铁素-NADP+还原酶的域间相互作用对于铁素和NADP的负合作性至关重要
Yoko Kimata-Ariga1, Rina Shinkoda1, Ryuya Abe1
1Department of Biological Chemistry, College of Agriculture, Graduate School of Sciences and Technology for Innovation, Yamaguchi University, Yoshida, Yamaguchi 753-8515, Japan.
Journal of biochemistry
|June 13, 2023
概括
改变ferredoxin-NADP+减少酶 (FNR) 中的域间相互作用会对其负面的合作性产生影响. 破坏相互作用抑制了这种效应,揭示了FNR全ostery中域通信的重要性.
科学领域:
- 生物化学 生物化学
- 植物生理学 植物生理学
- 酶学 是一种酶学.
背景情况:
- 铁素-NADP+还原酶 (FNR) 对于植物光合作用至关重要,催化NADP+转化为NADPH.
- 负合作性,其中NADP (H) 结合削弱了铁素 (Fd) 亲和力,是FNR的一个关键调节机制.
- 假设NADP(H) 结合信号通过FNR的域传输到Fd结合部位.
研究的目的:
- 调查跨领域相互作用在 FNR 的负面合作性中的作用.
- 阐明FNR中全信号传输的分子机制.
主要方法:
- 用局部定向的突变发生法来创建四种FNR突变,改变域间相互作用.
- 动力分析测量了Fd的Km中NADPH依赖的变化.
- Fd-亲和色谱评估了对Fd的物理结合能力.
主要成果:
- 两个突变,FNR D52C/S208C (二硫化物键) 和FNR D104N (失去的盐桥),抑制了负合作性.
- 动力和结合测定表明这些突变物中Fd亲和力发生变化.
- 这些发现强调了特定的域间相互作用的重要性.
结论:
- 域间相互作用对于在FNR中调解负面合作性至关重要.
- 涉及域间相互作用的形状变化可能是传输全性NADP (H) 结合信号的原因.
- 这项研究为FNR调节和全信号转导提供了分子洞察力.
关键词:
铁素 缩写:cyt c,cytochrome c;Fd,ferredoxin;FNR,ferredoxin-NADP+reductase 缩写:cyt c,cytochrome c;Fd,ferredoxin;FnR,ferredoxin-NADP+reductase 缩写:cyt c,cytochrome c;Fd,ferredoxin;FnR,ferredoxin-NADP+reductase 缩写:cyt c,cytochrome c;Fd,ferredoxin;FnR,ferredoxin-NADP+reductase 缩写:cyt c,cytochrome c;Fd,ferredoxin;FnR,ferredoxin-NADP+reductase 缩写:cyt c,cytochrome c;Fd,ferredoxin;Fd,ferredoxin;FnR,ferredoxin-NADP+reductase 缩写:铁素-NADP+减少酶领域间的互动相互作用.负面的合作性.蛋白质蛋白质相互作用更多相关视频
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