在Biliverdin Reductase B催化循环期间识别结构和动态变化.
Eunjeong Lee1, Matthew J McLeod2, Jasmina S Redzic1
1Department of Biochemistry and Molecular Genetics, School of Medicine, University of Colorado Denver, Aurora, CO, United States.
Frontiers in molecular biosciences
|August 30, 2023
概括
在其催化周期中,白氨酸降解酶B (BLVRB) 经历了显著的结构和动态变化. 这些全变化超出了活性部位,影响了整个酶的结构和功能.
科学领域:
- 生物化学 生物化学
- 酶学 是一种酶学.
- 结构生物学 结构生物学
背景情况:
- 比利韦丁降解酶B (BLVRB) 是一个关键的NADPH依赖酶,调节细胞的氧化还原平衡.
- 了解BLVRB的催化循环需要研究酶内部的结构和动态变化.
研究的目的:
- 为了确定BLVRB在其催化周期期间是否发生结构和动态变化.
- 确定这些变化是否局限于活性部位或影响整个酶.
主要方法:
- 进行X射线晶体学以确定apo BLVRB结构.
- 氨基酸和Cα化学转移扰动 (NMR) 来识别结构变化.
- 测量NMR放松率以评估酶动态.
主要成果:
- 与全息结构相比,apo BLVRB 结构揭示了微妙的全球变化和关键键键的丢失.
- 同酶结合诱导的全球变化比基质相互作用更为显著.
- 在 Apo BLVRB 中具有动态的 R78 循环在联合酶结合时变得有序,并在整个循环中保持这种状态.
- 在整个BLVRB中,结构和动态变化是全联的,取决于辅酶的氧化状态.
结论:
- 在整个催化周期中,BLVRB表现出显著的结构和动态变化.
- 这些变化不仅仅局限于活性部位,而且在整个酶中以全态传播.
- 酶的结构和动态是由辅酶的氧化状态调节的.
关键词:
BLVRBBBLVRBBLBLBLVRBBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBLBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBB这是NMR的NMR.艾洛斯特菌是所有的动力学 动力学 动力学降解酶可以减少.相关概念视频
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