ATAD-3 couples plasma membrane injury to mitochondrial Ca2+ signaling

Abstract Mitochondrial Ca 2+ uptake couples cellular Ca 2+ signals to mitochondrial metabolism and stress responses and is primarily mediated by the mitochondrial Ca 2+ uniporter (MCU). Here, we identify an ATAD-3-dependent mechanism that promotes mitochondrial Ca 2+ uptake following plasma membrane injury in C. elegans . Living imaging reveals robust, albeit delayed, mitochondrial Ca 2+ influx following injury in mcu-1 mutants, indicating the existence of a compensatory Ca 2+ uptake mechanism. RNAi screen identifies the conserved AAA+ ATPase ATAD-3 as an essential regulator of this pathway, whereas MICU-3 acts as a negative regulator. Wounding induces ATAD-3 oligomerization and mitochondrial enrichment, which are enhanced in mcu-1 mutants. Disrupting ATAD-3 oligomerization or expression of disease-associated ATAD-3 variants abolishes wounding-induced mitochondrial Ca 2+ uptake. Structure modeling predicts that oligomeric ATAD-3 adopts a channel-like architecture. These findings uncover ATAD-3 as a context-dependent regulator of mitochondrial Ca 2+ homeostasis during cellular stress and provide insight into how this process may be disrupted in disease.

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Publication Details

Journal
Nature Communications
Published
2026-09-10
DOI
https://doi.org/10.1038/s41467-026-77690-y
Primary Topic
Protein Degradation and Inhibitors
Type
article
Field-Weighted Citation Impact
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article

ATAD-3 couples plasma membrane injury to mitochondrial Ca2+ signaling

Zhenguang Ying, Bing Yang, Yujie Sun, Chonglin Yang et al.
Nature Communications
Protein Degradation and Inhibitors
article

ATAD-3 couples plasma membrane injury to mitochondrial Ca2+ signaling

Zhenguang Ying, Bing Yang, Yujie Sun, Chonglin Yang, Weirui Ma, Suhong Xu, Hengda Zhou, Xuecong Ren, Mao Zhang, Shiqi Xu, Yi Peng, Meijiao Li, Xin Wang
article en

Abstract

Abstract Mitochondrial Ca 2+ uptake couples cellular Ca 2+ signals to mitochondrial metabolism and stress responses and is primarily mediated by the mitochondrial Ca 2+ uniporter (MCU). Here, we identify an ATAD-3-dependent mechanism that promotes mitochondrial Ca 2+ uptake following plasma membrane injury in C. elegans . Living imaging reveals robust, albeit delayed, mitochondrial Ca 2+ influx following injury in mcu-1 mutants, indicating the existence of a compensatory Ca 2+ uptake mechanism. RNAi screen identifies the conserved AAA+ ATPase ATAD-3 as an essential regulator of this pathway, whereas MICU-3 acts as a negative regulator. Wounding induces ATAD-3 oligomerization and mitochondrial enrichment, which are enhanced in mcu-1 mutants. Disrupting ATAD-3 oligomerization or expression of disease-associated ATAD-3 variants abolishes wounding-induced mitochondrial Ca 2+ uptake. Structure modeling predicts that oligomeric ATAD-3 adopts a channel-like architecture. These findings uncover ATAD-3 as a context-dependent regulator of mitochondrial Ca 2+ homeostasis during cellular stress and provide insight into how this process may be disrupted in disease.

Nature Communications
Yunnan University (CN), Second Affiliated Hospital of Zhejiang University (CN), Hangzhou Medical College (CN), Zhejiang University (CN), University of Edinburgh (GB)
Good health and well-being
Openalex Percentile: Top 18%
Protein Degradation and Inhibitors
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