首页> 外文期刊>Journal of the American Chemical Society >Complete Budding and Asymmetric Division of Primitive Model Cells To Produce Daughter Vesicles with Different Interior and Membrane Compositions
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Complete Budding and Asymmetric Division of Primitive Model Cells To Produce Daughter Vesicles with Different Interior and Membrane Compositions

机译:原始模型细胞的完整萌芽和不对称分裂,以产生具有不同内部和膜成分的子囊泡

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摘要

Asymmetric cell division is common in biology and plays critical roles in differentiation and development. Unicellular organisms are often used as model systems for understanding the origins and consequences of asymmetry during cell division. Although basic as compared to mammalian cells, these are already quite complex. We report complete budding and asymmetric fission of very simple nonliving model cells to produce daughter vesicles that are chemically distinct in both interior and membrane compositions. Our model cells are based on giant lipid vesicles (GVs, 10—30μm; encapsulating a polyethylene glycol (PEG)/ dextran aqueous two-phase system (ATPS) as a crowded and compartmentalized cytoplasm mimic. Ternary lipid compositions were used to provide coexisting micrometer-scale liquid disordered (L_d) and liquid ordered (L_o) domains in the membranes. ATPS-containing vesicles formed buds when sucrose was added externally to provide increased osmotic pressure, such that they became not only morphologically asymmetric but also asymmetric in both their interior and their membrane compositions. Further increases in osmolality drove formation of two chemically distinct daughter vesicles, which were in some cases connected by a lipid nanotube (complete budding), and in others were not (fission). In all cases, separation occurred at the aqueous—aqueous phase boundary, such that one daughter vesicle contained the PEG-rich aqueous phase and the other contained the dextran-rich aqueous phase. PEGylated lipids localized in the L_o domain resulted in this membrane domain preferentially coating the PEG-rich bud prior to division, and subsequently the PEG-rich daughter vesicle. Varying the mole ratio of lipids resulted in excess surface area of L_o or L_d membrane domains such that, upon division, this excess portion was inherited by one of the daughter vesicles. In some cases, a second "generation" of aqueous phase separation and budding could be induced in these daughter vesicles. Asymmetric fission of a simple self-assembled model cell, with production of daughter vesicles that harbored different protein concentrations and lipid compositions, is an example of the seemingly complex behavior possible for simple molecular assemblies. These compartmentalized and asymmetrically dividing ATPS-containing GVs could serve as a test bed for investigating possible roles for spatial and organizational cues in asymmetric cell dwision and inheritance.
机译:不对称细胞分裂在生物学中很常见,并且在分化和发育中起关键作用。单细胞生物通常用作模型系统,以了解细胞分裂过程中不对称的起源和后果。尽管与哺乳动物细胞相比是基本的,但这些已经非常复杂。我们报告非常简单的无生命模型细胞的完全出芽和不对称裂变,以产生在内部和膜组成上化学上不同的子囊泡。我们的模型细胞基于巨大的脂质囊泡(GV,10-30μm;封装了聚乙二醇(PEG)/右旋糖酐水两相系统(ATPS)作为拥挤且分隔的细胞质模拟物),使用三元脂质成分提供共存的千分尺膜中存在大规模的液体无序(L_d)和液体有序(L_o)结构域,当外部添加蔗糖以增加渗透压时,含有ATPS的囊泡会形成芽,因此它们不仅在形态上不对称而且在内部均不对称重量克分子渗透浓度的进一步增加促使形成两个化学上不同的子囊泡,在某些情况下,它们通过脂质纳米管连接(完全出芽),而在其他情况下则没有(裂变)。水-水相边界,这样,一个子囊泡包含富含PEG的水相,另一个子囊包含富含葡聚糖的水相。定位在L_o结构域中的脂化脂质导致该膜结构域在分裂前优先覆盖富含PEG的芽,随后覆盖富含PEG的子囊泡。改变脂质的摩尔比会导致L_o或L_d膜结构域的表面积过大,从而在分割时,该子囊中的一个会继承该过剩的部分。在某些情况下,可以在这些子囊泡中诱导水相分离和出芽的第二“世代”。一个简单的自组装模型细胞的不对称裂变,产生带有不同蛋白质浓度和脂质组成的子囊泡,是简单分子组装可能具有看似复杂行为的一个例子。这些分区和不对称划分的包含ATPS的GV可以作为试验床,用于研究空间和组织线索在不对称细胞切除和遗传中的可能作用。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2011年第24期|p.9545-9555|共11页
  • 作者单位

    Department of Chemistry, Pennsylvania State University, University Park, Pennsylvania 16802, United States;

    Department of Chemistry, Pennsylvania State University, University Park, Pennsylvania 16802, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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  • 入库时间 2022-08-18 03:14:18

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