Targeting a Novel AREG + Dendritic Cell Alleviates Renal Fibrosis Induced by Ischemia–Reperfusion Injury

ABSTRACT Renal ischemia–reperfusion injury (RIRI) is a major cause of acute tubular damage and a key driver of maladaptive repair and fibrosis. However, the cellular initiators that connect early immune activation to tubular epithelial–mesenchymal transition (EMT) during RIRI remain poorly defined. Here, we established a human RIRI model by modifying the surgical procedures in patients undergoing radical nephrectomy and confirmed successful injury induction by tubular dilation, severe mitochondrial swelling and increased apoptosis in renal tissues. Using single‐cell RNA sequencing, we uncovered an underappreciated dendritic cell (DC) subset, CD11c + AREG + DCs, that expands after RIRI, coinciding with EMT activation in tubular epithelial cells at early stages. Notably, ligand–receptor inference revealed markedly enhanced communication between CD11c + AREG + DCs and tubular epithelial cells after RIRI, suggesting the AREG–EGFR as a dominant axis. Mechanistically, CD11c + AREG + DCs initiate and promote tubular EMT via AREG‐dependent EGFR signalling, establishing a direct causal link between this DC population and injured tubular epithelial cells. Importantly, Areg knockdown or DC depletion significantly alleviated tubular damage and fibrosis and preserved kidney function in the IRI mouse model, which highlights these cells could be potential therapeutic targets for mitigating RIRI.

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Publication Details

Journal
Cell Proliferation
Published
2026-10-05
DOI
https://doi.org/10.1111/cpr.70287
Primary Topic
Acute Kidney Injury Research
Type
article
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article

Targeting a Novel AREG + Dendritic Cell Alleviates Renal Fibrosis Induced by Ischemia–Reperfusion Injury

Youhua Liu, Yulu Peng, Xiangpeng Zou, Zhanji Zhan et al.
Cell Proliferation
Acute Kidney Injury Research
article

Targeting a Novel AREG + Dendritic Cell Alleviates Renal Fibrosis Induced by Ischemia–Reperfusion Injury

Youhua Liu, Yulu Peng, Xiangpeng Zou, Zhanji Zhan, Zhiling Zhang, Baokui Ye, Chunping Yu, 熊龙斌, Yixin Huang, X Luo, Lihao Zhang, Yisong Lin, Fangjian Zhou, Zhaohui Zhou, Xiaofeng Yang
article en

Abstract

ABSTRACT Renal ischemia–reperfusion injury (RIRI) is a major cause of acute tubular damage and a key driver of maladaptive repair and fibrosis. However, the cellular initiators that connect early immune activation to tubular epithelial–mesenchymal transition (EMT) during RIRI remain poorly defined. Here, we established a human RIRI model by modifying the surgical procedures in patients undergoing radical nephrectomy and confirmed successful injury induction by tubular dilation, severe mitochondrial swelling and increased apoptosis in renal tissues. Using single‐cell RNA sequencing, we uncovered an underappreciated dendritic cell (DC) subset, CD11c + AREG + DCs, that expands after RIRI, coinciding with EMT activation in tubular epithelial cells at early stages. Notably, ligand–receptor inference revealed markedly enhanced communication between CD11c + AREG + DCs and tubular epithelial cells after RIRI, suggesting the AREG–EGFR as a dominant axis. Mechanistically, CD11c + AREG + DCs initiate and promote tubular EMT via AREG‐dependent EGFR signalling, establishing a direct causal link between this DC population and injured tubular epithelial cells. Importantly, Areg knockdown or DC depletion significantly alleviated tubular damage and fibrosis and preserved kidney function in the IRI mouse model, which highlights these cells could be potential therapeutic targets for mitigating RIRI.

Cell Proliferation
Sun Yat-sen University (CN), First Affiliated Hospital of Guangzhou Medical University (CN), Sun Yat-sen University Cancer Center (CN), Southern Medical University (CN), Guangzhou Medical University (CN)
Openalex Percentile: Top 11%
Acute Kidney Injury Research
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