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Therapeutic Potential of Heat Shock Protein 90 Inhibitor 17-DMAG in Regulating METTL3 for Kidney Fibrosis Treatment

体内 肾脏疾病 纤维化 癌症研究 热休克蛋白90 机制(生物学) 体外 医学 肾病科 Hsp90抑制剂 吡非尼酮 药理学 肺纤维化
作者
Soo Min Lee,Myoung Seok Lee,Hae Rim Jung,Jeonghwan Lee,Bogyeong Cho,Wencheng Jin,Min Hoan Moon,Nayeon Shin,Seung Hyun Han,Da Som Choi,Bada Lee,Seung-Pyo Hong,Jong-Il Kim,Chun Soo Lim,Sung-Yup Cho,Jin Woo Choi,Jung Pyo Lee
出处
期刊:Journal of The American Society of Nephrology [American Society of Nephrology]
标识
DOI:10.1681/asn.0000000975
摘要

KEY POINTS: Targeting METTL3 with the heat shock protein 90 inhibitor 17-DMAG mitigated kidney fibrosis in CKD. The drug repositioning through differentially expressed gene and enrichment analyses identified 17-dimethylaminoethylamino-17-demethoxygeldanamycin as a potential agent to alleviate kidney fibrosis. The N -terminal heat shock protein 90 inhibitor 17-dimethylaminoethylamino-17-demethoxygeldanamycin suppressed c-Jun-METTL3 signaling, attenuating N 6-methyladenosine methylation and kidney fibrosis. BACKGROUND: Kidney fibrosis is a major pathological feature of CKD, characterized by excessive deposition of extracellular matrix proteins, leading to progressive loss of kidney function. N 6-methyladenosine (m6A) RNA methylation has emerged as a crucial epigenetic modification implicated in various diseases, including kidney fibrosis. METTL3, an m6A writer, plays a key role in promoting fibrosis by stabilizing profibrotic gene expression. Therefore, targeting METTL3 represents a promising therapeutic strategy for CKD treatment. In this study, we explored the therapeutic potential of 17-dimethylaminoethylamino-17-demethoxygeldanamycin (17-DMAG) in regulating METTL3 to mitigate kidney fibrosis. METHODS: Through transcriptome-based drug repositioning, we identified 17-DMAG as a potential inhibitor of METTL3. Differentially expressed gene analysis was performed to assess the enrichment of 17-DMAG in CKD-related gene expression profiles. The antifibrotic effects of 17-DMAG were evaluated in in vitro and in vivo models. The mechanism by which 17-DMAG downregulates METTL3 was also investigated. RESULTS: 17-DMAG significantly reduced METTL3 expression in renal epithelial cells in a dose-dependent and time-dependent manner. In in vivo mouse models of kidney fibrosis, 17-DMAG treatment attenuated METTL3 levels, reduced total m6A modification, and effectively mitigated fibrosis, as evidenced by decreased collagen deposition and profibrotic marker expression. Mechanistically, 17-DMAG, a heat shock protein 90 (HSP90) N -terminal inhibitor, induced a heat shock response that sequentially upregulated HSP70 expression. The elevated HSP70 levels inhibited c-Jun N -terminal kinase activity, thereby suppressing the c-Jun transcription factor and ultimately leading to the downregulation of METTL3 expression. MeRIP-Seq analysis revealed that 17-DMAG reversed unilateral ischemia-reperfusion injury-induced m6A epitranscriptomic changes in fibrosis-related genes, including GSK3B , which is involved in fibrotic pathways. CONCLUSIONS: N -terminal HSP90 inhibition, along with subsequent c-Jun suppression, contributed to the mechanism underlying 17-DMAG-induced METTL3 downregulation. Through this regulatory pathway, 17-DMAG effectively suppressed METTL3 expression and attenuated kidney fibrosis in both in vitro and in vivo models.
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