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Nonenzymatic assembly of branched polyubiquitin chains for structural and biochemical studies

机译:支链络合蛋白链的非酶组装用于结构和生化研究

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摘要

Polymeric chains of a small protein ubiquitin are involved in regulation of nearly all vital processes in eukaryotic cells. Elucidating the signaling properties of polyubiquitin requires the ability to make these chains in vitro. In recent years, chemical and chemical-biology tools have been developed that produce fully natural isopeptide-linked polyUb chains with no need for linkage-specific ubiquitin-conjugating enzymes. These methods produced unbranched chains (in which no more than one lysine per ubiquitin is conjugated to another ubiquitin). Here we report a nonenzymatic method for the assembly of fully natural isopeptide-linked branched polyubiquitin chains. This method is based on the use of mutually orthogonal removable protecting groups (e.g., Boc- and Alloc-) on lysines combined with an Ag-catalyzed condensation reaction between a C-terminal thioester on one ubiquitin and a specific ε-amine on another ubiquitin, and involves genetic incorporation of more than one Lys(Boc) at the desired linkage positions in the ubiquitin sequence. We demonstrate our method by making a fully natural branched tri-ubiquitin containing isopeptide linkages via Lys11 and Lys33, and a 15N-enriched proximal ubiquitin, which enabled monomer-specific structural and dynamical studies by NMR. Furthermore, we assayed disassembly of branched and unbranched tri-ubiquitins as well as control di-ubiquitins by the yeast proteasome-associated deubiquitinase Ubp6. Our results show that Ubp6 can recognize and disassemble a branched polyubiquitin, wherein cleavage preferences for individual linkages are retained. Our spectroscopic and functional data suggest that, at least for the chains studied here, the isopeptide linkages are effectively independent of each other. Together with our method for nonenzymatic assembly of unbranched polyubiquitin, these developments now provide tools for making fully natural polyubiquitin chains of essentially any type of linkage and length.
机译:小蛋白泛素的聚合物链参与了真核细胞几乎所有重要过程的调控。阐明多聚泛素的信号传导特性需要能够在体外制备这些链。近年来,已经开发了化学和化学生物学工具,该工具可产生完全天然的异肽连接的polyUb链,而无需连接特异性的泛素结合酶。这些方法产生了无分支链(其中每个泛素不超过一个赖氨酸与另一泛素缀合)。在这里,我们报告了一种非酶方法,用于组装完全天然的异肽连接的分支多聚泛素链。该方法是基于使用赖氨酸上相互正交的可移动保护基团(例如Boc-和Alloc-),以及在一个泛素上的C端硫酯与另一泛素上的特定ε-胺之间的Ag催化缩合反应,并涉及在遍在蛋白序列中所需的连接位置上不止一个Lys(Boc)的遗传掺入。我们通过制作一个完全天然的分支三遍在蛋白,该蛋白通过Lys11和Lys33以及一个富含 15 N的近端遍在蛋白来制备包含异肽键的完全天然的支链遍在蛋白,从而能够通过NMR进行单体特异性的结构和动力学研究。此外,我们通过酵母蛋白酶体相关的去泛素酶Ubp6分析了支链和直链三泛素以及对照双泛素的拆卸。我们的结果表明,Ubp6可以识别和分解支链多聚泛素,其中保留了对单个连接的切割偏好。我们的光谱和功能数据表明,至少对于此处研究的链而言,异肽键有效地彼此独立。与我们用于非酶促非支链多聚遍在蛋白组装的方法一起,这些进展现在提供了用于制备具有基本上任何类型的键合和长度的完全天然的多聚遍在蛋白链的工具。

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