Cancer Center, The First Hospital of Jilin university, Changchun, China.
Department of Otolaryngology-Head and Neck Surgery, The First Hospital of Jilin University, Changchun, China.
FASEB J. 2023 Dec;37(12):e23268. doi: 10.1096/fj.202300804RRRR.
As a non-essential amino acid, cysteine could be obtained through both exogenous uptake and endogenous de novo synthesis pathways. Research has demonstrated that restricting the uptake of cystine could result in a depletion of intracellular cysteine and glutathione, ultimately leading to an increase in intracellular reactive oxygen species (ROS) levels. However, the role of methionine in regulating intracellular ROS levels is currently unclear. Here, we want to explore the role of methionine in regulating intracellular ROS levels. We found that methionine restriction could lead to a decrease in intracellular ROS levels, while supplementation with SAM can restore these levels through flow cytometry. Mechanically, we found that the methionine-SAM axis relies on CBS when regulating intracellular ROS levels. Furthermore, we speculate and prove that the methionine-SAM-CBS axis alters the metabolism of serine, thereby reducing intracellular reductive power, therefore promoting intracellular ROS levels through changing metabolite levels and genetic methods. Finally, our study revealed that high expression of CBS in tumor cells could lead to increased intracellular ROS levels, ultimately resulting in faster proliferation rates. Together, our study confirmed that methionine plays a promoting role in the regulation of intracellular ROS levels.
半胱氨酸作为一种非必需氨基酸,可以通过外源性摄取和内源性从头合成途径获得。研究表明,限制胱氨酸的摄取会导致细胞内半胱氨酸和谷胱甘肽耗竭,最终导致细胞内活性氧(ROS)水平升高。然而,蛋氨酸在调节细胞内 ROS 水平中的作用尚不清楚。在这里,我们希望探讨蛋氨酸在调节细胞内 ROS 水平中的作用。我们发现,蛋氨酸限制可导致细胞内 ROS 水平降低,而通过流式细胞术补充 SAM 可以恢复这些水平。在机制上,我们发现蛋氨酸-SAM 轴通过 CBS 来调节细胞内 ROS 水平。此外,我们推测并证明蛋氨酸-SAM-CBS 轴通过改变代谢物水平和遗传方法改变丝氨酸代谢,从而降低细胞内还原能力,从而通过改变代谢物水平和遗传方法促进细胞内 ROS 水平。最后,我们的研究表明,肿瘤细胞中 CBS 的高表达可导致细胞内 ROS 水平升高,最终导致增殖速度加快。综上所述,我们的研究证实了蛋氨酸在调节细胞内 ROS 水平中发挥促进作用。