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古池 美彦*; Ouyang, D.*; 富永 大輝*; 松尾 龍人*; 向山 厚*; 川北 至信; 藤原 悟*; 秋山 修志*
Communications Physics (Internet), 5(1), p.75_1 - 75_12, 2022/04
被引用回数:6 パーセンタイル:61.96(Physics, Multidisciplinary)Circadian clock proteins often reveal temperature-compensatory responses that counteract temperature influences to keep their enzymatic activities constant over a physiological range of temperature. This temperature-compensating ability at the reaction level is likely crucial for circadian clock systems, to which the clock proteins are incorporated, to achieve the system-level temperature compensation of the oscillation frequency. Nevertheless, temperature compensation is yet a puzzling phenomenon, since side chains that make up the clock proteins fluctuate more frequently due to greater thermal energy at higher temperature. Here, we investigated temperature influences on the dynamics of KaiC, a temperature-compensated enzyme (ATPase) that hydrolyzes ATP into ADP in the cyanobacterial circadian clock system, using quasielastic neutron scattering. The frequency of picosecond to subnanosecond incoherent local motions in KaiC was accelerated by a factor of only 1.2 by increasing the temperature by 10C. This temperature insensitivity of the local motions was not necessarily unique to KaiC, but confirmed also for a series of temperature-sensitive mutants of KaiC and proteins other than clock-related proteins. Rather, the dynamics associated with the temperature-compensatory nature of the reaction- and system-level was found in global diffusional motions, which was suggested to regulate the temperature dependence of ATPase activity and dephosphorylation process presumably through changes in the hexamer conformation of KaiC. The spatiotemporal scale at which cross-scale causality of the temperature sensitivity is established is finite, and extends down to picosecond to subnanosecond dynamics only in a very limited part of KaiC, not in its entire part.
加藤 篤志; 近澤 佳隆; 山本 智彦; 大野 修司; 久保 重信; 坂場 弘*; 秋山 洋*; 岩崎 幹典*
Proceedings of 2013 International Congress on Advances in Nuclear Power Plants (ICAPP 2013) (USB Flash Drive), 9 Pages, 2013/04
JSFRでは鋼板コンクリート構造格納容器を採用している。ナトリウム内包機器に対する2重バウンダリ構造や再臨界回避設計の採用により、格納容器内でのナトリウム燃焼を排除しているが、福島第一原子力発電所の事故を受けて、格納容器内におけるナトリウム燃焼解析を幅広く実施し、その際の格納容器の構造健全性、バウンダリ健全性を評価した。また、格納容器への潜在的負荷を明らかにするため、水素発生シナリオ・発生量について評価した。