首页> 美国卫生研究院文献>Cold Spring Harbor Molecular Case Studies >Distinctly perturbed metabolic networks underlie differential tumor tissue damages induced by immune modulator β-glucan in a two-case ex vivo non-small-cell lung cancer study
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Distinctly perturbed metabolic networks underlie differential tumor tissue damages induced by immune modulator β-glucan in a two-case ex vivo non-small-cell lung cancer study

机译:在两例离体非小细胞肺癌研究中由免疫调节剂β-葡聚糖引起的差异性肿瘤组织损伤是差异化的代谢网络的基础

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摘要

Cancer and stromal cell metabolism is important for understanding tumor development, which highly depends on the tumor microenvironment (TME). Cell or animal models cannot recapitulate the human TME. We have developed an ex vivo paired cancerous (CA) and noncancerous (NC) human lung tissue approach to explore cancer and stromal cell metabolism in the native human TME. This approach enabled full control of experimental parameters and acquisition of individual patient's target tissue response to therapeutic agents while eliminating interferences from genetic and physiological variations. In this two-case study of non-small-cell lung cancer, we performed stable isotope-resolved metabolomic (SIRM) experiments on paired CA and NC lung tissues treated with a macrophage activator β-glucan and 13C6-glucose, followed by ion chromatography–Fourier transform mass spectrometry (IC-FTMS) and nuclear magnetic resonance (NMR) analyses of 13C-labeling patterns of metabolites. We demonstrated that CA lung tissue slices were metabolically more active than their NC counterparts, which recapitulated the metabolic reprogramming in CA lung tissues observed in vivo. We showed β-glucan-enhanced glycolysis, Krebs cycle, pentose phosphate pathway, antioxidant production, and itaconate buildup in patient UK021 with chronic obstructive pulmonary disease (COPD) and an abundance of tumor-associated macrophages (TAMs) but not in UK049 with no COPD and much less macrophage infiltration. This metabolic response of UK021 tissues was accompanied by reduced mitotic index, increased necrosis, and enhaced inducible nitric oxide synthase (iNOS) expression. We surmise that the reprogrammed networks could reflect β-glucan M1 polarization of human macrophages. This case study presents a unique opportunity for investigating metabolic responses of human macrophages to immune modulators in their native microenvironment on an individual patient basis.
机译:癌症和基质细胞代谢对于了解肿瘤的发展非常重要,而肿瘤的发展高度依赖于肿瘤的微环境(TME)。细胞或动物模型无法概括人类TME。我们已经开发了一种体外配对的癌性(CA)和非癌性(NC)人肺组织方法,以探索天然人TME中的癌症和基质细胞代谢。这种方法可以完全控制实验参数,并获得单个患者对治疗剂的靶组织反应,同时消除遗传和生理变异的干扰。在这项非小细胞肺癌的两例研究中,我们对巨噬细胞活化剂β-葡聚糖和 13 处理的CA和NC配对肺组织进行了稳定的同位素分解代谢组学(SIRM)实验C6-葡萄糖,然后进行离子色谱-傅立叶变换质谱(IC-FTMS)和核磁共振(NMR)分析代谢物的 13 C标记方式。我们证明,CA肺组织切片的代谢活性比其NC对应的活性高,这概括了体内观察到的CA肺组织的代谢重编程。我们在患有慢性阻塞性肺疾病(COPD)和大量肿瘤相关巨噬细胞(TAM)的患者UK021中显示了β-葡聚糖增强的糖酵解,克雷布斯循环,磷酸戊糖途径,抗氧化剂产生和衣康酸酯积累,但在UK049中没有,但没有COPD和更少的巨噬细胞浸润。 UK021组织的这种代谢反应伴随有丝分裂指数降低,坏死增加和诱导型一氧化氮合酶(iNOS)表达增强。我们推测,重新编程的网络可以反映人类巨噬细胞的β-葡聚糖M1极化。此案例研究提供了一个独特的机会,可根据个人患者调查人类巨噬细胞对其天然微环境中免疫调节剂的代谢反应。

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