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去泛素化酶的熵稳定性提供了构象灵活性和缓慢的展开动力学,有利于在蛋白酶体上发挥作用。

Entropic stabilization of a deubiquitinase provides conformational plasticity and slow unfolding kinetics beneficial for functioning on the proteasome.

机构信息

Institute of Biological Chemistry, Academia Sinica, Taipei, 11529, Taiwan.

Institute of Biochemical Sciences, National Taiwan University, 10617, Taiwan.

出版信息

Sci Rep. 2017 Mar 24;7:45174. doi: 10.1038/srep45174.

Abstract

Human ubiquitin C-terminal hydrolyase UCH-L5 is a topologically knotted deubiquitinase that is activated upon binding to the proteasome subunit Rpn13. The length of its intrinsically disordered cross-over loop is essential for substrate recognition. Here, we showed that the catalytic domain of UCH-L5 exhibits higher equilibrium folding stability with an unfolding rate on the scale of 10 s, over four orders of magnitudes slower than its paralogs, namely UCH-L1 and -L3, which have shorter cross-over loops. NMR relaxation dynamics analysis confirmed the intrinsic disorder of the cross-over loop. Hydrogen deuterium exchange analysis further revealed a positive correlation between the length of the cross-over loop and the degree of local fluctuations, despite UCH-L5 being thermodynamically and kinetically more stable than the shorter UCHs. Considering the role of UCH-L5 in removing K48-linked ubiquitin to prevent proteasomal degradation of ubiquitinated substrates, our findings offered mechanistic insights into the evolution of UCH-L5. Compared to its paralogs, it is entropically stabilized to withstand mechanical unfolding by the proteasome while maintaining structural plasticity. It can therefore accommodate a broad range of substrate geometries at the cost of unfavourable entropic loss.

摘要

人源泛素 C 端水解酶 UCH-L5 是一种拓扑结构打结的去泛素化酶,在与蛋白酶体亚基 Rpn13 结合后被激活。其无规则交叉环的长度对于底物识别至关重要。在这里,我们发现 UCH-L5 的催化结构域表现出更高的平衡折叠稳定性,其解折叠速率在 10 秒的数量级上,比其同源物 UCH-L1 和 UCH-L3 慢四个数量级,后两者的交叉环更短。NMR 弛豫动力学分析证实了交叉环的固有无序性。氢氘交换分析进一步表明,尽管 UCH-L5 在热力学和动力学上比较短的 UCHs 更稳定,但交叉环的长度与局部波动的程度之间存在正相关关系。考虑到 UCH-L5 在去除 K48 连接的泛素以防止泛素化底物的蛋白酶体降解方面的作用,我们的发现为 UCH-L5 的进化提供了机制上的见解。与它的同源物相比,它通过蛋白酶体的机械展开而在熵方面得到稳定,同时保持结构的可塑性。因此,它可以在不牺牲不利熵损失的情况下,适应广泛的底物几何形状。

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