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Published on: January 30, 2014
Abl kinases regulate FGF signaling independent of Crk phosphorylation to prevent Peters anomaly
Hao Wu1, Yingyu Mao1, Qian Wang1
1Departments of Ophthalmology, Pathology and Cell Biology, Columbia University, New York, NY 10032, USA.
Abstract:
Peters anomaly, the most common cause of congenital corneal opacity, stems from corneal-lenticular adhesion. Despite numerous identified mutations, a cohesive molecular framework of the disease's etiology remains elusive. Here, we identified Abl kinases as pivotal regulators of FGF signaling, as genetic ablation of Abl kinases restores lens induction even in the absence of FGF signaling. Intriguingly, both Abl kinase deficiency and increased FGF-Ras activity result in Peters anomaly independent of ERK signaling, which can be rescued by allelic deletion of Abl substrate, Crk. However, contrary to the prevailing belief that Abl kinases regulate Crk proteins by direct phosphorylation, mutations at Abl kinase phosphorylation sites on Crk and CrkL did not yield any observable effects. Instead, our findings reveal that Abl kinases phosphorylate Ptpn12, which in turn inhibits p130Cas phosphorylation and Crk recruitment, crucial for Rho GTPases activation and cytoskeletal dynamics. Consequently, Abl kinase deficiency reduces actomyosin contractility within the lens vesicle and genetically interacts with RhoA inhibition. Conversely, Rac1 deletion mitigates Peters anomaly in models with aberrant FGF, Abl kinase and RhoA signaling. Our results demonstrate that Abl kinases regulate FGF signaling to balance RhoA and Rac1 activity via the Ptpn12-p130Cas pathway, suggesting that targeting tension-mediated lens vesicle separation could be a therapeutic strategy for Peters anomaly.
Insights
Abl kinases regulate FGF signaling to control cell tension, offering a new therapeutic target for Peters anomaly, a congenital corneal opacity. This research clarifies the molecular basis of the condition by identifying key signaling pathways involved.
Area of Science:
- Developmental Biology
- Molecular Biology
- Ophthalmology
Background:
- Peters anomaly is the leading cause of congenital corneal opacity, characterized by corneal-lenticular adhesion.
- The precise molecular mechanisms underlying Peters anomaly are not fully understood despite identified genetic mutations.
Purpose of the Study:
- To elucidate the molecular framework of Peters anomaly etiology.
- To identify key regulators of lens induction and corneal development.
Main Methods:
- Genetic ablation of Abl kinases in model systems.
- Analysis of FGF signaling pathway components and downstream effectors.
- Investigating the role of Abl kinase substrates, including Crk and Ptpn12.
- Assessing cytoskeletal dynamics and Rho GTPase activity.
- Genetic interaction studies with RhoA and Rac1 signaling.
Main Results:
- Abl kinases are critical regulators of FGF signaling, essential for lens induction.
- Abl kinase deficiency or aberrant FGF signaling leads to Peters anomaly independently of ERK.
- Abl kinases phosphorylate Ptpn12, modulating p130Cas phosphorylation and Crk recruitment.
- Abl kinase deficiency impacts actomyosin contractility and interacts with RhoA signaling.
- Rac1 deletion ameliorates Peters anomaly phenotypes.
Conclusions:
- Abl kinases balance RhoA and Rac1 activity through the Ptpn12-p130Cas pathway to regulate FGF signaling.
- Targeting tension-mediated lens vesicle separation presents a potential therapeutic strategy for Peters anomaly.
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