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Published on: October 10, 2025
Circular RNA HIPK3 regulates human lens epithelial cell dysfunction by targeting the miR-221-3p/PI3K/AKT pathway in
Gangfeng Cui1, Ledan Wang1, Wenjuan Huang1
1Department of Ophthalmology, Taizhou Hospital of Zhejiang Province, Taizhou, Zhejiang, 317000, China.
Abstract:
Circular RNA Homeodomain Interacting Protein Kinase 3 (circHIPK3) was found to involve in the pathogenesis of age-related cataract (ARC). Here, we further disclosed the related target genes and molecular mechanism of circHIPK3 in the ARC progression. The expression of circHIPK3, microRNA (miR)-221-3p was detected using the quantitative real-time polymerase chain reaction. Human lens epithelial cell (HLEC) proliferation and apoptosis were measured by 3-(4, 5)-dimethylthiahiazo (-z-y1)-3, 5-di-phenytetrazoliumromide (MTT) assay and flow cytometry, respectively. Western blot was used to detect the levels of apoptosis-related proteins, and phosphoinositide 3-kinase (PI3K)/p-protein kinase B (AKT) pathway-related proteins. Levels of malondialdehyde (MDA) and glutathione peroxidase (GSH-PX) were measured by kits. The interaction between miR-221-3p and circHIPK3 was confirmed by dual-luciferase reporter assay and RNA immunoprecipitation assay. CircHIPK3 was down-regulated while miR-221-3p was up-regulated in human lens epithelium samples of ARC patients. CircHIPK3 up-regulation or miR-221-3p down-regulation mediated the promotion of proliferation, inhibition of apoptosis, decrease of MDA level as well as increase of GSH-PX level in HLECs. MiR-221-3p was a target of circHIPK3, and miR-221-3p overexpression reversed the protective action of circHIPK in HLEC functions. In addition, circHIPK3 activated PI3K/AKT pathway via regulating miR-221-3p, and silencing miR-221-3p protected HLECs from dysfunction by activating PI3K/AKT pathway. We demonstrated that circHIPK3 protected HLECs from dysfunction by regulating miR-221-3p/PI3K/AKT pathway, indicating a new insight into the pathogenesis of ARC and providing a potential therapeutic target for ARC.
Insights
Circular RNA Homeodomain Interacting Protein Kinase 3 (circHIPK3) protects human lens epithelial cells from age-related cataract progression by regulating the miR-221-3p/PI3K/AKT pathway. This finding offers new insights into cataract pathogenesis and potential therapeutic targets.
Area of Science:
- Ophthalmology
- Molecular Biology
- Cell Biology
Background:
- Age-related cataract (ARC) is a leading cause of vision impairment.
- Circular RNA Homeodomain Interacting Protein Kinase 3 (circHIPK3) has been implicated in ARC pathogenesis.
- The precise molecular mechanisms underlying circHIPK3's role in ARC remain incompletely understood.
Purpose of the Study:
- To elucidate the molecular mechanism of circHIPK3 in age-related cataract (ARC) progression.
- To investigate the interaction between circHIPK3 and its target genes.
- To explore circHIPK3's role in regulating human lens epithelial cell (HLEC) function and the PI3K/AKT pathway.
Main Methods:
- Quantitative real-time polymerase chain reaction (qRT-PCR) to measure circHIPK3 and microRNA (miR)-221-3p expression.
- MTT assay and flow cytometry to assess HLEC proliferation and apoptosis.
- Western blot to analyze apoptosis-related and PI3K/AKT pathway proteins.
- Dual-luciferase reporter and RNA immunoprecipitation assays to confirm circHIPK3-miR-221-3p interaction.
Main Results:
- circHIPK3 was downregulated, while miR-221-3p was upregulated in ARC patient samples.
- circHIPK3 upregulation promoted HLEC proliferation, inhibited apoptosis, decreased MDA, and increased GSH-PX.
- circHIPK3 activated the PI3K/AKT pathway by regulating miR-221-3p, protecting HLECs from dysfunction.
Conclusions:
- circHIPK3 protects human lens epithelial cells (HLECs) from dysfunction in age-related cataract (ARC) by modulating the miR-221-3p/PI3K/AKT pathway.
- circHIPK3 acts as a sponge for miR-221-3p, thereby influencing HLEC proliferation, apoptosis, and oxidative stress.
- These findings provide novel insights into ARC pathogenesis and identify circHIPK3 as a potential therapeutic target for ARC.
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