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固体物体沿着管状膜系绳的输送。

Transport of solid bodies along tubular membrane tethers.

机构信息

College of Engineering, Swansea University, Bay Campus, Swansea, United Kingdom.

出版信息

PLoS One. 2019 Jan 16;14(1):e0210259. doi: 10.1371/journal.pone.0210259. eCollection 2019.

Abstract

We study the crucial role of membrane fluctuations in maintaining a narrow gap between a fluid membrane tube and an enclosed solid particle. Solvent flows can occur in this gap, hence giving rise to a finite particle mobility along the tube. While our study has relevance for how cells are able to transport large organelles or other cargo along connecting membrane tubes, known as tunneling nanotubes, our calculations are also framed so that they can be tested by a specific in vitro experiment: A tubular membrane tether can be pulled from a membrane reservoir, such as an aspirated Giant Unilamellar Vesicle (GUV), e.g. using a conjugated bead that binds to the membrane and is held in a laser trap. We compute the subsequent mobility of colloidal particles trapped in the tube, focusing on the case when the particle is large compared to the equilibrium tube radius. We predict that the particle mobility should scale as ∼ σ-2/3, with σ the membrane tension.

摘要

我们研究了膜波动在维持流体膜管与封闭固体颗粒之间狭窄间隙中的关键作用。在这个间隙中可能会发生溶剂流动,从而导致颗粒沿着管的有限移动。虽然我们的研究与细胞如何能够沿着连接膜管(称为隧道纳米管)运输大型细胞器或其他货物有关,但我们的计算也被构建为可以通过特定的体外实验进行测试:管状膜系绳可以从膜储器中拉出,例如通过吸取的巨大单层囊泡(GUV),例如使用结合到膜上并被激光阱捕获的共轭珠。我们计算了被困在管中的胶体颗粒的后续迁移率,重点关注颗粒与平衡管半径相比较大的情况。我们预测颗粒迁移率应按 ∼ σ-2/3 比例缩放,其中 σ 是膜张力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1c5f/6334941/398784686b4b/pone.0210259.g001.jpg

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