Wortmann Philipp, Götz Markus, Hugel Thorsten
Institute of Physical Chemistry, University of Freiburg, Freiburg, Germany.
Institute of Physical Chemistry, University of Freiburg, Freiburg, Germany.
Biophys J. 2017 Oct 17;113(8):1711-1718. doi: 10.1016/j.bpj.2017.08.032.
The function of the molecular chaperone Hsp90 depends on large conformational changes, the rearrangement of local motifs, and the binding and hydrolysis of ATP. The size and complexity of the Hsp90 system impedes the detailed investigation of their interplay using standard methods. To overcome this limitation, we developed a three-color single-molecule FRET assay to study the interaction of Hsp90 with a fluorescently labeled reporter nucleotide in detail. It allows us to directly observe the cooperativity between the two nucleotide binding pockets in the protein dimer. Furthermore, our approach disentangles the protein conformation and the nucleotide binding state of Hsp90 and extracts the kinetics of the state transitions. Thereby, we can identify the kinetic causes mediating the cooperativity. We find that the presence of the first nucleotide prolongs the binding of the second nucleotide to Hsp90. In addition, we observe changes in the kinetics for both the open and the closed conformation of Hsp90 in dependence on the number of occupied nucleotide binding sites. Our analysis also reveals how the co-chaperone Aha1, known to accelerate Hsp90's ATPase activity, affects those transitions in a nucleotide-dependent and independent manner, thereby adding another layer of regulation to Hsp90.
分子伴侣Hsp90的功能取决于大规模的构象变化、局部基序的重排以及ATP的结合与水解。Hsp90系统的规模和复杂性阻碍了使用标准方法对其相互作用进行详细研究。为克服这一限制,我们开发了一种三色单分子荧光共振能量转移(FRET)测定法,以详细研究Hsp90与荧光标记的报告核苷酸之间的相互作用。这使我们能够直接观察蛋白质二聚体中两个核苷酸结合口袋之间的协同作用。此外,我们的方法能够区分Hsp90的蛋白质构象和核苷酸结合状态,并提取状态转变的动力学。由此,我们可以确定介导协同作用的动力学原因。我们发现,第一个核苷酸的存在会延长第二个核苷酸与Hsp90的结合时间。此外,我们观察到Hsp90的开放和关闭构象的动力学变化取决于占据的核苷酸结合位点的数量。我们的分析还揭示了已知能加速Hsp90的ATP酶活性的共伴侣Aha1如何以核苷酸依赖性和非依赖性方式影响这些转变,从而为Hsp90增加了另一层调控。