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人类癌症患者及患者来源模型中的代谢重编程

Metabolic Reprogramming in Human Cancer Patients and Patient-Derived Models.

作者信息

Fan Teresa W-M, Higashi Richard M, Lane Andrew N

机构信息

Center for Environmental and Systems Biochemistry; Markey Cancer Center; Department of Toxicology and Cancer Biology, University of Kentucky, Lexington, Kentucky 40536, USA

Center for Environmental and Systems Biochemistry; Markey Cancer Center; Department of Toxicology and Cancer Biology, University of Kentucky, Lexington, Kentucky 40536, USA.

出版信息

Cold Spring Harb Perspect Med. 2025 May 5;15(5):a041552. doi: 10.1101/cshperspect.a041552.

Abstract

Stable isotope-resolved metabolomics delineates reprogrammed intersecting metabolic networks in human cancers. Knowledge gained from in vivo patient studies provides the "benchmark" for cancer models to recapitulate. It is particularly difficult to model patients' tumor microenvironment (TME) with its complex cell-cell/cell-matrix interactions, which shapes metabolic reprogramming crucial to cancer development/drug resistance. Patient-derived organotypic tissue cultures (PD-OTCs) represent a unique model that retains an individual patient's TME. PD-OTCs of non-small-cell lung cancer better recapitulated the in vivo metabolic reprogramming of patient tumors than the patient-derived tumor xenograft (PDTX), while enabling interrogation of immunometabolic response to modulators and TME-dependent resistance development. Patient-derived organoids (PDOs) are also good models for reconstituting TME-dependent metabolic reprogramming and for evaluating therapeutic responses. Single-cell based 'omics on combinations of PD-OTC and PDO models will afford an unprecedented understanding on TME dependence of human cancer metabolic reprogramming, which should translate into the identification of novel metabolic targets for regulating TME interactions and drug resistance.

摘要

稳定同位素分辨代谢组学描绘了人类癌症中重新编程的交叉代谢网络。从体内患者研究中获得的知识为癌症模型的重现提供了“基准”。模拟患者具有复杂细胞间/细胞与基质相互作用的肿瘤微环境(TME)特别困难,而这种相互作用塑造了对癌症发展/耐药性至关重要的代谢重编程。患者来源的器官型组织培养物(PD-OTC)代表了一种独特的模型,它保留了个体患者的TME。与患者来源的肿瘤异种移植(PDTX)相比,非小细胞肺癌的PD-OTC能更好地重现患者肿瘤的体内代谢重编程,同时能够探究对调节剂的免疫代谢反应以及TME依赖性耐药性的发展。患者来源的类器官(PDO)也是重建TME依赖性代谢重编程和评估治疗反应的良好模型。基于单细胞的“组学”研究PD-OTC和PDO模型的组合,将为人类癌症代谢重编程对TME的依赖性提供前所未有的理解,这应该会转化为识别用于调节TME相互作用和耐药性的新型代谢靶点。

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