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光致脂质双层通透性由瞬时孔形成控制。

Photolipid Bilayer Permeability is Controlled by Transient Pore Formation.

机构信息

Chair for Photonics and Optoelectronics, Nano-Institute Munich, Department of Physics, Ludwig-Maximilians-Universität (LMU), Königinstraße 10, 80539 Munich, Germany.

Department of Chemistry, Ludwig-Maximilians-Universität München, Butenandtstraße 5-13, 81377 Munich, Germany.

出版信息

Langmuir. 2020 Nov 17;36(45):13509-13515. doi: 10.1021/acs.langmuir.0c02229. Epub 2020 Nov 3.


DOI:10.1021/acs.langmuir.0c02229
PMID:33143416
Abstract

Controlling the release or uptake of (bio-) molecules and drugs from liposomes is critically important for a range of applications in bioengineering, synthetic biology, and drug delivery. In this paper, we report how the reversible photoswitching of synthetic lipid bilayer membranes made from azobenzene-containing phosphatidylcholine (-) molecules (photolipids) leads to increased membrane permeability. We show that cell-sized, giant unilamellar vesicles (GUVs) prepared from photolipids display leakage of fluorescent dyes after irradiation with UV-A and visible light. Langmuir-Blodgett and patch-clamp measurements show that the permeability is the result of transient pore formation. By comparing the -to- and -to- isomerization process, we find that this pore formation is the result of area fluctuations and a change of the area cross-section between both photolipid isomers.

摘要

控制脂质体中(生物)分子和药物的释放或摄取对于生物工程、合成生物学和药物输送等一系列应用至关重要。在本文中,我们报告了含有偶氮苯的磷脂酰胆碱(-)分子(光脂)组成的合成脂质双层膜的可逆光开关如何导致膜通透性增加。我们表明,由光脂制备的细胞大小的巨大单层囊泡(GUV)在照射 UV-A 和可见光后会泄漏荧光染料。Langmuir-Blodgett 和膜片钳测量表明,这种渗透性是瞬态孔形成的结果。通过比较-到-和-到-异构化过程,我们发现这种孔形成是由于面积波动和两种光脂异构体之间的面积横截面的变化。

相似文献

[1]
Photolipid Bilayer Permeability is Controlled by Transient Pore Formation.

Langmuir. 2020-11-3

[2]
Light-Controlled Lipid Interaction and Membrane Organization in Photolipid Bilayer Vesicles.

Langmuir. 2018-10-22

[3]
Postsynthetic Photocontrol of Giant Liposomes via Fusion-Based Photolipid Doping.

Langmuir. 2022-10-4

[4]
Light-Controlled Membrane Mechanics and Shape Transitions of Photoswitchable Lipid Vesicles.

Langmuir. 2017-4-12

[5]
Optical Membrane Control with Red Light Enabled by Red-Shifted Photolipids.

Langmuir. 2022-1-11

[6]
Photomanipulation of Minimal Synthetic Cells: Area Increase, Softening, and Interleaflet Coupling of Membrane Models Doped with Azobenzene-Lipid Photoswitches.

Adv Sci (Weinh). 2023-11

[7]
Characterization of DAG Binding to TRPC Channels by Target-Dependent Isomerization of OptoDArG.

Biomolecules. 2022-6-7

[8]
Fine-tuning of membrane permeability by reversible photoisomerization of aryl-azo derivatives of thymol embedded in lipid nanoparticles.

Colloids Surf B Biointerfaces. 2024-9

[9]
Liposome fusion and lipid exchange on ultraviolet irradiation of liposomes containing a photochromic phospholipid.

Photochem Photobiol. 1995-7

[10]
Photolipid excitation triggers depolarizing optocapacitive currents and action potentials.

bioRxiv. 2023-8-14

引用本文的文献

[1]
Transient infrared nanoscopy resolves the millisecond photoswitching dynamics of single lipid vesicles in water.

Nat Commun. 2025-7-1

[2]
Photoswitchable phospholipids for the optical control of membrane processes, protein function, and drug delivery.

Commun Mater. 2025

[3]
Photoswitchable Molecular Motor Phospholipid: Synthesis, Characterization, and Integration into Lipid Vesicles.

Langmuir. 2025-2-18

[4]
SAXS measurements of azobenzene lipid vesicles reveal buffer-dependent photoswitching and quantitative isomerisation by X-rays.

Nanophotonics. 2022-4-15

[5]
Pixelated High- Metasurfaces for in Situ Biospectroscopy and Artificial Intelligence-Enabled Classification of Lipid Membrane Photoswitching Dynamics.

ACS Nano. 2024-5-7

[6]
Current Status and Future Strategies for Advancing Functional Circuit Mapping .

J Neurosci. 2023-11-8

[7]
Photomanipulation of Minimal Synthetic Cells: Area Increase, Softening, and Interleaflet Coupling of Membrane Models Doped with Azobenzene-Lipid Photoswitches.

Adv Sci (Weinh). 2023-11

[8]
Optical control of neuronal activities with photoswitchable nanovesicles.

Nano Res. 2023-1

[9]
Structural diversity of photoswitchable sphingolipids for optodynamic control of lipid microdomains.

Biophys J. 2023-6-6

[10]
Light-Switchable Membrane Permeability in Giant Unilamellar Vesicles.

Pharmaceutics. 2022-12-12

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