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从头脂肪生成在乳腺癌中的作用扩展

Expanding Roles of De Novo Lipogenesis in Breast Cancer.

作者信息

Simeone Pasquale, Tacconi Stefano, Longo Serena, Lanuti Paola, Bravaccini Sara, Pirini Francesca, Ravaioli Sara, Dini Luciana, Giudetti Anna M

机构信息

Department of Medicine and Aging Sciences, University "G. d'Annunzio", Chieti-Pescara, 66100 Chieti, Italy.

Center for Advanced Studies and Technology (CAST), University "G. d'Annunzio", Chieti-Pescara, 66100 Chieti, Italy.

出版信息

Int J Environ Res Public Health. 2021 Mar 30;18(7):3575. doi: 10.3390/ijerph18073575.

DOI:10.3390/ijerph18073575
PMID:33808259
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8036647/
Abstract

In recent years, lipid metabolism has gained greater attention in several diseases including cancer. Dysregulation of fatty acid metabolism is a key component in breast cancer malignant transformation. In particular, de novo lipogenesis provides the substrate required by the proliferating tumor cells to maintain their membrane composition and energetic functions during enhanced growth. However, it appears that not all breast cancer subtypes depend on de novo lipogenesis for fatty acid replenishment. Indeed, while breast cancer luminal subtypes rely on de novo lipogenesis, the basal-like receptor-negative subtype overexpresses genes involved in the utilization of exogenous-derived fatty acids, in the synthesis of triacylglycerols and lipid droplets, and fatty acid oxidation. These metabolic differences are specifically associated with genomic and proteomic changes that can perturb lipogenic enzymes and related pathways. This behavior is further supported by the observation that breast cancer patients can be stratified according to their molecular profiles. Moreover, the discovery that extracellular vesicles act as a vehicle of metabolic enzymes and oncometabolites may provide the opportunity to noninvasively define tumor metabolic signature. Here, we focus on de novo lipogenesis and the specific differences exhibited by breast cancer subtypes and examine the functional contribution of lipogenic enzymes and associated transcription factors in the regulation of tumorigenic processes.

摘要

近年来,脂质代谢在包括癌症在内的多种疾病中受到了更多关注。脂肪酸代谢失调是乳腺癌恶性转化的关键因素。特别是,从头脂肪生成提供了增殖肿瘤细胞在生长增强期间维持其膜组成和能量功能所需的底物。然而,似乎并非所有乳腺癌亚型都依赖从头脂肪生成来补充脂肪酸。事实上,虽然乳腺癌管腔亚型依赖从头脂肪生成,但基底样受体阴性亚型过表达参与外源脂肪酸利用、三酰甘油和脂滴合成以及脂肪酸氧化的基因。这些代谢差异与可能扰乱脂肪生成酶和相关途径的基因组和蛋白质组变化特别相关。乳腺癌患者可根据其分子特征进行分层这一观察结果进一步支持了这种现象。此外,细胞外囊泡作为代谢酶和肿瘤代谢物载体的发现可能为非侵入性定义肿瘤代谢特征提供机会。在这里,我们关注从头脂肪生成以及乳腺癌亚型所表现出的特定差异,并研究脂肪生成酶和相关转录因子在肿瘤发生过程调控中的功能作用。

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Exogenous Fatty Acids Modulate ER Lipid Composition and Metabolism in Breast Cancer Cells.外源性脂肪酸调节乳腺癌细胞内质网的脂质组成和代谢。
Cells. 2021 Jan 16;10(1):175. doi: 10.3390/cells10010175.
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Flow Cytometry Analysis of Circulating Extracellular Vesicle Subtypes from Fresh Peripheral Blood Samples.流式细胞术分析新鲜外周血样本中的循环细胞外囊泡亚型。
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Lactate Metabolism and Immune Modulation in Breast Cancer: A Focused Review on Triple Negative Breast Tumors.
Transmembrane Amino Acid Transporters in Shaping the Metabolic Profile of Breast Cancer Cell Lines: The Focus on Molecular Biological Subtype.
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MicroRNAs and their role in breast cancer metabolism (Review).微小RNA及其在乳腺癌代谢中的作用(综述)
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Dysregulation of Fatty Acid Metabolism in Breast Cancer and Its Targeted Therapy.乳腺癌中脂肪酸代谢失调及其靶向治疗
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The acyltransferase transmembrane protein 68 regulates breast cancer cell proliferation by modulating triacylglycerol metabolism.酰基转移酶跨膜蛋白 68 通过调节三酰基甘油代谢来调节乳腺癌细胞增殖。
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The Use of Patient-Derived Organoids in the Study of Molecular Metabolic Adaptation in Breast Cancer.利用患者来源的类器官研究乳腺癌中的分子代谢适应性。
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