Department of Cancer Biology and Genetics, Memorial Sloan Kettering Cancer Center, New York, NY 10065, USA.
The Donald B. and Catherine C. Marron Cancer Metabolism Center, Memorial Sloan Kettering Cancer Center, New York, NY 10065, USA.
Cell Metab. 2019 Nov 5;30(5):865-876.e5. doi: 10.1016/j.cmet.2019.09.009. Epub 2019 Oct 10.
Cysteine acts both as a building unit for protein translation and as the limiting substrate for glutathione synthesis to support the cellular antioxidant system. In addition to transporter-mediated uptake, cellular cysteine can also be synthesized from methionine through the transsulfuration pathway. Here, we investigate the regulation of transsulfuration and its role in sustaining cell proliferation upon extracellular cysteine limitation, a condition reported to occur in human tumors as they grow in size. We observed constitutive expression of transsulfuration enzymes in a subset of cancer cell lines, while in other cells, these enzymes are induced following cysteine deprivation. We show that both constitutive and inducible transsulfuration activities contribute to the cellular cysteine pool and redox homeostasis. The rate of transsulfuration is determined by the cellular capacity to conduct methylation reactions that convert S-adenosylmethionine to S-adenosylhomocysteine. Finally, our results demonstrate that transsulfuration-mediated cysteine synthesis is critical in promoting tumor growth in vivo.
半胱氨酸既是蛋白质翻译的构建单元,也是谷胱甘肽合成的限制底物,以支持细胞抗氧化系统。除了转运体介导的摄取外,细胞半胱氨酸还可以通过硫代途径从蛋氨酸合成。在这里,我们研究了硫代途径的调节及其在细胞增殖中的作用,当细胞外半胱氨酸受到限制时,细胞会发生这种情况,据报道这种情况发生在人类肿瘤生长时。我们观察到在一组癌细胞系中硫代途径酶的组成型表达,而在其他细胞中,这些酶在半胱氨酸剥夺后被诱导。我们表明,组成型和诱导型的硫代途径活性都有助于细胞半胱氨酸池和氧化还原平衡。硫代途径的速率取决于细胞进行甲基化反应的能力,该反应将 S-腺苷甲硫氨酸转化为 S-腺苷同型半胱氨酸。最后,我们的结果表明,硫代途径介导的半胱氨酸合成对于促进体内肿瘤生长至关重要。