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首页> 外文期刊>Science Advances >Entropic effects enable life at extreme temperatures
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Entropic effects enable life at extreme temperatures

机译:熵效应可在极端温度下维持生命

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摘要

Maintaining membrane integrity is a challenge at extreme temperatures. Biochemical synthesis of membrane-spanning lipids is one adaptation that organisms such as thermophilic archaea have evolved to meet this challenge and preserve vital cellular function at high temperatures. The molecular-level details of how these tethered lipids affect membrane dynamics and function, however, remain unclear. Using synthetic monolayer-forming lipids with transmembrane tethers, here, we reveal that lipid tethering makes membrane permeation an entropically controlled process that helps to limit membrane leakage at elevated temperatures relative to bilayer-forming lipid membranes. All-atom molecular dynamics simulations support a view that permeation through membranes made of tethered lipids reduces the torsional entropy of the lipids and leads to tighter lipid packing, providing a molecular interpretation for the increased transition-state entropy of leakage.
机译:在极端温度下,保持膜的完整性是一项挑战。跨膜脂质的生物化学合成是一种适应性变化,例如嗜热古细菌等生物已经进化出可以应对这一挑战并在高温下保持重要的细胞功能。这些分子脂如何影响膜动力学和功能的分子水平细节仍然不清楚。在这里,使用合成的单层形成脂质与跨膜系链,我们揭示了脂质束缚使膜渗透成为熵控制的过程,该过程相对于形成双层的脂质膜,有助于限制高温下的膜渗漏。全原子分子动力学模拟支持这样一种观点,即透过由束缚脂质制成的膜的渗透减少了脂质的扭转熵并导致了更紧密的脂质堆积,从而为泄漏的增加的过渡态熵提供了分子解释。

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