Thukral Lipi, Schwarze Simone, Daidone Isabella, Neuweiler Hannes
Institute of Genomics and Integrative Biology, Council of Scientific and Industrial Research, South Campus, Mathura Road, New Delhi 110020, India.
Department of Biotechnology and Biophysics, Julius Maximilians University of Würzburg, Am Hubland, 97074 Würzburg, Germany.
J Mol Biol. 2015 Sep 25;427(19):3166-76. doi: 10.1016/j.jmb.2015.08.007. Epub 2015 Aug 14.
Protein denatured states are the origin of both healthy and toxic conformational species. Denatured states of ultrafast folding proteins are of interest in mechanistic studies because they are energetically close to the kinetic bottleneck of folding. However, their transient nature makes them elusive to experiment. Here, we generated the denatured state of the helical domain BBL that is poised to fold in microseconds by a single-point mutation and combined circular dichroism spectroscopy, single-molecule fluorescence fluctuation analysis, and computer simulation to characterize its structure and dynamics. Circular dichroism showed a largely unfolded ensemble with marginal helix but significant β-sheet content. Main-chain structure and dynamics were unaffected by side-chain interactions that stabilize the native state, as revealed by site-directed mutagenesis and nanosecond loop closure kinetics probed by fluorescence correlation spectroscopy. Replica-exchange and constant-temperature molecular dynamics simulations showed a highly collapsed, hydrogen-bonded denatured state containing turn and β-sheet structure and few nucleating helices in an otherwise unfolded ensemble. An irregular β-hairpin element that connects helices in the native fold was poised to be formed. The surprising observation of β-structure in regions that form helices in the native state is reconciled by a generic low-energy pathway from the northwest quadrant of Ramachandran space to the helical basin present under folding conditions, proposed recently. Our results show that, indeed, rapid nucleation of helix emanates from β-structure formed early within a collapsed ensemble of unfolded conformers.
蛋白质变性状态是健康和有毒构象物种的起源。超快折叠蛋白的变性状态在机理研究中很受关注,因为它们在能量上接近折叠的动力学瓶颈。然而,它们的瞬态性质使得它们难以通过实验进行研究。在这里,我们通过单点突变产生了螺旋结构域BBL的变性状态,该状态有望在微秒内折叠,并结合圆二色光谱、单分子荧光涨落分析和计算机模拟来表征其结构和动力学。圆二色光谱显示出一个大部分未折叠的集合体,有少量螺旋但有显著的β-折叠含量。定点诱变和荧光相关光谱探测的纳秒级环闭合动力学表明,主链结构和动力学不受稳定天然状态的侧链相互作用的影响。副本交换和恒温分子动力学模拟显示出一种高度折叠、氢键连接的变性状态,在一个其他部分未折叠的集合体中包含转角和β-折叠结构以及少量成核螺旋。连接天然折叠中螺旋的一个不规则β-发夹元件准备形成。最近提出的一条从拉马钱德兰空间的西北象限到折叠条件下存在的螺旋区域的通用低能量途径,解释了在天然状态下形成螺旋的区域中出现β-结构这一惊人发现。我们的结果表明,确实,螺旋的快速成核源自未折叠构象的折叠集合体中早期形成的β-结构。