ADSC ‐Exosomes Preserve Mitochondrial Function and Ameliorate Uranyl Acetate‐Induced Nephrotoxicity Through Inhibition of ATF4 and Activation of PGC ‐1α/ NRF /Tfam Pathway

Uranyl acetate (UA)-induced renal injury disrupts mitochondrial ultrastructure and homeostasis through oxidative stress-mediated pathways, with activating transcription factor 4 (ATF4) identified as a critical molecular switch. This study demonstrates ATF4 directly suppresses peroxisome proliferator-activated receptor gamma coactivator 1-alpha (PGC-1α) transcription via promoter binding, as validated by chromatin immunoprecipitation and luciferase reporter assays. Integrated bioinformatics of renal injury datasets (GSE34351, GSE87024) revealed co-expression networks converging on mitochondrial regulators. In UA-exposed mice, ATF4 silencing rescued mitochondrial biogenesis by activating PGC-1α, restoring cristae architecture observed by transmission electron microscopy and upregulating biogenesis markers (NRF1, Tfam, CPS1). Adipose-derived stem cell exosomes (ADSC-exo) were isolated as biological mediators that attenuated renal uranium accumulation, serum oxidative stress, and histopathological damage. Mechanistically, ADSC-exo inhibited ATF4 to unleash PGC-1α-driven mitochondrial biogenesis, thereby reestablishing redox homeostasis. These findings support the ATF4/PGC-1α axis as an important regulatory pathway involved in mitochondrial impairment during uranium nephrotoxicity.

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Publication Details

Journal
The FASEB Journal
Published
2026-09-20
DOI
https://doi.org/10.1096/fj.202503068r
Primary Topic
Radioactive element chemistry and processing
Type
article
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article

ADSC ‐Exosomes Preserve Mitochondrial Function and Ameliorate Uranyl Acetate‐Induced Nephrotoxicity Through Inhibition of ATF4 and Activation of PGC ‐1α/ NRF /Tfam Pathway

Tianyuan Li, Yang null Dong, Ying null Tian, Huan Fu et al.
The FASEB Journal
Radioactive element chemistry and processing
article

ADSC ‐Exosomes Preserve Mitochondrial Function and Ameliorate Uranyl Acetate‐Induced Nephrotoxicity Through Inhibition of ATF4 and Activation of PGC ‐1α/ NRF /Tfam Pathway

Tianyuan Li, Yang null Dong, Ying null Tian, Huan Fu, Bei Fang, Lei Li
article en

Abstract

Uranyl acetate (UA)-induced renal injury disrupts mitochondrial ultrastructure and homeostasis through oxidative stress-mediated pathways, with activating transcription factor 4 (ATF4) identified as a critical molecular switch. This study demonstrates ATF4 directly suppresses peroxisome proliferator-activated receptor gamma coactivator 1-alpha (PGC-1α) transcription via promoter binding, as validated by chromatin immunoprecipitation and luciferase reporter assays. Integrated bioinformatics of renal injury datasets (GSE34351, GSE87024) revealed co-expression networks converging on mitochondrial regulators. In UA-exposed mice, ATF4 silencing rescued mitochondrial biogenesis by activating PGC-1α, restoring cristae architecture observed by transmission electron microscopy and upregulating biogenesis markers (NRF1, Tfam, CPS1). Adipose-derived stem cell exosomes (ADSC-exo) were isolated as biological mediators that attenuated renal uranium accumulation, serum oxidative stress, and histopathological damage. Mechanistically, ADSC-exo inhibited ATF4 to unleash PGC-1α-driven mitochondrial biogenesis, thereby reestablishing redox homeostasis. These findings support the ATF4/PGC-1α axis as an important regulatory pathway involved in mitochondrial impairment during uranium nephrotoxicity.

The FASEB JournalVol. 40(18)
Nanchang University (CN), First Affiliated Hospital of Jiangxi Medical College (CN), First Affiliated Hospital of Nanchang University (CN)
Openalex Percentile: Top 25%
Radioactive element chemistry and processing
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ADSC ‐Exosomes Preserve Mitochondrial Function and Ameliorate Uranyl Acetate‐Induced Nephrotoxicity Through Inhibition of ATF4 and Activation of PGC ‐1α/ NRF /Tfam Pathway — Tianyuan Li, Yang null Dong, et al. · The FASEB Journal (2026) | TGRS Research Map | TGRS