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调控非平衡环境中巨型多层囊泡的多种形态动力学。

Multitude of morphological dynamics of giant multilamellar vesicles in regulated nonequilibrium environments.

机构信息

Department of Basic Sciences, Graduate School of Arts and Sciences, The University of Tokyo, 3-8-1 Komaba, Meguro-ku, Tokyo 153-8902 Japan.

出版信息

Langmuir. 2011 Aug 16;27(16):10106-12. doi: 10.1021/la2018456. Epub 2011 Jul 12.

Abstract

Lipid giant vesicles (GVs) exhibit biologically relevant morphological dynamics such as growth and division under certain conditions without any sophisticated molecular machineries employed by the current organisms. Nonequilibrium conditions are essential for the emergence of dynamic behaviors, which are normally generated by the addition of stimulating materials or by the change of some physical conditions. Therefore, an experimental method that allows flexible control of external conditions is desirable. Here we report a new and simple perfusion device for light microscopy observation that simultaneously realizes such control and tracking of individual phospholipid GVs for the long-term. We apply this device to the study of the morphological dynamics of POPC-based giant multilamellar vesicles (GMVs) under a monotonic and gradual increase of surfactant concentration; thereby we reveal the existence of multiple pathways in the slow solubilization processes, whose frequencies depend on the compositions of GMVs. This perfusion device would offer an unprecedented control of external conditions in the studies of GVs and might help us characterize the physicochemical origins of rich morphological dynamics of living cells.

摘要

脂质巨泡(GVs)在某些条件下表现出具有生物学相关性的形态动力学,例如生长和分裂,而无需当前生物体中使用任何复杂的分子机制。非平衡条件对于动态行为的出现是必不可少的,这些动态行为通常是通过添加刺激物质或改变某些物理条件来产生的。因此,需要一种能够灵活控制外部条件的实验方法。在这里,我们报告了一种新的简单灌注装置,用于光镜观察,可同时实现对单个磷脂质 GVs 的长期控制和跟踪。我们将该装置应用于在表面活性剂浓度单调且逐渐增加的情况下研究基于 POPC 的巨大多层囊泡(GMVs)的形态动力学,从而揭示了在缓慢溶解过程中存在多种途径,其频率取决于 GMVs 的组成。该灌注装置将在 GVs 的研究中提供对外部条件的前所未有的控制,并可能有助于我们描述活细胞丰富形态动力学的物理化学起源。

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