剩余的复合物I活动和两向的复合物II操作支持通过mtsLP在无氧中通过谷氨酸解质
Dora Ravasz1, David Bui1, Sara Nazarian1
1Department of Biochemistry, Semmelweis University, Budapest, 1094, Hungary.
Scientific reports
|January 19, 2024
概括
在无氧状态下,复合物I使用子来氧化NADH,再生NAD+用于关键的代谢途径,如谷氨酸代谢,并在氧化酸化停止时支持线粒体基质水平酸化 (mtSLP).
科学领域:
- 线粒体生理学线粒体生理学
- 细胞代谢的细胞代谢.
- 生物化学 生物化学
背景情况:
- 无氧抑制氧化酸化 (OXPHOS),导致线粒体中化合物积累减少.
- 这种积累阻碍了脱酶的活性,扰乱了细胞的能量生产.
研究的目的:
- 在急性无氧下调查线粒体功能.
- 阐明复合I和类在维持氧气缺乏期间代谢活动中的作用.
主要方法:
- 实时测量氧气度,NADH自光,线粒体膜潜力和ubiquinone减少程度.
- 在无氧期间C代谢追踪和非目标代谢物分析.
- 使用了电子转移系统的特定位点抑制剂.
主要成果:
- 综合体I利用内源性子在无氧化下氧化NADH.
- 由复合物I再生的NAD+由2氧格酸脱酶复合物减少,支持线粒体基质水平酸化 (mtSLP) 并产生糖酸盐.
- 复合II的功能是双向的,向复合I提供子,并将烟酸还原为糖酸盐.
结论:
- 对复合体I的金供应对于无氧期间氧化NADH至关重要.
- 在没有OXPHOS的情况下,这个过程维持了谷氨酸代谢和mtSLP.
- 突出了在压力条件下的线粒体中的替代代代谢策略.
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