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논문 기본 정보

자료유형
학술저널
저자정보
Wang Kang (Nanjing Medical University, China) Wang Ye (Nanjing Medical University, China) Wan Hua (Nanjing Medical University, China) Wang Jie (Nanjing Medical University, China) Hu Li (Nanjing Medical University, China) Huang Shuainan (Nanjing Medical University, China) Sheng Mingchen (Nanjing Medical University, China) Wu Jiayi (Nanjing Medical University, China) Han Xing (Nanjing Medical University, China) Yu Youjia (Nanjing Medical University, China) Chen Peng (Nanjing Medical University, China) Chen Feng (Nanjing Medical University, China)
저널정보
한국유전학회 Genes & Genomics Genes and Genomics Vol.46 No.9
발행연도
2024.9
수록면
1,013 - 1,022 (10page)
DOI
10.1007/s13258-024-01536-4

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Background In humans, ACTN2 mutations are identified as highly relevant to a range of cardiomyopathies such as DCM and HCM, while their association with sudden cardiac death has been observed in forensic cases. Although ACTN2 has been shown to regulate sarcomere Z-disc organization, a causal relationship between ACTN2 dysregulation and cardiomyopathies under chronic stress has not yet been investigated. Objective In this work, we explored the relationship between Actn2 dysregulation and cardiomyopathies under dexamethasone treatment. Methods Previous cases of ACTN2 mutations were collected and the conservative analysis was carried out by MEGA 11, the possible impact on the stability and function of ACTN2 affected by these mutations was predicted by Polyphen-2. ACTN2 was suppressed by siRNA in H9c2 cells under dexamethasone treatment to mimic the chronic stress in vitro. Then the cardiac hypertrophic molecular biomarkers were elevated, and the potential pathways were explored by transcriptome analysis. Results Actn2 suppression impaired calcium uptake and increased hypertrophy in H9c2 cells under dexamethasone treatment. Concomitantly, hypertrophic molecular biomarkers were also elevated in Actn2-suppressed cells. Further transcriptome analysis and Western blotting data suggested that Actn2 suppression led to the excessive activation of the MAPK pathway and ERK cascade. In vitro pharmaceutical intervention with ERK inhibitors could partially reverse the morphological changes and inhibit the excessive cardiac hypertrophic molecular biomarkers in H9c2 cells. Conclusion Our study revealed a functional role of ACTN2 under chronic stress, loss of ACTN2 function accelerated H9c2 hypertrophy through ERK signaling. A commercial drug, Ibudilast, was identified to reverse cell hypertrophy in vitro.

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