English Charles A, Sherman Woody, Meng Wenli, Gierasch Lila M
From the Departments of Biochemistry and Molecular Biology and.
Schrödinger Inc., Cambridge, Massachusetts 02142.
J Biol Chem. 2017 Sep 8;292(36):14765-14774. doi: 10.1074/jbc.M117.789313. Epub 2017 Jul 28.
Hsp70 molecular chaperones play key roles in cellular protein homeostasis by binding to exposed hydrophobic regions of incompletely folded or aggregated proteins. This crucial Hsp70 function relies on allosteric communication between two well-structured domains: an N-terminal nucleotide-binding domain (NBD) and a C-terminal substrate-binding domain (SBD), which are tethered by an interdomain linker. ATP or ADP binding to the NBD alters the substrate-binding affinity of the SBD, triggering functionally essential cycles of substrate binding and release. The interdomain linker is a well-structured participant in the interdomain interface in ATP-bound Hsp70s. By contrast, in the ADP-bound state, exemplified by the Hsp70 DnaK, the interdomain linker is flexible. Hsp70 interdomain linker sequences are highly conserved; moreover, mutations in this region compromise interdomain allostery. To better understand the role of this region in Hsp70 allostery, we used molecular dynamics simulations to explore the conformational landscape of the interdomain linker in ADP-bound DnaK and supported our simulations by strategic experimental data. We found that while the interdomain linker samples many conformations, it behaves as three relatively ordered segments connected by hinges. As a consequence, the distances and orientations between the NBD and SBD are limited. Additionally, the C-terminal region of the linker forms previously unreported, transient interactions with the SBD, and the predominant linker-docking site is available in only one allosteric state, that with high affinity for substrate. This preferential binding implicates the interdomain linker as a dynamic allosteric switch. The linker-binding site on the SBD is a potential target for small molecule modulators of the Hsp70 allosteric cycle.
热休克蛋白70(Hsp70)分子伴侣通过与未完全折叠或聚集蛋白暴露的疏水区域结合,在细胞蛋白质稳态中发挥关键作用。Hsp70的这一关键功能依赖于两个结构良好的结构域之间的变构通讯:一个N端核苷酸结合结构域(NBD)和一个C端底物结合结构域(SBD),它们由一个结构域间连接子相连。ATP或ADP与NBD结合会改变SBD的底物结合亲和力,触发底物结合和释放的功能必需循环。在结合ATP的Hsp70中,结构域间连接子是结构域间界面的一个结构良好的参与者。相比之下,在以Hsp70 DnaK为例的结合ADP的状态下,结构域间连接子是灵活的。Hsp70结构域间连接子序列高度保守;此外,该区域的突变会损害结构域间变构作用。为了更好地理解该区域在Hsp70变构中的作用,我们使用分子动力学模拟来探索结合ADP的DnaK中结构域间连接子的构象景观,并通过策略性实验数据支持我们的模拟。我们发现,虽然结构域间连接子呈现多种构象,但它表现为通过铰链连接的三个相对有序的片段。因此,NBD和SBD之间的距离和方向是有限的。此外,连接子的C端区域与SBD形成了以前未报道的瞬时相互作用,并且主要的连接子对接位点仅在一种变构状态下可用,即对底物具有高亲和力的状态。这种优先结合表明结构域间连接子是一个动态变构开关。SBD上的连接子结合位点是Hsp70变构循环小分子调节剂的潜在靶点。