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S-腺苷甲硫氨酸生物合成是癌症干细胞的一个可靶向代谢脆弱性靶点。

S-adenosylmethionine biosynthesis is a targetable metabolic vulnerability of cancer stem cells.

机构信息

Department of Medicine, University of Wisconsin Carbone Cancer Center, University of Wisconsin School of Medicine and Public Health, Madison, WI, USA.

Department of Biomolecular Chemistry, University of Wisconsin Carbone Cancer Center, University of Wisconsin School of Medicine and Public Health, Madison, WI, USA.

出版信息

Breast Cancer Res Treat. 2019 May;175(1):39-50. doi: 10.1007/s10549-019-05146-7. Epub 2019 Feb 2.

Abstract

PURPOSE

Many transformed cells and embryonic stem cells are dependent on the biosynthesis of the universal methyl-donor S-adenosylmethionine (SAM) from methionine by the enzyme MAT2A to maintain their epigenome. We hypothesized that cancer stem cells (CSCs) rely on SAM biosynthesis and that the combination of methionine depletion and MAT2A inhibition would eradicate CSCs.

METHODS

Human triple (ER/PR/HER2)-negative breast carcinoma (TNBC) cell lines were cultured as CSC-enriched mammospheres in control or methionine-free media. MAT2A was inhibited with siRNAs or cycloleucine. The effects of methionine restriction and/or MAT2A inhibition on the formation of mammospheres, the expression of CSC markers (CD44/C24), MAT2A and CSC transcriptional regulators, apoptosis induction and histone modifications were determined. A murine model of metastatic TNBC was utilized to evaluate the effects of dietary methionine restriction, MAT2A inhibition and the combination.

RESULTS

Methionine restriction inhibited mammosphere formation and reduced the CD44/C24 CSC population; these effects were partly rescued by SAM. Methionine depletion induced MAT2A expression (mRNA and protein) and sensitized CSCs to inhibition of MAT2A (siRNAs or cycloleucine). Cycloleucine enhanced the effects of methionine depletion on H3K4me3 demethylation and suppression of Sox9 expression. Dietary methionine restriction induced MAT2A expression in mammary tumors, and the combination of methionine restriction and cycloleucine was more effective than either alone at suppressing primary and lung metastatic tumor burden in a murine TNBC model.

CONCLUSIONS

Our findings point to SAM biosynthesis as a unique metabolic vulnerability of CSCs that can be targeted by combining methionine depletion with MAT2A inhibition to eradicate drug-resistant CSCs.

摘要

目的

许多转化细胞和胚胎干细胞依赖于将蛋氨酸通过酶 MAT2A 转化为通用甲基供体 S-腺苷甲硫氨酸(SAM)来维持其表观基因组。我们假设癌症干细胞(CSC)依赖于 SAM 生物合成,并且蛋氨酸耗竭和 MAT2A 抑制的组合将根除 CSC。

方法

人三阴性(ER/PR/HER2)乳腺癌(TNBC)细胞系在对照或无蛋氨酸培养基中培养为富含 CSC 的类乳腺球体。用 siRNA 或环亮氨酸抑制 MAT2A。测定蛋氨酸限制和/或 MAT2A 抑制对类乳腺球体形成、CSC 标志物(CD44/C24)、MAT2A 和 CSC 转录调节剂表达、细胞凋亡诱导和组蛋白修饰的影响。利用转移性 TNBC 小鼠模型来评估饮食蛋氨酸限制、MAT2A 抑制和联合治疗的效果。

结果

蛋氨酸限制抑制类乳腺球体形成并减少 CD44/C24 CSC 群体;这些作用部分由 SAM 挽救。蛋氨酸耗竭诱导 MAT2A 表达(mRNA 和蛋白)并使 CSCs 对 MAT2A 抑制(siRNA 或环亮氨酸)敏感。环亮氨酸增强了蛋氨酸耗竭对 H3K4me3 去甲基化和 Sox9 表达抑制的作用。饮食蛋氨酸限制诱导乳腺肿瘤中 MAT2A 的表达,并且蛋氨酸限制和环亮氨酸的组合在抑制小鼠 TNBC 模型中的原发性和肺转移瘤负担方面比单独使用任何一种方法更有效。

结论

我们的研究结果表明,SAM 生物合成是 CSC 的独特代谢脆弱性,可以通过将蛋氨酸耗竭与 MAT2A 抑制相结合来靶向,以根除耐药性 CSC。

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