College of Pharmaceutical Sciences, Ritsumeikan University, 1-1-1 Nojihigashi, Kusatsu, Shiga, 525-8577, Japan.
Graduate School of Life Sciences, Ritsumeikan University, 1-1-1 Nojihigashi, Kusatsu, Shiga, 525-8577, Japan.
Sci Rep. 2019 Aug 27;9(1):12395. doi: 10.1038/s41598-019-48693-1.
Although organisms are exposed to various pressure and temperature conditions, information remains limited on how pressure affects biological rhythms. This study investigated how hydrostatic pressure affects the circadian clock (KaiA, KaiB, and KaiC) of cyanobacteria. While the circadian rhythm is inherently robust to temperature change, KaiC phosphorylation cycles that were accelerated from 22 h at 1 bar to 14 h at 200 bars caused the circadian-period length to decline. This decline was caused by the pressure-induced enhancement of KaiC ATPase activity and allosteric effects. Because ATPase activity was elevated in the CI and CII domains of KaiC, while ATP hydrolysis had negative activation volumes (ΔV), both domains played key roles in determining the period length of the KaiC phosphorylation cycle. The thermodynamic contraction of the structure of the active site during the transition state might have positioned catalytic residues and lytic water molecules favourably to facilitate ATP hydrolysis. Internal cavities might represent sources of compaction and structural rearrangement in the active site. Overall, the data indicate that pressure differences could alter the circadian rhythms of diverse organisms with evolved thermotolerance, as long as enzymatic reactions defining period length have a specific activation volume.
尽管生物体暴露于各种压力和温度条件下,但关于压力如何影响生物节律的信息仍然有限。本研究调查了静压如何影响蓝细菌的生物钟(KaiA、KaiB 和 KaiC)。虽然生物钟固有地对温度变化具有很强的鲁棒性,但 KaiC 磷酸化循环从 1 巴下的 22 小时加速到 200 巴下的 14 小时,导致生物钟周期长度下降。这种下降是由压力诱导的 KaiC ATP 酶活性增强和变构效应引起的。因为 KaiC 的 CI 和 CII 结构域中的 ATP 酶活性升高,而 ATP 水解具有负的激活体积(ΔV),所以这两个结构域在确定 KaiC 磷酸化循环的周期长度方面发挥了关键作用。在过渡态期间,活性位点的结构热力学收缩可能使催化残基和裂解水分子处于有利位置,以促进 ATP 水解。内部空腔可能代表活性位点中紧缩和结构重排的来源。总的来说,这些数据表明,只要定义周期长度的酶反应具有特定的激活体积,压力差异就可以改变具有进化耐热性的不同生物体的生物钟节律。