巨细胞中的硫代谢反应通过创建负反循环来限制过度的炎症反应
Haruna Takeda1, Shohei Murakami1, Zun Liu1
1Department of Gene Expression Regulation, Institute of Development, Aging and Cancer, Tohoku University, Sendai, 980-8575, Japan.
Redox biology
|August 3, 2023
概括
巨细胞利用囊代谢来控制炎症. 通过xCT载体增加的囊摄取导致超硫化物产生,这解决了过度的炎症反应,突出了硫代谢.
科学领域:
- 免疫学 免疫学 免疫学
- 代谢学 代谢学 代谢学
- 细胞生物学 细胞生物学
背景情况:
- 巨细胞的炎症反应在疾病发病过程中至关重要.
- 代谢变化,特别是在氨基酸代谢中,调节巨细胞炎症表型.
研究的目的:
- 研究调节巨细胞炎症反应的新型代谢途径.
- 探索囊代谢在调节炎症中的作用.
主要方法:
- 用脂多糖 (LPS) 刺激的小鼠腹巨细胞的代谢分析.
- 在Slc7a11淘汰赛 (xCT-KO) 巨细胞中评估炎症基因表达.
- 对硫代谢物和超硫化物水平的分析.
- 超硫化物供体 (NAC-S2) 对炎症基因表达的作用.
主要成果:
- 经过LPS刺激,氨酸和相关代谢物增加,这表明氨酸需求增加.
- 在炎症期间,Slc7a11 (xCT) 的上调有助于囊的供应.
- xCT-KO巨体表现出长时间的促炎基因上调,类似于缺乏囊的野生型巨体.
- 激活的巨细胞产生超硫化物,这些超硫化物在xCT-KO细胞中被减少.
- 超硫化物供体 (NAC-S2) 在xCT-KO巨细胞中减弱了促炎性基因表达.
结论:
- 激活的巨细胞通过xCT增加囊的吸收,从而产生超硫化物.
- 超硫化物在负反循环中起作用,以限制过度炎症.
- 硫代谢在微调调节巨细胞炎症反应中起着至关重要的作用.
关键词:
半氨酸 (cysteine) 是一种氨酸.炎症 炎症是一种炎症.在LPS中使用LPS.巨细胞是一个巨细胞.超硫化物是一种超硫化物.xCTCTxCTxCTxCTxCTxCTxCTxCTxCTxCTxCT更多相关视频
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