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Hsa_circ_0001162 Inhibition Alleviates High Glucose-Induced Human Podocytes Injury by the miR-149-5p/MMP9 Signaling
Ling Ye1, Jie-Hui Chen2, Sheng-Lang Zhu2
1Department of Nephrology, Shenzhen Nanshan People's Hospital and The 6Th Affiliated Hospital of Shenzhen University Medical School, Shenzhen, China. yeling20211210@163.com.
Insights
Circular RNAs (circRNAs) like hsa_circ_0001162 are implicated in diabetic nephropathy (DN). Targeting the hsa_circ_0001162/miR-149-5p/MMP9 pathway may offer a novel therapeutic strategy for DN-related podocyte injury.
Area of Science:
- Molecular Biology
- Genetics
- Nephrology
Background:
- Diabetic nephropathy (DN) progression is closely linked to podocyte injury.
- Circular RNAs (circRNAs) are emerging as key players in DN pathogenesis.
- The specific role and mechanism of hsa_circ_0001162 in DN-induced podocyte injury remain largely unexplored.
Purpose of the Study:
- To investigate the function and molecular mechanisms of hsa_circ_0001162 in high glucose-induced podocyte injury.
- To elucidate the regulatory axis involving hsa_circ_0001162, miR-149-5p, and MMP9 in DN.
- To assess the therapeutic potential of targeting this circRNA pathway for DN treatment.
Main Methods:
- Real-time quantitative PCR (RT-qPCR) to measure hsa_circ_0001162 expression in DN patients and cell models.
- Cellular assays (CCK-8, EdU, flow cytometry, caspase-3 activity) to assess podocyte viability, apoptosis, and proliferation.
- Dual luciferase reporter assays, RNA-pull down, and immunoprecipitation to confirm molecular interactions.
- Western blotting and RT-qPCR to analyze protein and gene expression levels.
Main Results:
- Hsa_circ_0001162 expression was significantly upregulated in DN patients and high glucose-treated podocytes.
- Knockdown of hsa_circ_0001162 promoted podocyte proliferation, inhibited apoptosis, and reduced inflammation.
- Hsa_circ_0001162 acts as a molecular sponge for miR-149-5p, leading to increased MMP9 expression and exacerbating podocyte injury.
- EIF4A3 was identified as a regulator of hsa_circ_0001162 biogenesis.
Conclusions:
- Hsa_circ_0001162 plays a critical role in aggravating high glucose-induced podocyte injury in DN.
- The hsa_circ_0001162/miR-149-5p/MMP9 axis is a key mechanism underlying DN progression.
- Targeting the hsa_circ_0001162/miR-149-5p/MMP9 pathway presents a promising therapeutic avenue for managing podocyte injury in DN patients.
Abstract:
Emerging evidences suggested that circular RNAs (circRNAs) are involved in diabetic nephropathy (DN). Accumulating evidence had suggested that the degree of podocyte is a major prognostic determinant of DN progression. However, the function and in-depth mechanisms of hsa_circ_0001162 in podocyte injury of DN remain unclear. Hsa_circ_0001162 expression was detected by real-time quantitative PCR (RT-qPCR) in peripheral blood of DN patients and high glucose-induced podocytes injury model. The cell counting kit 8, 5-ethynyl-2'-deoxyuridine, flow cytometry with Annexin V-FITC/PI staining, caspase-3 activity assay Kit, enzyme linked immunosorbent assay (ELISA), RT-qPCR and western blotting were used to evaluate the effect of hsa_circ_0001162 / miR-149-5p / MMP9 axis on high glucose-induced podocyte injury. Mechanistically, dual luciferase reporter was used to confirm the relationship of miR-149-5p and hsa_circ_0001162 or MMP9. Furthermore, RNA-pull down and immunoprecipitation assay were implemented to verify the potential regulatory effects of EIF4A3 on biogenesis of hsa_circ_0001162. Our results showed that hsa_circ_0001162 was highly expressed in peripheral blood of DN patients and high glucose-induced podocytes injury model, and the knockdown of hsa_circ_0001162 increased the proliferation, inhibited the apoptosis, and suppressed inflammatory response in high glucose-induced podocytes injury. Mechanism studies demonstrated that EIF4A3 bound with flanking sequences of hsa_circ_0001162 to promote hsa_circ_0001162 expression, upregulated hsa_circ_0001162 increased the MMP9 expression via sponging miR-149-5p, thus aggravating the high glucose-induced podocytes injury. Overall, our data demonstrated that knockdown of hsa_circ_0001162 inhibited high glucose-induced podocytes injury by regulating miR-149-5p/MMP9 axis, and intervention of hsa_circ_0001162/miR-149-5p/MMP9 axis may be a potentially promising therapeutic strategy for podocyte injury in DN patients.
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