ZMIZ1 lactylation induces tamoxifen resistance in breast cancer through increasing transcriptional activity of Nanog to impact cell stemness and cholesterol uptake.

IF 5.3 2区 医学 Q2 CELL BIOLOGY
Yue Liu, Jingyu Chen, Li Ma, Shu Zhao, Xue Hui, Wenjing Xiong, Shaoqiang Cheng, Yue Zhang
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引用次数: 0

Abstract

Tamoxifen is a critical drug for the treatment of oestrogen receptor (ER)-positive breast cancer (BC), which represents the majority of BC subtypes. However, many BC tumours that initially respond eventually develop acquired Tamoxifen resistance. Bioinformatics analysis was conducted on genes affected by Tamoxifen and upregulated in Tamoxifen-resistant cells to identify the biological processes associated with Tamoxifen resistance. Metabolomics analysis was conducted to identify the metabolites that were altered in BC with tamoxifen resistance. Resistance to Tamoxifen was evaluated by cell viability, proliferation, invasion, and colony formation in vitro, and by tumour growth in vivo. Metabolomic profiling and the detection of relevant enzymes and metabolites corroborated the metabolic reprogramming towards glycolysis in tamoxifen - resistant BC. The produced lactic acid induced the lactylation of ZMIZ1. This post-translational modification at K843 (but not K537) increased protein stability by suppressing SUMOylation and ubiquitination. The elevated total level of ZMIZ1 increased the enrichment of ZMIZ1 binding to Nanog, resulting in increased transcriptional activity of Nanog, including in OCT4 and NPC2 genes. Therefore, it leads to increased stemness and cholesterol accumulation in Tamoxifen-resistant BC. Knockdown of ZMIZ1 impaired Tamoxifen resistance, but this effect was reversed by Nanog overexpression. In summary, this study identified an important mechanism underlying Tamoxifen resistance and revealed a potential association of glucose glycolysis with cholesterol metabolism through the ZMIZ1/Nanog/NPC2 axis.

ZMIZ1乳酸化通过增加Nanog的转录活性来影响细胞干性和胆固醇摄取,从而诱导乳腺癌的他莫昔芬耐药。
他莫昔芬是治疗雌激素受体(ER)阳性乳腺癌(BC)的关键药物,它代表了大多数BC亚型。然而,许多最初有反应的BC肿瘤最终发展为获得性他莫昔芬耐药性。通过对受他莫昔芬影响和他莫昔芬耐药细胞中上调的基因进行生物信息学分析,确定与他莫昔芬耐药相关的生物学过程。进行代谢组学分析以确定BC中随他莫昔芬耐药而改变的代谢物。通过体外细胞活力、增殖、侵袭和集落形成以及体内肿瘤生长来评估对他莫昔芬的耐药性。代谢组学分析和相关酶和代谢物的检测证实了他莫昔芬耐药BC的糖酵解代谢重编程。产生的乳酸诱导ZMIZ1的乳酸化。这种K843位点的翻译后修饰(而不是K537)通过抑制sumo酰化和泛素化提高了蛋白质的稳定性。ZMIZ1总水平的升高增加了ZMIZ1与Nanog结合的富集,导致Nanog的转录活性增加,包括OCT4和NPC2基因。因此,它会导致他莫昔芬耐药BC的干性和胆固醇积累增加。ZMIZ1基因的敲低会损害他莫昔芬的耐药,但这种作用被Nanog过表达逆转。总之,本研究确定了他莫昔芬耐药的重要机制,并通过ZMIZ1/Nanog/NPC2轴揭示了葡萄糖糖酵解与胆固醇代谢的潜在关联。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Cell Biology and Toxicology
Cell Biology and Toxicology 生物-毒理学
CiteScore
9.90
自引率
4.90%
发文量
101
审稿时长
>12 weeks
期刊介绍: Cell Biology and Toxicology (CBT) is an international journal focused on clinical and translational research with an emphasis on molecular and cell biology, genetic and epigenetic heterogeneity, drug discovery and development, and molecular pharmacology and toxicology. CBT has a disease-specific scope prioritizing publications on gene and protein-based regulation, intracellular signaling pathway dysfunction, cell type-specific function, and systems in biomedicine in drug discovery and development. CBT publishes original articles with outstanding, innovative and significant findings, important reviews on recent research advances and issues of high current interest, opinion articles of leading edge science, and rapid communication or reports, on molecular mechanisms and therapies in diseases.
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