膜定位肌动蛋白丝可稳定巨型单拉美米尔囊泡免受外部变形力的影响

IF 4.5 3区 生物学 Q2 CELL BIOLOGY European journal of cell biology Pub Date : 2024-06-01 DOI:10.1016/j.ejcb.2024.151428
Andreas Fink , Sunnatullo Fazliev , Tobias Abele , Joachim P. Spatz , Kerstin Göpfrich , Elisabetta Ada Cavalcanti-Adam
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引用次数: 0

摘要

肌动蛋白组织对于建立细胞极性至关重要,而细胞极性会影响细胞定向运动和分裂等过程。尽管肌动蛋白在生物体中起着关键作用,但在合成细胞中实现类似的极性仍然具有挑战性。在这项研究中,我们采用了一种自下而上的方法来研究分子挤体如何促进皮层样肌动蛋白网络的形成,以及这些网络如何根据膜的形状进行定位和组织。我们使用巨型单拉米小泡(GUVs)作为细胞膜模型,表明肌动蛋白丝可以沿膜排列形成皮层样结构。值得注意的是,这种组织结构只需使用肌动蛋白和挤压机作为最小的组成成分即可实现。我们利用表面微图案化技术研究了粘附在各种图案形状上的变形 GUV 中的肌动蛋白丝组织。我们的研究结果表明,在球形 GUV 的外围,肌动蛋白束沿着膜排列。然而,在粘附 GUV 的高弯曲区域,肌动蛋白束避免穿过垂直于粘附点的高弯曲边缘,而是平行于微图案表面排列,停留在低弯曲区域。此外,肌动蛋白束还能增加 GUV 的硬度,有效抵消 GUV 粘附到微图案时产生的强烈变形。对带有合成肌动蛋白皮层的 GUV 进行的实时变形性细胞测量证实了这一发现。通过精确操纵 GUV 的形状,我们的研究为研究肌动蛋白结构与膜之间的相互作用提供了一个最小系统。我们的研究结果为了解拥挤环境中肌动蛋白结构的空间组织,特别是与细胞大小和形状相似的 GUV 内部的肌动蛋白结构提供了见解。这项研究加深了我们对细胞大小区室中肌动蛋白网络组织和功能的理解。
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Membrane localization of actin filaments stabilizes giant unilamellar vesicles against external deforming forces

Actin organization is crucial for establishing cell polarity, which influences processes such as directed cell motility and division. Despite its critical role in living organisms, achieving similar polarity in synthetic cells remains challenging. In this study, we employ a bottom-up approach to investigate how molecular crowders facilitate the formation of cortex-like actin networks and how these networks localize and organize based on membrane shape. Using giant unilamellar vesicles (GUVs) as models for cell membranes, we show that actin filaments can arrange along the membrane to form cortex-like structures. Notably, this organization is achieved using only actin and crowders as a minimal set of components. We utilize surface micropatterning to examine actin filament organization in deformed GUVs adhered to various pattern shapes. Our findings indicate that at the periphery of spherical GUVs, actin bundles align along the membrane. However, in highly curved regions of adhered GUVs, actin bundles avoid crossing the highly curved edges perpendicular to the adhesion site and instead remain in the lower curved regions by aligning parallel to the micropatterned surface. Furthermore, the actin bundles increase the stiffness of the GUVs, effectively counteracting strong deformations when GUVs adhere to micropatterns. This finding is corroborated by real-time deformability cytometry on GUVs with synthetic actin cortices. By precisely manipulating the shape of GUVs, our study provides a minimal system to investigate the interplay between actin structures and the membrane. Our findings provide insights into the spatial organization of actin structures within crowded environments, specifically inside GUVs that resemble the size and shape of cells. This study advances our understanding of actin network organization and functionality within cell-sized compartments.

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来源期刊
European journal of cell biology
European journal of cell biology 生物-细胞生物学
CiteScore
7.30
自引率
1.50%
发文量
80
审稿时长
38 days
期刊介绍: The European Journal of Cell Biology, a journal of experimental cell investigation, publishes reviews, original articles and short communications on the structure, function and macromolecular organization of cells and cell components. Contributions focusing on cellular dynamics, motility and differentiation, particularly if related to cellular biochemistry, molecular biology, immunology, neurobiology, and developmental biology are encouraged. Manuscripts describing significant technical advances are also welcome. In addition, papers dealing with biomedical issues of general interest to cell biologists will be published. Contributions addressing cell biological problems in prokaryotes and plants are also welcome.
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