Urologic Oncology Branch, Center for Cancer Research, National Cancer Institute, National Institutes of Health, Bethesda, MD, 20892, United States.
Urology Department, Geisinger Clinic, WCR 221, Danville, PA, 17821, United States.
Sci Rep. 2018 May 3;8(1):6976. doi: 10.1038/s41598-018-25404-w.
Heat shock factor 1 (HSF1) initiates a broad transcriptional response to proteotoxic stress while also mediating a cancer-specific transcriptional program. HSF1 is thought to be regulated by molecular chaperones, including Heat Shock Protein 90 (HSP90). HSP90 is proposed to sequester HSF1 in unstressed cells, but visualization of this interaction in vivo requires protein crosslinking. In this report, we show that HSP90 binding to HSF1 depends on HSP90 conformation and is only readily visualized for the ATP-dependent, N-domain dimerized chaperone, a conformation only rarely sampled by mammalian HSP90. We have used this mutationally fixed conformation to map HSP90 binding sites on HSF1. Further, we show that ATP-competitive, N-domain targeted HSP90 inhibitors disrupt this interaction, resulting in the increased duration of HSF1 occupancy of the hsp70 promoter and significant prolongation of both the constitutive and heat-induced HSF1 transcriptional activity. While our data do not support a role for HSP90 in sequestering HSF1 monomers to suppress HSF1 transcriptional activity, our findings do identify a noncanonical role for HSP90 in providing dynamic modulation of HSF1 activity by participating in removal of HSF1 trimers from heat shock elements in DNA, thus terminating the heat shock response.
热休克因子 1 (HSF1) 启动了广泛的蛋白质毒性应激反应的转录反应,同时介导了特定的癌症转录程序。人们认为 HSF1 受到分子伴侣的调节,包括热休克蛋白 90 (HSP90)。HSP90 被认为将 HSF1 隔离在未受应激的细胞中,但在体内观察到这种相互作用需要蛋白质交联。在本报告中,我们表明 HSP90 与 HSF1 的结合取决于 HSP90 的构象,并且仅在 ATP 依赖性、N 结构域二聚化伴侣中容易观察到这种构象,这种构象很少被哺乳动物 HSP90 采样。我们已经使用这种突变固定构象来绘制 HSP90 在 HSF1 上的结合位点。此外,我们表明,ATP 竞争性、N 结构域靶向 HSP90 抑制剂会破坏这种相互作用,导致 HSF1 占据 hsp70 启动子的时间延长,以及组成型和热诱导的 HSF1 转录活性显著延长。虽然我们的数据不支持 HSP90 在隔离 HSF1 单体以抑制 HSF1 转录活性方面的作用,但我们的发现确实确定了 HSP90 在通过参与从 DNA 中的热休克元件中去除 HSF1 三聚体来提供 HSF1 活性的动态调节中的非典型作用,从而终止热休克反应。