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Gohda, K.

Publications and source records attributed to Gohda, K..

2 recordsLinked to original sources

Computational elucidation of possible contributors to formation and stabilization of ATP-lid down-conformation in the N-terminal domain of Hsp90

Heat shock protein 90 (Hsp90) controls activation and maturation of various crucial client proteins through a catalytic cycle. In this catalytic cycle, closure of the lid segment from up- to down-conformation in the N-terminal domain (NTD) of Hsp90 through ATP binding is indispensable for coordinated structural changes, including interchange of dimeric Hsp90 structure between open and closed forms. However, the mechanisms underlying lid closure remain unclear. In this study, we investigate structural characteristics of the lid-down conformation in an isolated monomeric NTD structure by two types of molecular-dynamic simulation: a flopping-down simulation for a lid up-conformation using repulsive distance-restraints, and a down-conformation simulation for in-silico H1-mutants of NTD with a lid-down conformation. In the flopping-down simulation, spontaneous formation of a lid-down conformation is observed in multiple times. K98 and K102 in the lid segment are observed to interact with ATP phosphate or D40, suggesting to contribute to formation of the lid-down conformation. In the down-conformation simulation, H1 structure of the chimera H1-model, which only retains a proper down-conformation among the models for the entire simulation period, covers over the lid segment more than that of the X-ray structure. Because stability of the lid-down conformation was influenced by H1 structures, H1 segment is suggested to contribute to stabilization of the lid-down conformation. Although no direct experimental data are currently available to confirm these findings, these simulation results do not show large discrepancies with the experimental data and evidence of structural characteristics of the NTD, deduced from previous X-ray and spectroscopic studies.

biochemistry↗

Understanding of ATP-lid conformational dynamics in the N-terminal domain of Hsp90 and its mutants by use of a computational biochemistry approach

Chaperone Hsp90 regulates the activation and maturation of various protein, and is an attractive target for drug discovery. In catalytic cycle of Hsp90, ATP hydrolysis is a key event that drives structural changes, including the interchange of the dimeric Hsp90 structure between open and closed forms. For ATP hydrolysis, ATP-lid closure in the ATP-binding site from the up- to down-conformation is an indispensable co-ordinated structural change. However, the atomistic mechanism underlying lid closure remains unclear. In this study, a computational biochemistry approach was applied to wild-type apo and ATP-complex structures, and the lid-mutants A107N and T101I ATP-complex, to understand lid closure. A total of 15-s molecular dynamic simulation, including the equilibration and production phases, was conducted for every structure starting from the lid up-conformation, but no lid-closures were observed. However, a very early event, i.e., a sign, of lid closure have been captured. In the simulations of wild-type and A107N ATP-complex structures, lid segment showed conformational fluctuations, and helix-7 (H7) segment in lid segment was unwound. This conformational instability of lid segment energetically weakened its interaction with facing region, suggesting the up-to-down transition was triggered by the instability of lid segment, particularly H7 segment. The interaction energy between lid segment and facing region was ranked in the order A107N > wild-type > T101I, which was correlated with experimental results such as the orders of ATP-hydrolytic activity and rapidity of conformational changes of lid segment, measured in ATP-spiking experiments by fluorescence resonance energy transfer method (i.e., A107N > wild-type > T101I).

biochemistry↗