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本文引用的文献

1
Giant vesicles in electric fields.电场中的巨型囊泡
Soft Matter. 2007 Jun 19;3(7):817-827. doi: 10.1039/b703580b.
2
Studies on intracellular delivery of carboxyl-coated CdTe quantum dots mediated by fusogenic liposomes.关于融合脂质体介导的羧基包被碲化镉量子点细胞内递送的研究。
J Mater Chem B. 2013 Sep 14;1(34):4297-4305. doi: 10.1039/c3tb20245c. Epub 2013 Jul 16.
3
The 2018 biomembrane curvature and remodeling roadmap.2018年生物膜曲率与重塑路线图。
J Phys D Appl Phys. 2018 Aug;51(34). doi: 10.1088/1361-6463/aacb98. Epub 2018 Jul 20.
4
Area Increase and Budding in Giant Vesicles Triggered by Light: Behind the Scene.光触发的巨型囊泡中的面积增加与出芽:幕后机制
Adv Sci (Weinh). 2018 Jun 5;5(8):1800432. doi: 10.1002/advs.201800432. eCollection 2018 Aug.
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Charged giant unilamellar vesicles prepared by electroformation exhibit nanotubes and transbilayer lipid asymmetry.电形成法制备的荷电巨型单室囊泡表现出纳米管和跨双层脂质不对称性。
Sci Rep. 2018 Aug 7;8(1):11838. doi: 10.1038/s41598-018-30286-z.
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The glycolipid GM1 reshapes asymmetric biomembranes and giant vesicles by curvature generation.糖脂 GM1 通过产生曲率重塑不对称生物膜和巨大囊泡。
Proc Natl Acad Sci U S A. 2018 May 29;115(22):5756-5761. doi: 10.1073/pnas.1722320115. Epub 2018 May 14.
7
Membrane Nanotubes Increase the Robustness of Giant Vesicles.膜纳米管增强了巨型囊泡的稳定性。
ACS Nano. 2018 May 22;12(5):4478-4485. doi: 10.1021/acsnano.8b00640. Epub 2018 Apr 16.
8
Remotely controlled fusion of selected vesicles and living cells: a key issue review.选定囊泡和活细胞的远程控制融合:关键问题综述。
Rep Prog Phys. 2018 Mar;81(3):032602. doi: 10.1088/1361-6633/aa9966.
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Membrane tension increases fusion efficiency of model membranes in the presence of SNAREs.在 SNARE 的存在下,膜张力增加模型膜的融合效率。
Sci Rep. 2017 Sep 21;7(1):12070. doi: 10.1038/s41598-017-12348-w.
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SNARE-Mediated Single-Vesicle Fusion Events with Supported and Freestanding Lipid Membranes.SNARE介导的与支撑脂质膜和独立脂质膜的单囊泡融合事件。
Biophys J. 2017 Jun 6;112(11):2348-2356. doi: 10.1016/j.bpj.2017.04.032.

高效无蛋白膜融合:巨囊泡研究。

Highly Efficient Protein-free Membrane Fusion: A Giant Vesicle Study.

机构信息

Departamento de Biofísica, Universidade Federal de São Paulo, São Paulo, Brazil; Department of Theory and Bio-Systems, Max Planck Institute of Colloids and Interfaces, Potsdam, Germany.

Department of Theory and Bio-Systems, Max Planck Institute of Colloids and Interfaces, Potsdam, Germany.

出版信息

Biophys J. 2019 Jan 8;116(1):79-91. doi: 10.1016/j.bpj.2018.11.3128. Epub 2018 Dec 1.

DOI:10.1016/j.bpj.2018.11.3128
PMID:30579564
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6342729/
Abstract

Membrane fusion is a ubiquitous process in biology and is a prerequisite for many intracellular delivery protocols relying on the use of liposomes as drug carriers. Here, we investigate in detail the process of membrane fusion and the role of opposite charges in a protein-free lipid system based on cationic liposomes (LUVs, large unilamellar vesicles) and anionic giant unilamellar vesicles (GUVs) composed of different palmitoyloleoylphosphatidylcholine (POPC)/palmitoyloleoylphosphatidylglycerol (POPG) molar ratios. By using a set of optical-microscopy- and microfluidics-based methods, we show that liposomes strongly dock to GUVs of pure POPC or low POPG fraction (up to 10 mol%) in a process mainly associated with hemifusion and membrane tension increase, commonly leading to GUV rupture. On the other hand, docked LUVs quickly and very efficiently fuse with negative GUVs of POPG fractions at or above 20 mol%, resulting in dramatic GUV area increase in a charge-dependent manner; the vesicle area increase is deduced from GUV electrodeformation. Importantly, both hemifusion and full fusion are leakage-free. Fusion efficiency is quantified by the lipid transfer from liposomes to GUVs using fluorescence resonance energy transfer (FRET), which leads to consistent results when compared to fluorescence-lifetime-based FRET. We develop an approach to deduce the final composition of single GUVs after fusion based on the FRET efficiency. The results suggest that fusion is driven by membrane charge and appears to proceed up to charge neutralization of the acceptor GUV.

摘要

膜融合是生物学中普遍存在的过程,是许多依赖于使用脂质体作为药物载体的细胞内递药方案的前提。在这里,我们详细研究了基于阳离子脂质体(LUVs,大单室脂质体)和阴离子巨单室脂质体(GUVs)的无蛋白脂质系统中的膜融合过程和相反电荷的作用,这些 GUVs 由不同的棕榈酰油酰基磷脂酰胆碱(POPC)/棕榈酰油酰基磷脂酰甘油(POPG)摩尔比组成。通过使用一组基于光学显微镜和微流控的方法,我们表明脂质体强烈地与纯 POPC 或低 POPG 分数(高达 10 mol%)的 GUV 对接,这一过程主要与半融合和膜张力增加有关,通常导致 GUV 破裂。另一方面,与负电 GUV 的对接 LUVs 在 POPG 分数为 20 mol%或更高时,迅速且非常有效地融合,导致 GUV 面积以电荷依赖性的方式急剧增加;通过 GUV 电极变形推断出囊泡面积的增加。重要的是,半融合和完全融合都是无泄漏的。通过荧光共振能量转移(FRET)从脂质体向 GUV 转移脂质来定量融合效率,与基于荧光寿命的 FRET 相比,得到了一致的结果。我们开发了一种方法,基于 FRET 效率来推断融合后单个 GUV 的最终组成。结果表明,融合是由膜电荷驱动的,并且似乎可以进行到接受 GUV 的电荷中和。