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工程化多价膜锚定 DNA 框架用于可逆电穿孔过程中可变膜通透性的精确分析。

Engineering of Multivalent Membrane-Anchored DNA Frameworks for Precise Profiling of Variable Membrane Permeability During Reversible Electroporation.

机构信息

Department of Chemistry, Shanghai Stomatological Hospital, State Key Lab of Molecular Engineering of Polymers, Shanghai Xuhui Central Hospital, Zhongshan-Xuhui Hospital, Shanghai Key Laboratory of Medical Epigenetics, Institutes of Biomedical Sciences, Fudan University, Shanghai, 200032, China.

Westlake Laboratory of Life Sciences and Biomedicine, School of Life Sciences, Westlake University, Hangzhou, Zhejiang, 310030, China.

出版信息

Small Methods. 2024 Jul;8(7):e2301198. doi: 10.1002/smtd.202301198. Epub 2023 Dec 28.

Abstract

Electroporation techniques have emerged as attractive tools for intracellular delivery, rendering promising prospects towards clinical therapies. Transient disruption of membrane permeability is the critical process for efficient electroporation-based cargo delivery. However, smart nanotools for precise characterization of transient membrane changes induced by strong electric pulses are extremely limited. Herein, multivalent membrane-anchored fluorescent nanoprobes (MMFNPs) that take advantages of flexible functionalization and spatial arrangement of DNA frameworks are developed for in situ evaluation of electric field-induced membrane permeability during reversible electroporation . Single-molecule fluorescence imaging techniques are adopted to precisely  verify the excellent analytical performance of the engineered MMFNPs. Benefited from tight membrane anchoring and sensitive adenosine triphosphate (ATP) profiling, varying degrees of membrane disturbances are visually exhibited under different intensities of the microsecond pulse electric field (µsPEF). Significantly, the dynamic process of membrane repair during reversible electroporation is well demonstrated via ATP fluctuations monitored by the designed MMFNPs. Furthermore, molecular dynamics (MD) simulations are performed for accurate verification of electroporation-driven dynamic cargo entry via membrane nanopores. This work provides an avenue for effectively capturing transient fluctuations of membrane permeability under external stimuli, offering valuable guidance for developing efficient and safe electroporation-driven delivery strategies for clinical diagnosis and therapeutics.

摘要

电穿孔技术已成为细胞内递药的有吸引力的工具,为临床治疗带来了广阔的前景。细胞膜通透性的瞬时破坏是高效电穿孔载药的关键过程。然而,用于精确描述强电脉冲诱导的瞬时膜变化的智能纳米工具极其有限。在此,利用 DNA 框架的灵活功能化和空间排列开发了多价膜锚定荧光纳米探针 (MMFNPs),用于可逆电穿孔过程中电场诱导的细胞膜通透性的原位评估。采用单分子荧光成像技术精确验证了所设计的 MMFNPs 的优异分析性能。得益于紧密的膜锚定和敏感的三磷酸腺苷 (ATP) 分析,在不同强度的微秒脉冲电场 (µsPEF) 下,可以直观地显示出不同程度的膜干扰。值得注意的是,通过设计的 MMFNPs 监测 ATP 波动,很好地证明了可逆电穿孔过程中膜修复的动态过程。此外,还进行了分子动力学 (MD) 模拟,以通过膜纳米孔进行电穿孔驱动的动态货物进入的精确验证。这项工作为有效捕捉外源性刺激下的细胞膜通透性瞬时波动提供了一种途径,为开发用于临床诊断和治疗的高效、安全的电穿孔驱动递药策略提供了有价值的指导。

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