Physical Chemistry I - Biophysical Chemistry, Faculty of Chemistry and Chemical Biology, Technical University Dortmund, Otto-Hahn-Straße 4a, 44227 Dortmund, Germany.
Phys Chem Chem Phys. 2020 Feb 14;22(6):3734-3743. doi: 10.1039/c9cp06468k. Epub 2020 Feb 3.
The chaperonin system GroEL-GroES is present in all kingdoms of life and rescues proteins from improper folding and aggregation upon internal and external stress conditions, including high temperatures and pressures. Here, we set out to explore the thermo- and piezostability of GroEL, GroES and the GroEL-GroES complex in the presence of cosolvents, nucleotides and salts employing quantitative FTIR spectroscopy and small-angle X-ray scattering. Owing to its high biological relevance and lack of data, our focus was especially on the effect of pressure on the chaperonin system. The experimental results reveal that the GroEL-GroES complex is remarkably temperature stable with an unfolding temperature beyond 70 °C, which can still be slightly increased by compatible cosolutes like TMAO. Conversely, the pressure stability of GroEL and hence the GroEL-GroES complex is rather limited and much less than that of monomeric proteins. Whereas GroES is pressure stable up to ∼5 kbar, GroEl and the GroEl-GroES complex undergo minor structural changes already beyond 1 kbar, which can be attributed to a dissociation-induced conformational drift. Quite unexpectedly, no significant unfolding of GroEL is observed even up to 10 kbar, however, i.e., the subunits themselves are very pressure stable. As for the physiological relevance, the structural integrity of the chaperonin system is retained in a relatively narrow pressure range, from about 1 to 1000 bar, which is just the pressure range encountered by life on Earth.
伴侣蛋白系统 GroEL-GroES 存在于所有生命领域,可在内部和外部应激条件下(包括高温和高压)挽救错误折叠和聚集的蛋白质。在这里,我们着手探索伴侣蛋白 GroEL、GroES 和 GroEL-GroES 复合物在存在共溶剂、核苷酸和盐时的热稳定性和压稳定性,采用定量傅里叶变换红外光谱和小角 X 射线散射。由于其具有高度的生物学相关性和缺乏数据,我们的重点特别放在压力对伴侣蛋白系统的影响上。实验结果表明,GroEL-GroES 复合物具有显著的温度稳定性,解折叠温度超过 70°C,这一温度仍可通过 TMAO 等相容共溶剂略微提高。相反,GroEL 的压力稳定性,因此,GroEL-GroES 复合物的压力稳定性相当有限,远低于单体蛋白。虽然 GroES 在高达约 5 kbar 时具有压力稳定性,但 GroEl 和 GroEl-GroES 复合物在超过 1 kbar 时就会发生较小的结构变化,这可归因于解离诱导的构象漂移。令人惊讶的是,即使在 10 kbar 时也没有观察到 GroEL 的显著解折叠,也就是说,亚基本身具有非常高的压力稳定性。至于生理相关性,伴侣蛋白系统的结构完整性在相对较窄的压力范围内得以保留,约为 1 至 1000 巴,这正好是地球上生命所经历的压力范围。