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Ice-nucleating bacteria control the order and dynamics of interfacial water

机译:冰核细菌控制界面水的顺序和动力学

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摘要

Ice-nucleating organisms play important roles in the environment. With their ability to induce ice formation at temperatures just below the ice melting point, bacteria such as Pseudomonas syringae attack plants through frost damage using specialized ice-nucleating proteins. Besides the impact on agriculture and microbial ecology, airborne P. syringae can affect atmospheric glaciation processes, with consequences for cloud evolution, precipitation, and climate. Biogenic ice nucleation is also relevant for artificial snow production and for biomimetic materials for controlled interfacial freezing. We use interface-specific sum frequency generation (SFG) spectroscopy to show that hydrogen bonding at the water-bacteria contact imposes structural ordering on the adjacent water network. Experimental SFG data and molecular dynamics simulations demonstrate that ice-active sites within P. syringae feature unique hydrophilic-hydrophobic patterns to enhance ice nucleation. The freezing transition is further facilitated by the highly effective removal of latent heat from the nucleation site, as apparent from time-resolved SFG spectroscopy.
机译:冰核生物在环境中起着重要作用。丁香假单胞菌等细菌具有在低于冰熔点的温度下诱导冰形成的能力,因此会使用专门的冰核蛋白通过霜冻破坏来侵袭植物。除对农业和微生物生态的影响外,空袭丁香假单胞菌还会影响大气的冰川形成过程,进而影响云的演化,降水和气候。生物成冰的成核作用还与人工造雪和控制界面冻结的仿生材料有关。我们使用特定于界面的总和频率生成(SFG)光谱来显示水细菌接触处的氢键将相邻水网络的结构有序化。 SFG实验数据和分子动力学模拟表明,丁香假单胞菌中的冰活性位点具有独特的亲水-疏水模式,可增强冰的成核作用。从时间分辨SFG光谱中可以明显看出,从成核位置高效去除潜热进一步促进了冷冻转变。

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