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Published on: April 25, 2025
Therapeutic Potential of Heat Shock Protein 90 Inhibitor 17-DMAG in Regulating METTL3 for Kidney Fibrosis Treatment
Soo Min Lee1,2, Myoung Seok Lee3, Hae Rim Jung4
1College of Pharmacy, Kyung Hee University, Seoul, Republic of Korea.
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.
Insights
17-Dimethylaminoethylamino-17-demethoxygeldanamycin (17-DMAG) effectively reduces kidney fibrosis by downregulating METTL3, a key driver of fibrosis. This drug repurposing strategy offers a promising new therapeutic avenue for chronic kidney disease (CKD).
Area of Science:
- Epigenetics and RNA modifications in kidney disease.
- Pharmacological targeting of fibrosis pathways.
- Drug repositioning for therapeutic intervention.
Background:
- Kidney fibrosis, a hallmark of chronic kidney disease (CKD), involves excessive extracellular matrix deposition and functional decline.
- N6-methyladenosine (m6A) RNA methylation, regulated by METTL3, is increasingly recognized for its role in promoting kidney fibrosis.
- Targeting METTL3 presents a potential therapeutic strategy for mitigating kidney fibrosis.
Purpose of the Study:
- To investigate the therapeutic potential of 17-Dimethylaminoethylamino-17-demethoxygeldanamycin (17-DMAG) in mitigating kidney fibrosis.
- To explore the mechanism by which 17-DMAG regulates METTL3 expression and its downstream effects on fibrosis.
Main Methods:
- Transcriptome-based drug repositioning identified 17-DMAG as a potential METTL3 inhibitor.
- In vitro and in vivo models of kidney fibrosis were used to evaluate the antifibrotic effects of 17-DMAG.
- Mechanistic studies investigated 17-DMAG's impact on METTL3 expression, heat shock response, and associated signaling pathways (HSP90, HSP70, JNK, c-Jun).
Main Results:
- 17-DMAG dose- and time-dependently reduced METTL3 expression in renal cells and attenuated kidney fibrosis in vivo.
- Treatment with 17-DMAG decreased total m6A modification, collagen deposition, and profibrotic markers.
- 17-DMAG, an HSP90 inhibitor, induced HSP70, inhibited JNK activity, suppressed c-Jun, and consequently downregulated METTL3.
Conclusions:
- 17-DMAG effectively suppresses METTL3 expression through a pathway involving HSP90 inhibition and c-Jun suppression.
- This mechanism leads to the attenuation of kidney fibrosis in both in vitro and in vivo experimental models.
- 17-DMAG demonstrates significant therapeutic potential for treating kidney fibrosis in CKD.
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