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Life at low temperatures: is disorder the driving force?

机译:低温下的生活:动因是动力吗?

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The thermodynamic characterization of various biological systems from psychrophiles points to a larger entropic contribution when compared to the corresponding mesophilic or (hyper) thermophilic counterparts, either at the level of the macromolecules (thermodynamic and kinetic stabilities) or of their function (ligand binding, catalytic activity). It is suggested here that in an environment characterized by a low heat content (enthalpy) and at temperatures that strongly slowdown molecular motions, the cold-adapted biological systems rely on a larger disorder to maintain macromolecular dynamics and function. Such pre-eminent involvement of entropy is observed in the experimental results and, from a macroscopic point of view, is also reflected for instance by the steric hindrances introduced by cis-unsaturated and branched lipids to maintain membrane fluidity, by the loose conformation of psychrophilic proteins or by the local destabilization of tRNA by dihydrouridine in psychrophilic bacteria.
机译:与相应的嗜温或(超)嗜热对应物相比,嗜冷菌对各种生物系统的热力学表征表明,在大分子水平(热力学和动力学稳定性)或其功能(配体结合,催化和催化)方面,熵贡献更大。活动)。在此建议,在以低热量(焓)为特征的环境中,并且在强烈减慢分子运动的温度下,适应寒冷的生物系统依赖较大的障碍来维持大分子动力学和功能。在实验结果中观察到了这种出色的熵参与,从宏观的角度来看,也反映了例如顺式不饱和和支链脂质为维持膜流动性而引入的空间位阻,嗜冷性的松散构象。或嗜冷细菌中二氢尿苷使tRNA局部不稳定。

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