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在从小鼠的葡萄糖代谢转变为脂肪酸代谢后,增加顺铂暴露会促进小细胞肺癌的转化。 (注:原文中未明确说明是小鼠,根据上下文推测可能是小鼠,若不是请根据实际情况修改)

Increasing cisplatin exposure promotes small-cell lung cancer transformation after a shift from glucose metabolism to fatty acid metabolism.

作者信息

Zhao Qiu-Yu, Liu Wen-Jun, Wang Jian-Guang, Li He, Lv Jia-Lu, Wang Yumeng, Wang Chun

机构信息

College of Integrated Chinese and Western Medical, Liaoning University of Traditional Chinese Medicine, Shenyang, 110847, Liaoning, People's Republic of China.

Key Laboratory of Ministry of Education for TCM Viscera-State Theory and Applications, Liaoning University of Traditional Chinese Medicine, Shenyang, 110847, Liaoning, People's Republic of China.

出版信息

J Cancer Res Clin Oncol. 2025 Mar 28;151(3):126. doi: 10.1007/s00432-025-06164-3.

Abstract

OBJECTIVES

Lung cancer is a leading cause of global cancer mortality. Clinical observations reveal that histological transformation from non-small cell lung cancer (NSCLC) to small cell lung cancer (SCLC) is accompanied by mutations in TP53 and RB1. By applying gradually increasing cisplatin concentrations to mimic the escalating drug pressure within the tumor microenvironment, this study investigated the link between phenotypic transformation to SCLC in cisplatin-resistant human lung adenocarcinoma cells and alterations in cellular energy production pathways.

MATERIALS AND METHODS

We established two cisplatin-resistant NSCLC cell lines with varying resistance levels. RNAseq analyses identified TP53 and RB1 gene mutations. Comprehensive functional assays were performed to characterize A549/DDP1 μg/mL and A549/DDP3 μg/mL cells, focusing on proliferation and migratory capabilities. Cellular bioenergetics were assessed through glycolysis and oxidative phosphorylation analyses. Western blotting was employed to examine epithelial-mesenchymal transition (EMT), glucose metabolism, and lipid metabolism markers. Cell cycle distribution was analyzed by flow cytometry. Additionally, a xenograft mouse model was developed for in vivo validation.

RESULTS

TP53 and RB1 mutations were associated with cisplatin concentration-dependent phenotypic transformation, with A549/DDP cells acquiring a more aggressive SCLC-like phenotype (In the article we call the A549/DDPSCLC cells). Analysis of cell bioenergetics profiling and Western blot analyses revealed enhanced glucose metabolism in A549/DDP1 μg/mL cells, while A549/DDPSCLC cells exhibited predominant lipid metabolism. Compound3K and Etomoxir specifically inhibit the activity of PKM2 and CPT1A, respectively, with Etomoxir demonstrating substantially inhibited A549/DDPSCLC cells growth and more cell cycle arrest in the G0/G1 phase. Combinatorial of Compound3K and Etomoxir effectively induced cell death in A549/DDPSCLC phenotype cells in vitro. Etomoxir alone or combined with Compound3K significantly inhibited tumor growth in vivo, with enhanced efficacy in the combination group.

CONCLUSIONS

This study provides the first evidence of cisplatin concentration-dependent metabolic reprogramming during NSCLC-to-SCLC transformation. We identified a phenotypic transition from NSCLC to SCLC accompanied by a metabolic shift from glucose to fatty acid metabolism, offering new insights into therapeutic strategies for treatmentresistant lung cancer.

摘要

目的

肺癌是全球癌症死亡的主要原因。临床观察表明,非小细胞肺癌(NSCLC)向小细胞肺癌(SCLC)的组织学转变伴随着TP53和RB1基因的突变。通过逐渐增加顺铂浓度以模拟肿瘤微环境中不断升高的药物压力,本研究调查了顺铂耐药的人肺腺癌细胞向SCLC表型转化与细胞能量产生途径改变之间的联系。

材料与方法

我们建立了两个具有不同耐药水平的顺铂耐药NSCLC细胞系。RNAseq分析确定了TP53和RB1基因突变。进行了全面的功能测定以表征A549/DDP1μg/mL和A549/DDP3μg/mL细胞,重点关注增殖和迁移能力。通过糖酵解和氧化磷酸化分析评估细胞生物能量学。采用蛋白质免疫印迹法检测上皮-间质转化(EMT)、葡萄糖代谢和脂质代谢标志物。通过流式细胞术分析细胞周期分布。此外,还建立了异种移植小鼠模型进行体内验证。

结果

TP53和RB1基因突变与顺铂浓度依赖性表型转化相关,A549/DDP细胞获得了更具侵袭性的SCLC样表型(在本文中我们将A549/DDPSCLC细胞称为A549/DDPSCLC细胞)。细胞生物能量学分析和蛋白质免疫印迹分析显示,A549/DDP1μg/mL细胞中葡萄糖代谢增强,而A549/DDPSCLC细胞表现出主要的脂质代谢。Compound3K和依托莫昔分别特异性抑制PKM2和CPT1A的活性,依托莫昔显示出对A549/DDPSCLC细胞生长的显著抑制以及更多细胞在G0/G1期的细胞周期停滞。Compound3K和依托莫昔联合使用在体外有效诱导A549/DDPSCLC表型细胞死亡。依托莫昔单独使用或与Compound3K联合使用在体内均显著抑制肿瘤生长,联合组疗效增强。

结论

本研究首次提供了NSCLC向SCLC转化过程中顺铂浓度依赖性代谢重编程的证据。我们确定了从NSCLC到SCLC的表型转变,伴随着从葡萄糖代谢到脂肪酸代谢的转变,为耐药肺癌的治疗策略提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/359d/11953189/17b1d3e678f4/432_2025_6164_Fig1_HTML.jpg

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