Crane Jennine M, Suo Yuying, Lilly Angela A, Mao Chunfeng, Hubbell Wayne L, Randall Linda L
Department of Biochemistry, University of Missouri, Columbia, MO 65211, USA.
J Mol Biol. 2006 Oct 13;363(1):63-74. doi: 10.1016/j.jmb.2006.07.021. Epub 2006 Jul 15.
Export of protein into the periplasm of Escherichia coli via the general secretory system requires that the transported polypeptides be devoid of stably folded tertiary structure. Capture of the precursor polypeptides before they fold is achieved by the promiscuous binding to the chaperone SecB. SecB delivers its ligand to export sites through its specific binding to SecA, a peripheral component of the membrane translocon. At the translocon the ligand is passed from SecB to SecA and subsequently through the SecYEG channel. We have previously used site-directed spin labeling and electron paramagnetic resonance spectroscopy to establish a docking model between SecB and SecA. Here we report use of the same strategy to map the pathway of a physiologic ligand, the unfolded form of precursor galactose-binding protein, on SecB. Our set of SecB variants each containing a single cysteine, which was used in the previous study, has been expanded to 48 residues, which cover 49% of the surface of SecB. The residues on SecB involved in contacts were identified as those that, upon addition of the unfolded polypeptide ligand, showed changes in spectral line shape consistent with restricted motion of the nitroxide. We conclude that the bound precursor makes contact with a large portion of the surface of the small chaperone. The sites on SecB that interact with the ligand are compared with the previously identified sites that interact with SecA and a model for transfer of the ligand is discussed.
通过通用分泌系统将蛋白质输出到大肠杆菌周质中,要求转运的多肽没有稳定折叠的三级结构。在折叠之前捕获前体多肽是通过与伴侣蛋白SecB的混杂结合来实现的。SecB通过其与膜转运体的外周成分SecA的特异性结合,将其配体递送到输出位点。在转运体处,配体从SecB传递到SecA,随后通过SecYEG通道。我们之前使用定点自旋标记和电子顺磁共振光谱法建立了SecB和SecA之间的对接模型。在此,我们报告使用相同的策略来绘制生理配体——前体半乳糖结合蛋白的未折叠形式在SecB上的途径。我们的SecB变体集,每个都含有一个半胱氨酸,在前一项研究中使用过,现已扩展到48个残基,覆盖了SecB表面的49%。SecB上参与接触的残基被确定为那些在添加未折叠的多肽配体后,显示出谱线形状变化与氮氧化物受限运动一致的残基。我们得出结论,结合的前体与小伴侣蛋白的大部分表面接触。将SecB上与配体相互作用的位点与先前确定的与SecA相互作用的位点进行比较,并讨论了配体转移的模型。