Flynn G C, Beckers C J, Baase W A, Dahlquist F W
Institute of Molecular Biology, University of Oregon, Eugene 97403.
Proc Natl Acad Sci U S A. 1993 Nov 15;90(22):10826-30. doi: 10.1073/pnas.90.22.10826.
We have studied the assembly of a large heterodimeric protein, bacterial luciferase, by mixing purified subunits expressed separately in bacteria. The individual subunits alpha and beta contain much (66% and 50%, respectively) of the alpha-helix content of the native heterodimer as measured by circular dichroism, yet the alpha subunit lacks observable tertiary structure as measured by NMR. These results are consistent with the alpha subunit existing in a molten globule or collapsed form prior to assembly. The molecular chaperone GroEL binds reversibly to both subunits prior to assembly. Since these observations were obtained under physiological conditions, we propose that the molten globule exists as a stable form during folding or assembly in the cell. Either the molten globule form of the subunits is an authentic folding intermediate or it is in rapid equilibrium with one. GroEL may function by facilitating assembly through stabilization of these incompletely folded subunits.
我们通过混合在细菌中分别表达的纯化亚基,研究了一种大型异源二聚体蛋白——细菌荧光素酶的组装过程。通过圆二色性测量,单个亚基α和β分别含有天然异源二聚体α-螺旋含量的大部分(分别为66%和50%),然而,通过核磁共振测量,α亚基缺乏可观察到的三级结构。这些结果与α亚基在组装前以熔球态或折叠态存在一致。分子伴侣GroEL在组装前与两个亚基都可逆结合。由于这些观察结果是在生理条件下获得的,我们提出熔球态在细胞内折叠或组装过程中以稳定形式存在。亚基的熔球态形式要么是真实的折叠中间体,要么与其中一种处于快速平衡状态。GroEL可能通过稳定这些未完全折叠的亚基来促进组装,从而发挥作用。