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Prying Open Single GroES Ring Complexes by Force Reveals Cooperativity across Domains

机译:用力撬开单个GroES环络合物揭示了跨域的协作性

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摘要

Understanding how the mechanical properties of a protein complex emerge from the interplay of intra- and interchain interactions is vital at both fundamental and applied levels. To investigate whether interdomain cooperativity affects protein mechanical strength, we employed single-molecule force spectroscopy to probe the mechanical stability of GroES, a homoheptamer with a domelike quaternary stucture stabilized by intersubunit interactions between the first and last β-strands of adjacent domains. A GroES variant was constructed in which each subunit of the GroES heptamer is covalently linked to adjacent subunits by tripeptide linkers and folded domains of protein L are introduced to the heptamer's termini as handle molecules. The force-distance profiles for GroES unfolding showed, for the first time that we know of, a mechanical phenotype whereby seven distinct force peaks, with alternating behavior of unfolding force and contour length (ΔLc), were observed with increasing unfolding-event number. Unfolding of (GroES)7 is initiated by breakage of the interface between domains 1 and 7 at low force, which imparts a polarity to (GroES)7 that results in two distinct mechanical phenotypes of these otherwise identical protein domains. Unfolding then proceeds by peeling domains off the domelike native structure by sequential repetition of the denaturation of mechanically weak (unfoldon 1) and strong (unfoldon 2) units. These results indicate that domain-domain interactions help to determine the overall mechanical strength and unfolding pathway of the oligomeric structure. These data reveal an unexpected richness in the mechanical behavior of this homopolyprotein, yielding a complex with greater mechanical strength and properties distinct from those that would be apparent for GroES domains in isolation.
机译:在基本和应用水平上,了解蛋白质复合物的机械性质如何从链内和链间相互作用的相互作用中显现出来都是至关重要的。为了研究域间合作性是否会影响蛋白质的机械强度,我们采用单分子力谱技术来研究GroES的机械稳定性,GroES是具有圆顶状四级结构的单庚烷,通过相邻域的第一个和最后一个β链之间的亚基相互作用而稳定下来。构建了GroES变体,其中GroES七聚体的每个亚基通过三肽接头共价连接到相邻的亚基,并将蛋白L的折叠域作为操纵分子引入七聚体的末端。 GroES展开的力-距离曲线首次显示出机械表型,其中随着展开事件数的增加,观察到七个不同的力峰,分别具有展开力和轮廓长度(ΔLc)。 (GroES)7的展开是通过低力破坏结构域1和7之间的界面而启动的,这赋予(GroES)7极性,导致这些其他相同蛋白质结构域的两种不同的机械表型。然后,通过依次重复机械弱(unfoldon 1)和强(unfoldon 2)单元的变性,将结构域从圆顶状天然结构上剥离来进行展开。这些结果表明,域-域相互作用有助于确定寡聚结构的整体机械强度和展开途径。这些数据揭示了这种同多蛋白的机械行为出乎意料的丰富,从而产生了一种具有更高机械强度和特性的复合物,其与单独的GroES结构域所表现出来的那些不同。

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