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An Organotypic High Throughput System for Characterization of Drug Sensitivity of Primary Multiple Myeloma Cells
Published on: July 15, 2015
Multiple myeloma derived sulfur dioxide drives CAR-T cell exhaustion by inducing mitochondrial dysfunction
Zhengyu Yu1, Hua Lin2, Jingran He3
1Department of Hematology, West China Hospital, Sichuan University, Chengdu, China.
Abstract:
Metabolic disorders mediated chimeric antigen receptor - T cell (CAR-T) exhaustion impaired cancer immunotherapy. Endogenous sulfur dioxide (SO2) derived from L-cysteine catalysis regulated immune cell functions. However, its role in CAR-T cell exhaustion remained unknown. In this study, we identified that SO2 accumulated in the bone marrow microenvironment of relapsed multiple myeloma patients inhibited CD8+ T cell and CAR-T cell infiltration and promoted a transcriptional profile consistent with functional exhaustion, leading to impaired antitumor immunity. Tumor cell derived SO2 altered mitochondrial morphology and disrupted mitochondrial membrane potential in CAR-T cells, accompanied by impaired cytokine secretion and loss of cytotoxic function. Mechanistically, SO2 enhanced interaction of dynamin-related protein 1 (DRP1) and voltage-dependent anion channel 1 and mitochondrial fission via DRP1 sulphenylation at cysteine 607 (Cys607), with abnormal increases in DRP1 GTPase activity, disrupting mitochondrial integrity. Site mutation of Cys607 in CAR-T cells abrogated DRP1 sulphenylation and restored mitochondrial structure and improves antitumor immunity. These findings define a novel redox-mediated mechanism of mitochondrial dysfunction in CAR-T cells exhaustion and identify the SO2-DRP1 axis as a potential therapeutic target to overcome metabolic exhaustion in CAR-T cell therapy.
Insights
Sulfur dioxide (SO2) accumulation in multiple myeloma patients impairs CAR-T cell function by causing exhaustion. Targeting the SO2-DRP1 pathway may restore CAR-T cell antitumor immunity.
Area of Science:
- Immunology
- Metabolic Disorders
- Cancer Therapy
Background:
- CAR-T cell exhaustion hinders cancer immunotherapy effectiveness.
- Endogenous sulfur dioxide (SO2) regulates immune cell function, but its role in CAR-T cell exhaustion is unclear.
Purpose of the Study:
- Investigate the role of SO2 in CAR-T cell exhaustion within the bone marrow microenvironment.
- Elucidate the molecular mechanisms by which SO2 induces CAR-T cell dysfunction.
Main Methods:
- Analysis of SO2 levels in relapsed multiple myeloma patients.
- Assessment of CAR-T cell infiltration, mitochondrial function, and cytokine secretion.
- Mechanistic studies involving dynamin-related protein 1 (DRP1) sulphenylation and mitochondrial fission.
Main Results:
- SO2 accumulation in the bone marrow microenvironment inhibits T cell infiltration and promotes exhaustion.
- SO2 disrupts CAR-T cell mitochondrial morphology and membrane potential, impairing function.
- SO2 enhances DRP1-VADC1 interaction and mitochondrial fission via DRP1 Cys607 sulphenylation, increasing DRP1 GTPase activity.
Conclusions:
- SO2-induced mitochondrial dysfunction contributes to CAR-T cell exhaustion.
- The SO2-DRP1 axis is a novel therapeutic target for overcoming CAR-T cell metabolic exhaustion and enhancing antitumor immunity.
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