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Published on: August 30, 2024
Myh11+ microvascular mural cells and derived mesenchymal stem cells promote retinal fibrosis
H Clifton Ray1, Bruce A Corliss1, Anthony C Bruce1
1Department of Biomedical Engineering, University of Virginia, Charlottesville, VA, USA.
Abstract:
Retinal diseases are frequently characterized by the accumulation of excessive scar tissue found throughout the neural retina. However, the pathophysiology of retinal fibrosis remains poorly understood, and the cell types that contribute to the fibrotic response are incompletely defined. Here, we show that myofibroblast differentiation of mural cells contributes directly to retinal fibrosis. Using lineage tracing technology, we demonstrate that after chemical ocular injury, Myh11+ mural cells detach from the retinal microvasculature and differentiate into myofibroblasts to form an epiretinal membrane. Inhibition of TGFβR attenuates Myh11+ retinal mural cell myofibroblast differentiation, and diminishes the subsequent formation of scar tissue on the surface of the retina. We demonstrate retinal fibrosis within a murine model of oxygen-induced retinopathy resulting from the intravitreal injection of adipose Myh11-derived mesenchymal stem cells, with ensuing myofibroblast differentiation. In this model, inhibiting TGFβR signaling does not significantly alter myofibroblast differentiation and collagen secretion within the retina. This work shows the complexity of retinal fibrosis, where scar formation is regulated both by TGFβR and non-TGFβR dependent processes involving mural cells and derived mesenchymal stem cells. It also offers a cautionary note on the potential deleterious, pro-fibrotic effects of exogenous MSCs once intravitreally injected into clinical patients.
Insights
Mural cells transform into scar-forming myofibroblasts, contributing to retinal fibrosis. This process is partly regulated by TGFβR signaling and highlights potential risks of mesenchymal stem cell injections.
Area of Science:
- Ophthalmology
- Cell Biology
- Pathophysiology
Background:
- Retinal diseases often involve excessive scar tissue (fibrosis).
- The cellular mechanisms and origins of retinal fibrosis are not fully understood.
- Identifying key cell types is crucial for understanding and treating retinal fibrosis.
Purpose of the Study:
- To investigate the contribution of mural cells to retinal fibrosis.
- To explore the role of TGFβR signaling in mural cell-driven fibrosis.
- To assess the pro-fibrotic potential of exogenous mesenchymal stem cells in the retina.
Main Methods:
- Lineage tracing technology in a chemically induced ocular injury model.
- Inhibition of TGFβ receptor (TGFβR) signaling.
- Murine model of oxygen-induced retinopathy with intravitreal injection of mesenchymal stem cells (MSCs).
Main Results:
- Myh11+ mural cells differentiate into myofibroblasts and form epiretinal membranes after injury.
- Inhibiting TGFβR reduced mural cell differentiation and retinal scarring.
- Intravitreally injected MSCs also led to retinal fibrosis, independent of TGFβR inhibition.
- Exogenous MSCs may have deleterious, pro-fibrotic effects in the retina.
Conclusions:
- Retinal fibrosis involves myofibroblast differentiation of mural cells.
- Scar formation is regulated by both TGFβR-dependent and independent pathways.
- Exogenous mesenchymal stem cells can promote retinal fibrosis, warranting caution in clinical applications.
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