Gordon C L, Sather S K, Casjens S, King J
Department of Biology, Massachusetts Institute of Technology, Cambridge 02139.
J Biol Chem. 1994 Nov 11;269(45):27941-51.
The in vivo conformational substrates of the GroE chaperonins have been difficult to identify, in part because of limited information on in vivo polypeptide chain folding pathways. Temperature-sensitive folding (tsf) mutants have been characterized for the coat protein and tailspike protein of phage P22. These mutations block intracellular folding at restrictive temperature by increasing the lability of folding intermediates without impairing the stability or function of the native state. Overexpression of GroEL/ES suppressed the defects of tsf mutants at 17 sites in the coat protein, by improving folding efficiency rather than assembly efficiency or protein stability. Immunoprecipitation experiments demonstrated that GroEL interacted transiently with newly synthesized wild-type coat protein and that this interaction was prolonged by the tsf mutations. Folding defects of the tailspike polypeptide chains were not suppressed. A fraction of the tsf mutant tailspike chains bound to GroEL but were inefficiently discharged. The results suggest that 1) thermolabile folding intermediates are natural substrates of GroEL/ES; 2) although GroEL may bind such intermediates for many proteins, the chaperoning function is limited to a subset of substrate proteins; and 3) a key reason for the heat-shock response may be to stabilize thermolabile folding intermediates at elevated temperatures.
GroE伴侣蛋白在体内的构象底物一直难以确定,部分原因是关于体内多肽链折叠途径的信息有限。已对噬菌体P22的外壳蛋白和尾刺蛋白的温度敏感折叠(tsf)突变体进行了表征。这些突变通过增加折叠中间体的不稳定性来阻止在限制温度下的细胞内折叠,而不会损害天然状态的稳定性或功能。GroEL/ES的过表达通过提高折叠效率而非组装效率或蛋白质稳定性,抑制了外壳蛋白中17个位点的tsf突变体的缺陷。免疫沉淀实验表明,GroEL与新合成的野生型外壳蛋白短暂相互作用,并且这种相互作用因tsf突变而延长。尾刺多肽链的折叠缺陷未得到抑制。一部分tsf突变体尾刺链与GroEL结合,但释放效率低下。结果表明:1)热不稳定折叠中间体是GroEL/ES的天然底物;2)尽管GroEL可能与许多蛋白质的此类中间体结合,但其伴侣功能仅限于底物蛋白的一个子集;3)热休克反应的一个关键原因可能是在高温下稳定热不稳定折叠中间体。