic approaches that aim to prevent or treat cellular dysfunctions involved in the progression of this common fibrosis condition. The Rho GTPases signaling pathway regulates several processes associated with the epiretinal membrane, such as cell proliferation, migration, and contraction. Rho kinase (ROCK), an effector of the RhoA GTPase, is an interesting potential therapeutic target. This study aimed to evaluate the effects of a ROCK inhibitor (Y27632) on human Müller cells viability, growth, cytoskeletal organization, expression of extracellular matrix components, myofibroblast differentiation, migration, and contractility. Müller cells of the MIO-M1 lineage were cultured and treated for different periods with the inhibitor. Viability was evaluated by MTT assay and trypan blue exclusion method, and growth was evaluated by growth curve and BrdU incorporation assay. The actin cytoskeleton was stained with fluorescent phalloidin, intermediate filaments and microtubules were analyzed with immunofluorescence for vimentin and α-tubulin. Gene and protein expression of collagens I and V, laminin and fibronectin were evaluated by rt-PCR and immunofluorescence. Chemotactic and spontaneous cell migration were studied by transwell assay and time-lapse observation of live cells, respectively. Cell contractility was assessed by collagen gel contraction assay. The results showed that ROCK inhibition by Y27632 did not affect cell viability, but decreased cell growth and proliferation after 72 h. There was a change in cell morphology and organization of F-actin, with a reduction in the cell body, disappearance of stress fibers and formation of long, branched cell extensions. Microtubules and vimentin filaments were also affected, possibly because of F-actin alterations. The inhibitor also reduced gene expression and immunoreactivity of smooth muscle α-actin, a marker of myofibroblasts. The expression of extracellular matrix components was not affected by the inhibitor. Chemotactic cell migration showed no significant changes, while cell contractility was substantially reduced. No spontaneous migration of MIO-M1 cells was observed. In conclusion, pharmacological inhibition of ROCK in Müller cells could be a potentially promising approach to treat epiretinal membranes by preventing cell proliferation, contractility and transdifferentiation, without affecting cell viability.
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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