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Complex instability of axially compressed tubular lipid membrane with controlled spontaneous curvature

机译:可控自发曲率的轴向压缩管状脂质膜的复杂不稳定性

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Tubular lipid membranes (TLMs) are formed by an external pulling force from artificial or biological bilayer vesicles and can be subsequently stabilized by incorporating proteins or amphiphilic polymers into the lipid bilayer. The arising spontaneous curvature of the lipid sheet allows switching off the pulling force without TLM destabilization. However, here we show that during this process two different thermal fluctuation modes drastically increase their amplitudes making fluctuations of the TLM much greater than its radius. Due to the system's proximity to the critical fluctuation point, a weak axial compressive force is sufficient to destabilize the TLM. Its absolute value is shown to be much smaller than that of the pulling force required for the initial lipid nanotube formation. Induced complex instability was studied in the frame of Landau phase transition theory. The process involves two consecutive second-order phase transitions and leads to the tube deformation combining annular corrugation with completely unconventional chiral buckling.
机译:管状脂质膜(TLM)是由来自人工或生物双层囊泡的外部拉力形成的,随后可以通过将蛋白质或两亲性聚合物掺入脂质双层来使其稳定。脂质片的自发曲率允许关闭拉力而不会引起TLM不稳定。但是,这里我们表明,在此过程中,两个不同的热波动模式急剧增加了其幅度,从而使TLM的波动远大于其半径。由于系统接近临界波动点,因此弱的轴向压缩力足以使TLM不稳定。已显示其绝对值比初始脂质纳米管形成所需的拉力小得多。在Landau相变理论的框架内研究了诱发的复杂不稳定性。该过程涉及两个连续的二阶相变,并导致管变形,将环形波纹与完全非常规的手性屈曲相结合。

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