Owenius Rikard, Jarl Anngelica, Jonsson Bengt-Harald, Carlsson Uno, Hammarström Per
J Chem Biol. 2010 Apr 11;3(3):127-39. doi: 10.1007/s12154-010-0038-2.
The Hsp60-type chaperonin GroEL assists in the folding of the enzyme human carbonic anhydrase II (HCA II) and protects it from aggregation. This study was aimed to monitor conformational rearrangement of the substrate protein during the initial GroEL capture (in the absence of ATP) of the thermally unfolded HCA II molten-globule. Single- and double-cysteine mutants were specifically spin-labeled at a topological breakpoint in the β-sheet rich core of HCA II, where the dominating antiparallel β-sheet is broken and β-strands 6 and 7 are parallel. Electron paramagnetic resonance (EPR) was used to monitor the GroEL-induced structural changes in this region of HCA II during thermal denaturation. Both qualitative analysis of the EPR spectra and refined inter-residue distance calculations based on magnetic dipolar interaction show that the spin-labeled positions F147C and K213C are in proximity in the native state of HCA II at 20 °C (as close as ∼8 Å), and that this local structure is virtually intact in the thermally induced molten-globule state that binds to GroEL. In the absence of GroEL, the molten globule of HCA II irreversibly aggregates. In contrast, a substantial increase in spin-spin distance (up to >20 Å) was observed within minutes, upon interaction with GroEL (at 50 and 60 °C), which demonstrates a GroEL-induced conformational change in HCA II. The GroEL binding-induced disentanglement of the substrate protein core at the topological break-point is likely a key event for rearrangement of this potent aggregation initiation site, and hence, this conformational change averts HCA II misfolding.
热休克蛋白60型伴侣蛋白GroEL协助人类碳酸酐酶II(HCA II)折叠,并保护其不发生聚集。本研究旨在监测热变性的HCA II熔球态在初始GroEL捕获(无ATP)过程中底物蛋白的构象重排。单半胱氨酸和双半胱氨酸突变体在HCA II富含β折叠的核心区域的一个拓扑断点处进行特异性自旋标记,在该区域占主导的反平行β折叠被破坏,β链6和7平行。电子顺磁共振(EPR)用于监测热变性过程中GroEL诱导的HCA II该区域的结构变化。EPR谱的定性分析以及基于磁偶极相互作用的精细残基间距离计算均表明,自旋标记位点F147C和K213C在20℃的HCA II天然状态下彼此靠近(接近约8Å),并且这种局部结构在与GroEL结合的热诱导熔球态中基本保持完整。在没有GroEL的情况下,HCA II的熔球态不可逆地聚集。相反,与GroEL相互作用(在50和60℃)后几分钟内观察到自旋 - 自旋距离大幅增加(高达>20Å),这表明GroEL诱导了HCA II的构象变化。GroEL结合诱导的底物蛋白核心在拓扑断点处的解缠结可能是这个强大的聚集起始位点重排的关键事件,因此,这种构象变化避免了HCA II的错误折叠。