Molecular Dynamics Mappings of the CCT/TRiC Complex-Mediated Protein Folding Cycle Using Diffracted X-ray Tracking

被引:2
作者
Araki, Kazutaka [1 ]
Watanabe-Nakayama, Takahiro [2 ]
Sasaki, Daisuke [3 ]
Sasaki, Yuji C. [3 ]
Mio, Kazuhiro [1 ]
Gianni, Stefano
机构
[1] Natl Inst Adv Ind Sci & Technol, AIST UTokyo Adv Operando Measurement Technol Open, 6-2-3 Kashiwanoha, Chiba 2770882, Japan
[2] Kanazawa Univ, WPI Nano Life Sci Inst WPI NanoLSI, Kakuma Machi, Kanazawa 9201192, Japan
[3] Univ Tokyo, Grad Sch Frontier Sci, 5-1-5 Kashiwanoha, Chiba 2778561, Japan
关键词
chaperonin; single molecular dynamics; diffracted X-ray tracking; INDUCED ALLOSTERIC TRANSITIONS; GROUP-II CHAPERONIN; EUKARYOTIC CHAPERONIN; CYTOPLASMIC CHAPERONIN; DATA-BANK; CCT; HYDROLYSIS; MECHANISM; TRIC/CCT; ACTIN;
D O I
10.3390/ijms241914850
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The CCT/TRiC complex is a type II chaperonin that undergoes ATP-driven conformational changes during its functional cycle. Structural studies have provided valuable insights into the mechanism of this process, but real-time dynamics analyses of mammalian type II chaperonins are still scarce. We used diffracted X-ray tracking (DXT) to investigate the intramolecular dynamics of the CCT complex. We focused on three surface-exposed loop regions of the CCT1 subunit: the loop regions of the equatorial domain (E domain), the E and intermediate domain (I domain) juncture near the ATP-binding region, and the apical domain (A domain). Our results showed that the CCT1 subunit predominantly displayed rotational motion, with larger mean square displacement (MSD) values for twist (chi) angles compared with tilt (theta) angles. Nucleotide binding had a significant impact on the dynamics. In the absence of nucleotides, the region between the E and I domain juncture could act as a pivotal axis, allowing for greater motion of the E domain and A domain. In the presence of nucleotides, the nucleotides could wedge into the ATP-binding region, weakening the role of the region between the E and I domain juncture as the rotational axis and causing the CCT complex to adopt a more compact structure. This led to less expanded MSD curves for the E domain and A domain compared with nucleotide-absent conditions. This change may help to stabilize the functional conformation during substrate binding. This study is the first to use DXT to probe the real-time molecular dynamics of mammalian type II chaperonins at the millisecond level. Our findings provide new insights into the complex dynamics of chaperonins and their role in the functional folding cycle.
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页数:15
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