从硬脂酰辅酶a去饱和酶到脂肪酸去饱和酶2在癌症上皮-间质转化和转移中的脱饱和重编程。

IF 20.1 1区 医学 Q1 ONCOLOGY
Zhicong Chen, Yanqing Gong, Fukai Chen, Hyeon Jeong Lee, Jinqin Qian, Jing Zhao, Wenpeng Zhang, Yamin Li, Yihui Zhou, Qiaobing Xu, Yu Xia, Liqun Zhou, Ji-Xin Cheng
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引用次数: 0

摘要

背景:脂肪酸的适应性去饱和(FA)是癌症代谢可塑性的一个新兴标志。去饱和酶如硬脂酰辅酶a去饱和酶(SCD)和脂肪酸去饱和酶2 (FADS2)与多种癌症有关,它们的显性和代偿作用最近被强调。然而,肿瘤如何启动和维持其自给自足的FA去饱和以维持表型转变仍然是难以捉摸的。本研究旨在探讨SCD和FADS2的分子协调及其在癌症进展中的特异性重编程机制。方法:通过对多个癌症队列的生物信息学分析,探索SCD和FADS2之间潜在的相互作用,为后续的功能和机制研究提供指导。用在线数据集研究了去饱和酶的表达水平,并在癌症组织和细胞系中进行了验证。通过各种异构体分离脂质组学方法和使用去饱和酶抑制剂的敏感性测定来表征特异性去饱和活性。利用多重受激拉曼散射成像技术进行了原位脂质分析。在体外和体内进行了功能分析,并采用rna测序进行机制验证。结果:整合rna -蛋白代谢物水平后,数据显示,从scd依赖性到fads2依赖性去饱和的重编程与患者和细胞系的癌症上皮-间质转化(EMT)和进展有关。FADS2过表达和SCD抑制同时维持了EMT的可塑性。FADS2/β-catenin自我强化反馈回路促进了脂质不饱和程度、膜流动性、转移潜能和EMT信号传导。此外,SCD抑制引发了致死性凋亡,但通过诱导EMT和通过单磷酸腺苷活化蛋白激酶激活增加FA摄取,提高了存活可塑性。值得注意的是,这种去饱和重编程增加了转化生长因子-β2,有效地维持了EMT期间的侵袭性表型和代谢可塑性。结论:这些发现揭示了癌症EMT和进展过程中从scd依赖性到fads2依赖性的代谢重编程,这同时支持EMT的可塑性。靶向去饱和重编程代表了癌症代谢治疗的潜在脆弱性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Orchestrated desaturation reprogramming from stearoyl-CoA desaturase to fatty acid desaturase 2 in cancer epithelial-mesenchymal transition and metastasis

Orchestrated desaturation reprogramming from stearoyl-CoA desaturase to fatty acid desaturase 2 in cancer epithelial-mesenchymal transition and metastasis

Background

Adaptative desaturation in fatty acid (FA) is an emerging hallmark of cancer metabolic plasticity. Desaturases such as stearoyl-CoA desaturase (SCD) and fatty acid desaturase 2 (FADS2) have been implicated in multiple cancers, and their dominant and compensatory effects have recently been highlighted. However, how tumors initiate and sustain their self-sufficient FA desaturation to maintain phenotypic transition remains elusive. This study aimed to explore the molecular orchestration of SCD and FADS2 and their specific reprogramming mechanisms in response to cancer progression.

Methods

The potential interactions between SCD and FADS2 were explored by bioinformatics analyses across multiple cancer cohorts, which guided subsequent functional and mechanistic investigations. The expression levels of desaturases were investigated with online datasets and validated in both cancer tissues and cell lines. Specific desaturation activities were characterized through various isomer-resolved lipidomics methods and sensitivity assays using desaturase inhibitors. In-situ lipid profiling was conducted using multiplex stimulated Raman scattering imaging. Functional assays were performed both in vitro and in vivo, with RNA-sequencing employed for the mechanism verification.

Results

After integration of the RNA-protein-metabolite levels, the data revealed that a reprogramming from SCD-dependent to FADS2-dependent desaturation was linked to cancer epithelial-mesenchymal transition (EMT) and progression in both patients and cell lines. FADS2 overexpression and SCD suppression concurrently maintained EMT plasticity. A FADS2/β-catenin self-reinforcing feedback loop facilitated the degree of lipid unsaturation, membrane fluidity, metastatic potential and EMT signaling. Moreover, SCD inhibition triggered a lethal apoptosis but boosted survival plasticity by inducing EMT and enhancing FA uptake via adenosine monophosphate-activated protein kinase activation. Notably, this desaturation reprogramming increased transforming growth factor-β2, effectively sustaining aggressive phenotypes and metabolic plasticity during EMT.

Conclusions

These findings revealed a metabolic reprogramming from SCD-dependent to FADS2-dependent desaturation during cancer EMT and progression, which concurrently supports EMT plasticity. Targeting desaturation reprogramming represents a potential vulnerability for cancer metabolic therapy.

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来源期刊
Cancer Communications
Cancer Communications Biochemistry, Genetics and Molecular Biology-Cancer Research
CiteScore
25.50
自引率
4.30%
发文量
153
审稿时长
4 weeks
期刊介绍: Cancer Communications is an open access, peer-reviewed online journal that encompasses basic, clinical, and translational cancer research. The journal welcomes submissions concerning clinical trials, epidemiology, molecular and cellular biology, and genetics.
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