An mTORC2-driven mitochondrial positioning framework links immunometabolic stress to spatially restricted oxidative membrane damage in mitoxyperilysis

Abstract Mitoxyperilysis is a recently defined lytic cell death modality characterized by plasma membrane rupture driven by spatially confined mitochondrial oxidative damage under immunometabolic co-stress. However, the upstream mechanisms governing its spatial organization remain poorly defined. Here, we propose a conceptual framework in which mechanistic target of rapamycin complex 2 (mTORC2) may act as a critical spatial regulator linking immunometabolic stress to localized redox injury. Sustained mTORC2 activation suppresses RhoA-dependent cytoskeletal dynamics and lamellipodium formation, thereby impairing membrane dynamics and promoting prolonged mitochondria-plasma membrane contact. This spatial confinement may facilitate localized accumulation of mitochondrial reactive oxygen species (ROS), which could promote lipid peroxidation and ultimately lead to plasma membrane destabilization and lytic cell death. We further compare mitoxyperilysis with other redox-associated cell death modalities, emphasizing its defining feature of spatially restricted oxidative membrane damage. In addition, we discuss its potential relevance in pathological contexts associated with chronic immunometabolic stress. Collectively, this review suggests a potential role for an mTORC2-cytoskeleton-mitochondrial positioning axis as a regulatory module underlying spatially confined oxidative injury and provides new insights into how subcellular organization shapes redox-dependent cell fate decisions. This framework may inform the development of spatially targeted therapeutic strategies in immunometabolic diseases.

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Publication Details

Journal
Cell Death Discovery
Published
2026-09-24
DOI
https://doi.org/10.1038/s41420-026-03362-x
Primary Topic
Mitochondrial Function and Pathology
Type
article
Field-Weighted Citation Impact
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article

An mTORC2-driven mitochondrial positioning framework links immunometabolic stress to spatially restricted oxidative membrane damage in mitoxyperilysis

Yuhan Luo, Hanyu Li, Zhenhong He, Yingying Yu et al.
Cell Death Discovery
Mitochondrial Function and Pathology
article

An mTORC2-driven mitochondrial positioning framework links immunometabolic stress to spatially restricted oxidative membrane damage in mitoxyperilysis

Yuhan Luo, Hanyu Li, Zhenhong He, Yingying Yu, Dingsu Bao, Yishu Zhong
article en

Abstract

Abstract Mitoxyperilysis is a recently defined lytic cell death modality characterized by plasma membrane rupture driven by spatially confined mitochondrial oxidative damage under immunometabolic co-stress. However, the upstream mechanisms governing its spatial organization remain poorly defined. Here, we propose a conceptual framework in which mechanistic target of rapamycin complex 2 (mTORC2) may act as a critical spatial regulator linking immunometabolic stress to localized redox injury. Sustained mTORC2 activation suppresses RhoA-dependent cytoskeletal dynamics and lamellipodium formation, thereby impairing membrane dynamics and promoting prolonged mitochondria-plasma membrane contact. This spatial confinement may facilitate localized accumulation of mitochondrial reactive oxygen species (ROS), which could promote lipid peroxidation and ultimately lead to plasma membrane destabilization and lytic cell death. We further compare mitoxyperilysis with other redox-associated cell death modalities, emphasizing its defining feature of spatially restricted oxidative membrane damage. In addition, we discuss its potential relevance in pathological contexts associated with chronic immunometabolic stress. Collectively, this review suggests a potential role for an mTORC2-cytoskeleton-mitochondrial positioning axis as a regulatory module underlying spatially confined oxidative injury and provides new insights into how subcellular organization shapes redox-dependent cell fate decisions. This framework may inform the development of spatially targeted therapeutic strategies in immunometabolic diseases.

Cell Death Discovery
Good health and well-being
Openalex Percentile: Top 19%
Mitochondrial Function and Pathology
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An mTORC2-driven mitochondrial positioning framework links immunometabolic stress to spatially restricted oxidative membrane damage in mitoxyperilysis — Yuhan Luo, Hanyu Li, et al. · Cell Death Discovery (2026) | TGRS Research Map | TGRS