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Untangling the folding mechanism of the 5-knotted protein UCH-L3

机译:解开5结蛋白UCH-L3的折叠机制

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Proteins possessing deeply embedded topological knots in their structure add a stimulating new challenge to the already complex protein-folding problem. The most complicated knotted topology observed to date belongs to the human enzyme ubiquitin C-terminal hydrolase UCH-L3, which is an integral part of the ubiquitin-proteasome system. The structure of UCH-L3 contains five distinct crossings of its polypeptide chain, and it adopts a 5(2)-knotted topology, making it a fascinating target for folding studies. Here, we provide the first in depth characterization of the stability and folding of UCH-L3. We show that the protein can unfold and refold reversibly in vitro without the assistance of molecular chaperones, demonstrating that all the information necessary for the protein to find its knotted native structure is encoded in the amino acid sequence, just as with any other globular protein, and that the protein does not enter into any deep kinetic traps. Under equilibrium conditions, the unfolding of UCH-L3 appears to be two-state, however, multiphasic folding and unfolding kinetics are observed and the data are consistent with a folding pathway in which two hyperfluorescent intermediates are formed. In addition, a very slow phase in the folding kinetics is shown to be limited by proline-isomerization events. Overall, the data suggest that a knotted topology, even in its most complex form, does not necessarily limit folding in vitro, however, it does seem to require a complex folding mechanism which includes the formation of several distinct intermediate species.
机译:在其结构中具有深深嵌入的拓扑结的蛋白质为已经很复杂的蛋白质折叠问题增加了刺激性的新挑战。迄今为止观察到的最复杂的打结拓扑结构属于人酶泛素C末端水解酶UCH-L3,它是泛素-蛋白酶体系统的组成部分。 UCH-L3的结构包含五个不同的多肽链交叉点,并采用5(2)打结的拓扑结构,使其成为折叠研究的引人入胜的目标。在这里,我们提供了UCH-L3稳定性和折叠性的首次深度表征。我们证明了这种蛋白质可以在没有分子伴侣的帮助下在体外展开和可逆地折叠,这表明该蛋白质找到其打结的天然结构所必需的所有信息都像其他任何球状蛋白质一样,都在氨基酸序列中进行了编码,并且该蛋白质不会进入任何深层动力学陷阱。在平衡条件下,UCH-L3的展开似乎是两个状态,但是,观察到多相折叠和展开动力学,数据与其中形成两个超荧光中间体的折叠路径一致。另外,显示折叠动力学中非常缓慢的相受到脯氨酸异构化事件的限制。总体而言,数据表明,即使是最复杂的形式,打结的拓扑结构也不一定限制体外折叠,但是,它似乎确实需要复杂的折叠机制,其中包括几个不同的中间物种的形成。

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