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Mechanically tightening, untying and retying a protein trefoil knot by single-molecule force spectroscopy

机译:通过单分子力光谱机械拧紧,单分子三叶蛋白质的结

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Knotted conformation is one of the most surprising topological features found in proteins, and understanding the folding mechanism of such knotted proteins remains a challenge. Here, we used optical tweezers (OT) to investigate the mechanical unfolding and folding behavior of a knotted protein Escherichia coli tRNA (guanosine-1) methyltransferase (TrmD). We found that when stretched from its N- and C-termini, TrmD can be mechanically unfolded and stretched into a tightened trefoil knot, which is composed of ca. 17 residues. Stretching of the unfolded TrmD involved a compaction process of the trefoil knot at low forces. The unfolding pathways of the TrmD were bifurcated, involving two-state and three-state pathways. Upon relaxation, the tightened trefoil knot loosened up first, leading to the expansion of the knot, and the unfolded TrmD can then fold back to its native state efficiently. By using an engineered truncation TrmD variant, we stretched TrmD along a pulling direction to allow us to mechanically unfold TrmD and untie the trefoil knot. We found that the folding of TrmD from its unfolded polypeptide without the knot is significantly slower. The knotting is the rate-limiting step of the folding of TrmD. Our results highlighted the critical importance of the knot conformation for the folding and stability of TrmD, offering a new perspective to understand the role of the trefoil knot in the biological function of TrmD.
机译:打结构象是蛋白质中发现最令人惊讶的拓扑特征之一,并且了解这种打结蛋白的折叠机制仍然是一个挑战。在这里,我们使用光学镊子(OT)来研究打结蛋白大肠杆菌TRNA(鸟苷-1)甲基转移酶(TRMD)的机械展开和折叠行为。我们发现,当从其N-和C-Termini拉伸时,TRMD可以机械地展开并拉伸成拧紧的三轴结,其由CA组成。 17个残留物。展开的TRMD的拉伸涉及在低力下的三叶子结的压实过程。 TRMD的展开途径分叉,涉及两国和三国途径。在弛豫时,将紧固的三轴结首先松开,导致结的膨胀,然后展开的TRMD可以有效地折回其天然状态。通过使用工程截断TRMD变体,我们沿着拉动方向拉伸TRMD,使我们能够机械地展开TRMD和解剖结。我们发现,没有结的展开多肽的TRMD折叠显着较慢。结是TRMD折叠的速率限制步骤。我们的结果强调了TRMD折叠和稳定性结合构象的关键重要性,提供了一种新的视角,了解TREFOIL结在TRMD的生物学功能中的作用。

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