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A metabolic intervention strategy to break evolutionary adaptability of tumor for reinforced immunotherapy

The typical hallmark of tumor evolution is metabolic dysregulation. In addition to secreting immunoregulatory metabolites, tumor cells and various immune cells display different metabolic pathways and plasticity. Harnessing the metabolic differences to reduce the tumor and immunosuppressive cells wh...

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Autores principales: Feng, Qianhua, Hao, Yutong, Yang, Shuaiqi, Yuan, Xiaomin, Chen, Jing, Mei, Yuying, Liu, Lanlan, Chang, Junbiao, Zhang, Zhenzhong, Wang, Lei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9979089/
https://www.ncbi.nlm.nih.gov/pubmed/36873182
http://dx.doi.org/10.1016/j.apsb.2022.10.021
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author Feng, Qianhua
Hao, Yutong
Yang, Shuaiqi
Yuan, Xiaomin
Chen, Jing
Mei, Yuying
Liu, Lanlan
Chang, Junbiao
Zhang, Zhenzhong
Wang, Lei
author_facet Feng, Qianhua
Hao, Yutong
Yang, Shuaiqi
Yuan, Xiaomin
Chen, Jing
Mei, Yuying
Liu, Lanlan
Chang, Junbiao
Zhang, Zhenzhong
Wang, Lei
author_sort Feng, Qianhua
collection PubMed
description The typical hallmark of tumor evolution is metabolic dysregulation. In addition to secreting immunoregulatory metabolites, tumor cells and various immune cells display different metabolic pathways and plasticity. Harnessing the metabolic differences to reduce the tumor and immunosuppressive cells while enhancing the activity of positive immunoregulatory cells is a promising strategy. We develop a nanoplatform (CLCeMOF) based on cerium metal–organic framework (CeMOF) by lactate oxidase (LOX) modification and glutaminase inhibitor (CB839) loading. The cascade catalytic reactions induced by CLCeMOF generate reactive oxygen species “storm” to elicit immune responses. Meanwhile, LOX-mediated metabolite lactate exhaustion relieves the immunosuppressive tumor microenvironment, preparing the ground for intracellular regulation. Most noticeably, the immunometabolic checkpoint blockade therapy, as a result of glutamine antagonism, is exploited for overall cell mobilization. It is found that CLCeMOF inhibited glutamine metabolism-dependent cells (tumor cells, immunosuppressive cells, etc.), increased infiltration of dendritic cells, and especially reprogrammed CD8(+) T lymphocytes with considerable metabolic flexibility toward a highly activated, long-lived, and memory-like phenotype. Such an idea intervenes both metabolite (lactate) and cellular metabolic pathway, which essentially alters overall cell fates toward the desired situation. Collectively, the metabolic intervention strategy is bound to break the evolutionary adaptability of tumors for reinforced immunotherapy.
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spelling pubmed-99790892023-03-03 A metabolic intervention strategy to break evolutionary adaptability of tumor for reinforced immunotherapy Feng, Qianhua Hao, Yutong Yang, Shuaiqi Yuan, Xiaomin Chen, Jing Mei, Yuying Liu, Lanlan Chang, Junbiao Zhang, Zhenzhong Wang, Lei Acta Pharm Sin B Original Article The typical hallmark of tumor evolution is metabolic dysregulation. In addition to secreting immunoregulatory metabolites, tumor cells and various immune cells display different metabolic pathways and plasticity. Harnessing the metabolic differences to reduce the tumor and immunosuppressive cells while enhancing the activity of positive immunoregulatory cells is a promising strategy. We develop a nanoplatform (CLCeMOF) based on cerium metal–organic framework (CeMOF) by lactate oxidase (LOX) modification and glutaminase inhibitor (CB839) loading. The cascade catalytic reactions induced by CLCeMOF generate reactive oxygen species “storm” to elicit immune responses. Meanwhile, LOX-mediated metabolite lactate exhaustion relieves the immunosuppressive tumor microenvironment, preparing the ground for intracellular regulation. Most noticeably, the immunometabolic checkpoint blockade therapy, as a result of glutamine antagonism, is exploited for overall cell mobilization. It is found that CLCeMOF inhibited glutamine metabolism-dependent cells (tumor cells, immunosuppressive cells, etc.), increased infiltration of dendritic cells, and especially reprogrammed CD8(+) T lymphocytes with considerable metabolic flexibility toward a highly activated, long-lived, and memory-like phenotype. Such an idea intervenes both metabolite (lactate) and cellular metabolic pathway, which essentially alters overall cell fates toward the desired situation. Collectively, the metabolic intervention strategy is bound to break the evolutionary adaptability of tumors for reinforced immunotherapy. Elsevier 2023-02 2022-10-28 /pmc/articles/PMC9979089/ /pubmed/36873182 http://dx.doi.org/10.1016/j.apsb.2022.10.021 Text en © 2022 Chinese Pharmaceutical Association and Institute of Materia Medica, Chinese Academy of Medical Sciences. Production and hosting by Elsevier B.V. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Article
Feng, Qianhua
Hao, Yutong
Yang, Shuaiqi
Yuan, Xiaomin
Chen, Jing
Mei, Yuying
Liu, Lanlan
Chang, Junbiao
Zhang, Zhenzhong
Wang, Lei
A metabolic intervention strategy to break evolutionary adaptability of tumor for reinforced immunotherapy
title A metabolic intervention strategy to break evolutionary adaptability of tumor for reinforced immunotherapy
title_full A metabolic intervention strategy to break evolutionary adaptability of tumor for reinforced immunotherapy
title_fullStr A metabolic intervention strategy to break evolutionary adaptability of tumor for reinforced immunotherapy
title_full_unstemmed A metabolic intervention strategy to break evolutionary adaptability of tumor for reinforced immunotherapy
title_short A metabolic intervention strategy to break evolutionary adaptability of tumor for reinforced immunotherapy
title_sort metabolic intervention strategy to break evolutionary adaptability of tumor for reinforced immunotherapy
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9979089/
https://www.ncbi.nlm.nih.gov/pubmed/36873182
http://dx.doi.org/10.1016/j.apsb.2022.10.021
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