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Order out of disorder: Working cycle of an intrinsically unfolded chaperone

机译:秩序混乱:内在伴侣分子的工作周期

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The redox-regulated chaperone Hsp33 protects organisms against oxidative stress that leads to protein unfolding. Activation of Hsp33 is triggered by the oxidative unfolding of its own redox-sensor domain, making Hsp33 a member of a recently discovered class of chaperones that require partial unfolding for full chaperone activity. Here we address the long-standing question of how chaperones recognize client proteins. We show that Hsp33 uses its own intrinsically disordered regions to discriminate between unfolded and partially structured folding intermediates. Binding to secondary structure elements in client proteins stabilizes Hsp33's intrinsically disordered regions, and this stabilization appears to mediate Hsp33's high affinity for structured folding intermediates. Return to nonstress conditions reduces Hsp33's disulfide bonds, which then significantly destabilizes the bound client proteins and in doing so converts them into less-structured, folding-competent client proteins of ATP-dependent foldases. We propose a model in which energy-independent chaperones use internal order-to-disorder transitions to control substrate binding and release.
机译:氧化还原调节的伴侣蛋白Hsp33保护生物体免受氧化应激,导致蛋白质解折叠。 Hsp33的激活由其自身的氧化还原传感器结构域的氧化展开触发,这使得Hsp33成为最近发现的一类伴侣的成员,该伴侣需要部分展开才能完全发挥伴侣的活性。在这里,我们解决了伴侣蛋白如何识别客体蛋白这一长期存在的问题。我们显示,Hsp33使用其自身的固有无序区域来区分未折叠的和部分结构化的折叠中间体。与客户蛋白质中二级结构元素的结合稳定了Hsp33的内在无序区域,这种稳定作用似乎介导了Hsp33对结构化折叠中间体的高度亲和力。恢复到非胁迫条件会降低Hsp33的二硫键,这会大大破坏结合的客户蛋白质的稳定性,从而将它们转换为结构较弱,可折叠的ATP依赖性折叠酶客户蛋白质。我们提出了一个模型,其中独立于能量的分子伴侣使用内部有序到无序的过渡来控制底物的结合和释放。

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