化学
人口
构象异构
氧化磷酸化
螺旋(腹足类)
活动站点
门控
蛋白质酪氨酸磷酸酶
结晶学
构象变化
酪氨酸
分子
生物物理学
立体化学
生物化学
催化作用
有机化学
人口学
社会学
生物
蜗牛
生态学
作者
E. Megan Flynn,Jeffrey Hanson,Tom Alber,Haw Yang
摘要
The Mycobacterium tuberculosis protein tyrosine phosphatase PtpB shows resistance to the oxidative conditions that prevail within an infected host macrophage, but the mechanism of this molecular adaptation is unknown. Crystal structures of PtpB revealed previously that a closed, two-helix lid covers the active site. By measuring single-molecule Förster-type resonance energy transfer to probe the dynamics of two helices that constitute the lid, we obtained direct evidence for large, spontaneous opening transitions of PtpB with the closed form of both helices favored ∼3:1. Despite similar populations of conformers, the two helices move asynchronously as demonstrated by different opening and closing rates under our experimental conditions. Assuming that lid closure excludes oxidant, the rates of opening and closing quantitatively accounted for the slow observed rate of oxidative inactivation. Increasing solvent viscosity using glycerol but not PEG8000 resulted in higher rates of oxidative inactivation due to an increase in the population of open conformers. These results establish that the rapid conformational gating of the PtpB lid constitutes a reversible physical blockade that transiently masks the active site and retards oxidative inactivation.
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