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Published on: February 6, 2017
MicroRNA-145 Regulates Pathological Retinal Angiogenesis by Suppression of TMOD3
Chi-Hsiu Liu1, Zhongxiao Wang1, Shuo Huang1
1Department of Ophthalmology, Boston Children's Hospital, Harvard Medical School, Boston, Massachusetts 02115, USA.
Abstract:
Pathological angiogenesis is a hallmark of various vascular diseases, including vascular eye disorders. Dysregulation of microRNAs (miRNAs), a group of small regulatory RNAs, has been implicated in the regulation of ocular neovascularization. This study investigated the specific role of microRNA-145 (miR-145) in regulating vascular endothelial cell (EC) function and pathological ocular angiogenesis in a mouse model of oxygen-induced retinopathy (OIR). Expression of miR-145 was significantly upregulated in OIR mouse retinas compared with room air controls. Treatment with synthetic miR-145 inhibitors drastically decreased levels of pathological neovascularization in OIR, without substantially affecting normal developmental angiogenesis. In cultured human retinal ECs, treatment with miR-145 mimics significantly increased the EC angiogenic function, including proliferation, migration, and tubular formation, whereas miR-145 inhibitors attenuated in vitro angiogenesis. Tropomodulin3 (TMOD3), an actin-capping protein, is a direct miR-145 target and is downregulated in OIR retinas. Treatment with miR-145 mimic led to TMOD3 inhibition, altered actin cytoskeletal architecture, and elongation of ECs. Moreover, inhibition of TMOD3 promoted EC angiogenic function and pathological neovascularization in OIR and abolished the vascular effects of miR-145 inhibitors in vitro and in vivo. Overall, our findings indicate that miR-145 is a novel regulator of TMOD3-dependent cytoskeletal architecture and pathological angiogenesis and a potential target for development of treatments for neovascular eye disorders.
Insights
MicroRNA-145 (miR-145) promotes pathological angiogenesis in eye diseases by targeting Tropomodulin3 (TMOD3). Inhibiting miR-145 reduces neovascularization, offering a potential therapeutic strategy for vascular eye disorders.
Area of Science:
- Ophthalmology
- Molecular Biology
- Cell Biology
Background:
- Pathological angiogenesis, driven by microRNA (miRNA) dysregulation, is central to vascular eye diseases.
- Ocular neovascularization is a significant cause of vision loss.
- MicroRNAs are small regulatory RNAs impacting cellular functions.
Purpose of the Study:
- To investigate the role of microRNA-145 (miR-145) in regulating vascular endothelial cell (EC) function and pathological ocular angiogenesis.
- To explore the therapeutic potential of targeting miR-145 for neovascular eye disorders.
Main Methods:
- Utilized a mouse model of oxygen-induced retinopathy (OIR) to study ocular angiogenesis.
- Assessed miR-145 expression in OIR retinas and its effects on cultured human retinal ECs.
- Investigated the direct miR-145 target, Tropomodulin3 (TMOD3), and its role in EC function and angiogenesis.
Main Results:
- miR-145 was significantly upregulated in OIR retinas.
- miR-145 mimics enhanced EC angiogenic functions (proliferation, migration, tube formation) in vitro.
- miR-145 inhibitors reduced pathological neovascularization in OIR and attenuated in vitro angiogenesis.
- TMOD3 was identified as a direct miR-145 target, and its inhibition promoted EC angiogenesis and pathological neovascularization.
- Inhibition of TMOD3 abolished the vascular effects of miR-145 inhibitors.
Conclusions:
- miR-145 is a novel regulator of pathological angiogenesis in ocular vascular diseases.
- miR-145 exerts its effects by targeting TMOD3 and modulating EC cytoskeletal architecture.
- Targeting miR-145 represents a promising therapeutic strategy for neovascular eye disorders.
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