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Deformation Modes of Giant Unilamellar Vesicles Encapsulating Biopolymers

机译:巨型Unilamellar囊泡封装生物聚合物的变形模式

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摘要

The shapes of giant unilamellar vesicles (GUVs) enclosing polymer molecules at relatively high concentration, used as a model cytoplasm, significantly differ from those containing only small molecules. Here, we investigated the effects of the molecular weights and concentrations of polymers such as polyethylene glycol (PEG), bovine serum albumin (BSA), and DNA on the morphology of GUVs deflated by osmotic pressure. Although small PEG (MW & 1000) does not alter the mode of shape transformation even at &10% (w/w), PEG with MW & 6000 induces budding and pearling transformation at above 1% (w/w). Larger PEG frequently induced small buddings and tubulation from the membrane of mother GUVs. A similar trend was observed with BSA, indicating that the effect is irrelevant to the chemical nature of polymers. More surprisingly, long strands of DNA (&10(5) bp) enclosed in GUVs induced budding transformation at concentrations as low as 0.01-0.1% (w/w). We expect that this molecular size dependency arises mainly from the depletion volume effect. Our results showed that curving, budding, and tubulation of lipid membranes, which are ubiquitous in living cells, can result from simple cell-mimics consisting of the membrane and cytosolic macromolecules, but without specific shape-determining proteins.
机译:将聚合物分子(GUV)以相对高的浓度封闭聚合物分子的形状,用作模型细胞质,显着不同于含有小分子的细胞质。在这里,我们研究了聚乙二醇(PEG),牛血清白蛋白(BSA),牛血清白蛋白(BSA)和DNA的分子量和浓度对通过渗透压放气的形态的影响。虽然小PEG(MW& 1000)甚至没有改变形状变换模式即使在& 6000在1%(w / w)上诱导芽和珠珠转化。较大的PEG经常诱导来自母GUV的膜的小溃疡和管道。用BSA观察到类似的趋势,表明效果与聚合物的化学性质无关。更令人惊讶的是,长链的DNA(& 10(5)bp)封闭在Guvs浓度低至0.01-0.1%(w / w)的浓度下萌芽转化。我们预计该分子大小依赖性主要来自耗尽体积效应。我们的研究结果表明,在活细胞中普遍存在的脂膜的弯曲,萌芽和管道,可以是由膜和细胞溶质大分子组成的简单细胞模拟物,但没有特异的形状测定蛋白质。

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  • 来源
    《ACS Synthetic Biology》 |2018年第2期|共17页
  • 作者单位

    Chuo Univ Fac Sci &

    Engn Bunkyo Ku 1-13-27 Kasuga Tokyo 1128551 Japan;

    Chuo Univ Fac Sci &

    Engn Bunkyo Ku 1-13-27 Kasuga Tokyo 1128551 Japan;

    Chuo Univ Fac Sci &

    Engn Bunkyo Ku 1-13-27 Kasuga Tokyo 1128551 Japan;

    Chuo Univ Fac Sci &

    Engn Bunkyo Ku 1-13-27 Kasuga Tokyo 1128551 Japan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子生物学;
  • 关键词

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