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Apolar Polyisoprenoids Located in the Midplane of the Bilayer Regulate the Response of an Archaeal-Like Membrane to High Temperature and Pressure

机译:位于双层的中间平面中的非异戊二多甲肾上瓣调节拟弧形膜的响应至高温和压力

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摘要

Archaea are known to inhabit some of the most extreme environments on Earth. The ability of archaea possessing membrane bilayers to adapt to high temperature (85°C) and high pressure (1000 bar) environments is proposed to be due to the presence of apolar polyisoprenoids at the midplane of the bilayer. In this work, we study the response of this novel membrane architecture to both high temperature and high hydrostatic pressure using neutron diffraction. A mixture of two diether, phytanyl chain lipids (DoPhPC and DoPhPE) and squalane was used to model this novel architecture. Diffraction data indicate that at high temperatures a stable coexistence of fluid lamellar phases exists within the membrane and that stable coexistence of these phases is also possible at high pressure. Increasing the amount of squalane in the membrane regulates the phase separation with respect to both temperature and pressure, and also leads to an increase in the lamellar repeat spacing of both phases. The ability of squalane to regulate the ultrastructure of an archaea-like membrane at high pressure and temperature supports the hypothesis that archaea can use apolar lipids as an adaptive mechanism to extreme conditions.
机译:众所周知,古老地球居住了一些最极端的环境。建议具有膜双层以适应高温(> 85°C)和高压(> 1000巴)环境的能力是由于双层的中间板在二层处存在的恶性多异戊二烯。在这项工作中,我们使用中子衍射研究了这种新型膜架构对高温和高静液压的响应。使用两种日粮,植氢链脂质(DOPHPC和DOPHPE)和Squalane的混合物来模拟这种新颖的建筑。衍射数据表明,在高温下,在膜内存在流体层状阶段的稳定共存,并且在高压下也可以进行这些相的稳定共存。增加膜中的鳞片量调节相对于温度和压力的相分离,并且还导致两个相的层状重复间隔的增加。 Scalane在高压和温度下调节古膜状膜的超微结构的能力支持古代脂质作为极端条件的自适应机制的假设。

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