Hartson S D, Thulasiraman V, Huang W, Whitesell L, Matts R L
Department of Biochemistry and Molecular Biology, Oklahoma State University, Stillwater, Oklahoma 74078-3035, USA.
Biochemistry. 1999 Mar 23;38(12):3837-49. doi: 10.1021/bi983027s.
To examine the biochemical mechanism by which hsp90 exerts its essential positive function on certain signal transduction proteins, we characterized the effects of molybdate and geldanamycin on hsp90 function and structure. Molybdate inhibited hsp90-mediated p56lck biogenesis and luciferase renaturation while enforcing salt-stable interactions with these substrates. Molybdate also reduced the amount of free hsp90 present in cell lysates, inhibited hsp90's ability to bind geldanamycin, and induced resistance to proteolysis at a specific region within the C-terminal domain of hsp90. In contrast, the hsp90 inhibitor geldanamycin prevented hsp90 from assuming natural or molybdate-induced conformations that allow salt-stable interactions with substrates. When these compounds were applied sequentially, the order of addition determined the effects observed, indicating that these agents had opposing effects on hsp90. We conclude that a specific region within the C-terminal domain of hsp90 (near residue 600) determines the mode by which hsp90 interacts with substrates and that the ability of hsp90 to cycle between alternative modes of interaction is obligatory for hsp90 function.
为了研究热休克蛋白90(hsp90)对某些信号转导蛋白发挥重要正向功能的生化机制,我们对钼酸盐和格尔德霉素对hsp90功能和结构的影响进行了表征。钼酸盐抑制hsp90介导的p56lck生物合成和荧光素酶复性,同时增强与这些底物的盐稳定相互作用。钼酸盐还减少了细胞裂解物中游离hsp90的量,抑制hsp90结合格尔德霉素的能力,并在hsp90 C末端结构域的特定区域诱导对蛋白水解的抗性。相比之下,hsp90抑制剂格尔德霉素阻止hsp90呈现允许与底物进行盐稳定相互作用的天然构象或钼酸盐诱导的构象。当依次应用这些化合物时,添加顺序决定了观察到的效应,表明这些试剂对hsp90具有相反的作用。我们得出结论,hsp90 C末端结构域内的一个特定区域(靠近第600位残基)决定了hsp90与底物相互作用的方式,并且hsp功能所必需的。 90在不同相互作用模式之间循环的能力对于hsp90功能是必不可少的。