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Inhibited effect of an RGD peptide hydrogel on the expression of β1-integrin, FAK, and Akt in Tenon's capsule
Baoji Chen1, Ping Wu1, Liang Liang1
1Department of Ophthalmology, Yichang Central People's Hospital, The first college of Clinical Medical Science, China Three Gorges University, Yichang, China.
Abstract:
Tenon's capsule fibroblasts are the main cellular components of filtration tract scar that limit the success rate of glaucoma filtration surgery. Scar formation results from infiltration and proliferation of fibroblasts into damaged areas, meanwhile synthesis of extracellular matrix glycoproteins. Integrins are cell surface receptors for extracellular molecules that mediate cell adhesion, spreading, migration, and invasion. They bind their ligands often through recognition of short amino-acid sequences-arginine-glycine-aspartic acid (RGD). Peptides that contain RGD sequence can compete with RGD containing insoluble matrix proteins for binding to the integrin receptor and thus prevent the downstream signaling pathway. Increasing evidence supports that β1-integrin/focal adhesion kinase (FAK)/Akt signal pathway plays an important role in fibrogenesis and scar formation in different tissues. In consideration of advantages of peptide hydrogel, that is well biocompatibility, gel state, degradability, good drug loading, we designed and fabricated an RGD peptide hydrogel, and hypothesized that it could inhibit the expression of β1-integrin, FAK, and Akt in Tenon's capsule fibroblasts. Rheology results showed that 1% wt Fmoc-FFGGRGD peptide solution could self-assemble into hydrogel. Western blot analysis revealed that there were statistical differences between control group and 1% wt group in β1-integrin/β-actin, FAK/β-actin, Akt/β-actin respectively (*p < .05). The relative mRNA expression of β1-integrin, FAK, Akt in control group and 1% wt group were also statistically different respectively (*p < .05). We proved that 1% wt Fmoc-FFGGRGD self-assembly peptide hydrogel could inhibit the expression of β1-integrin, FAK and Akt in Tenon's capsule fibroblasts. It is a promising way to solve scar formation of glaucoma filter channel.
Insights
An RGD peptide hydrogel effectively inhibits scar formation in glaucoma surgery by reducing key protein expression in Tenon's capsule fibroblasts. This innovative approach targets the β1-integrin/FAK/Akt pathway, offering a promising solution for improving surgical outcomes.
Area of Science:
- Biomaterials Science
- Ophthalmology
- Cell Biology
Background:
- Glaucoma filtration surgery success is limited by scar formation in Tenon's capsule fibroblasts.
- Scarring involves fibroblast proliferation and extracellular matrix synthesis, mediated by cell surface receptors like integrins.
- The β1-integrin/focal adhesion kinase (FAK)/Akt signaling pathway is implicated in fibrogenesis and scar development.
Purpose of the Study:
- To design and fabricate an RGD peptide hydrogel to inhibit scar formation in glaucoma surgery.
- To investigate the hydrogel's effect on the expression of β1-integrin, FAK, and Akt in Tenon's capsule fibroblasts.
Main Methods:
- Fabrication of a self-assembling Fmoc-FFGGRGD peptide hydrogel.
- Rheological analysis to confirm hydrogel formation at 1% wt concentration.
- Western blot and real-time quantitative polymerase chain reaction (RT-qPCR) to assess protein and mRNA expression levels.
Main Results:
- The 1% wt Fmoc-FFGGRGD peptide solution successfully self-assembled into a hydrogel.
- Significant inhibition of β1-integrin, FAK, and Akt protein expression was observed in the 1% wt hydrogel group compared to controls (p < 0.05).
- A statistically significant reduction in the mRNA expression of β1-integrin, FAK, and Akt was also confirmed (p < 0.05).
Conclusions:
- The self-assembling RGD peptide hydrogel effectively inhibits the expression of β1-integrin, FAK, and Akt in Tenon's capsule fibroblasts.
- This peptide hydrogel represents a promising therapeutic strategy to mitigate scar formation in the filtration channels of glaucoma surgery.
- The findings suggest a novel approach to enhance the long-term success rates of glaucoma filtration procedures.
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