Targeting HSPA1A with geranylgeranylacetone alleviates ADTKD-UMOD via suppression of endoplasmic reticulum stress and ferroptosis

Missense mutations in the UMOD gene are a well-established genetic cause of autosomal dominant tubulointerstitial kidney disease (ADTKD). Here, we report two ADTKD pedigrees carrying de novo UMOD mutations, p.His36Tyr (H36Y) and p.Trp31Cys (W31C). To elucidate the underlying pathogenic mechanisms and explore targeted therapeutic strategies, we generated a UMOD H36Y/+ knock-in mouse model using CRISPR/Cas9 technology, which recapitulated the major clinical manifestations observed in patients. Through single-cell RNA sequencing and experimental validation, we demonstrated that uromodulin mutations triggered endoplasmic reticulum (ER) stress and the unfolded protein response, with ferroptosis identified as the predominant mode of cell death in this disease. These findings were further confirmed in plasmid-transfected cell models expressing UMOD H36Y and UMOD W31C . Moreover, the molecular chaperone HSPA1A was identified as a potential therapeutic target. Geranylgeranylacetone, targeting HSPA1A as a chaperone drug, effectively mitigated endoplasmic reticulum stress, alleviated ferroptosis, and delayed the progression of renal dysfunction. Based on novel uromodulin mutations, our study reveals a pathogenic ER-ferroptosis axis in ADTKD- UMOD , deepens the insight into the pathogenesis of ADTKD- UMOD , and provides a promising strategy for developing chaperone therapy with drug repurposing in genetic kidney diseases.

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Journal
JCI Insight
Published
2026-10-06
DOI
https://doi.org/10.1172/jci.insight.207210
Primary Topic
Genetic and Kidney Cyst Diseases
Type
article
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article

Targeting HSPA1A with geranylgeranylacetone alleviates ADTKD-UMOD via suppression of endoplasmic reticulum stress and ferroptosis

Siqi Peng, Jinxuan Wei, 张晓良, Xianli Wen et al.
JCI Insight
Genetic and Kidney Cyst Diseases
article

Targeting HSPA1A with geranylgeranylacetone alleviates ADTKD-UMOD via suppression of endoplasmic reticulum stress and ferroptosis

Siqi Peng, Jinxuan Wei, 张晓良, Xianli Wen, Wen Shi, Bin Wang, Qianqian Wu, Xin-Lu Wang, Yan Yang, Bi-Cheng Liu, Junyuan Shen
article en

Abstract

Missense mutations in the UMOD gene are a well-established genetic cause of autosomal dominant tubulointerstitial kidney disease (ADTKD). Here, we report two ADTKD pedigrees carrying de novo UMOD mutations, p.His36Tyr (H36Y) and p.Trp31Cys (W31C). To elucidate the underlying pathogenic mechanisms and explore targeted therapeutic strategies, we generated a UMOD H36Y/+ knock-in mouse model using CRISPR/Cas9 technology, which recapitulated the major clinical manifestations observed in patients. Through single-cell RNA sequencing and experimental validation, we demonstrated that uromodulin mutations triggered endoplasmic reticulum (ER) stress and the unfolded protein response, with ferroptosis identified as the predominant mode of cell death in this disease. These findings were further confirmed in plasmid-transfected cell models expressing UMOD H36Y and UMOD W31C . Moreover, the molecular chaperone HSPA1A was identified as a potential therapeutic target. Geranylgeranylacetone, targeting HSPA1A as a chaperone drug, effectively mitigated endoplasmic reticulum stress, alleviated ferroptosis, and delayed the progression of renal dysfunction. Based on novel uromodulin mutations, our study reveals a pathogenic ER-ferroptosis axis in ADTKD- UMOD , deepens the insight into the pathogenesis of ADTKD- UMOD , and provides a promising strategy for developing chaperone therapy with drug repurposing in genetic kidney diseases.

JCI Insight
Zhongda Hospital Southeast University (CN), Second Affiliated Hospital of Nanjing Medical University (CN), Southeast University (CN), Nanjing Medical University (CN)
Openalex Percentile: Top 13%
Genetic and Kidney Cyst Diseases
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Targeting HSPA1A with geranylgeranylacetone alleviates ADTKD-UMOD via suppression of endoplasmic reticulum stress and ferroptosis — Siqi Peng, Jinxuan Wei, et al. · JCI Insight (2026) | TGRS Research Map | TGRS