From Population Averaging to Single Event Resolution: Evolution of Sensing Platforms for Membrane Fusion

微尺度化学 融合 费斯特共振能量转移 纳米技术 人口 脂质双层 膜生物物理学 材料科学 脂质双层融合 追踪 传感器融合 生物物理学 时间分辨率 计算机科学 化学 生物系统 电极 电化学
作者
Feng Yu,Xinyu Zhao,Zhangbao Sun,Zhangrong Lou,Sheng Zhang
出处
期刊:Sensors [Multidisciplinary Digital Publishing Institute]
卷期号:26 (5): 1669-1669
标识
DOI:10.3390/s26051669
摘要

Membrane fusion is fundamental to intracellular transport and signal transduction, with its dysregulation implicated in various diseases. Deciphering its transient, microscale dynamics requires advanced sensing technologies. This review systematically evaluates optical and electrochemical sensing platforms for in vitro studies of membrane fusion. Optical sensing platforms provide greater intuitive readout of membrane fusion events, whereas electrochemical sensing platforms enable label-free, single-event resolution. We revisit classical fluorescence resonance energy transfer (FRET) strategies for lipid and content mixing, tracing their evolution from ensemble measurements to real-time, multiparameter, single-vesicle analysis. We further examine electrochemical platforms based on nanodisc-black lipid membranes (ND-BLMs) and solid-supported lipid bilayers (SLBs), highlighting their unique capabilities in characterizing fusion pore kinetics and virus-host membrane fusion. ND-BLM-based systems are irreplaceable for probing fusion pore kinetics, owing to their sub-millisecond temporal resolution and being essentially free from ion saturation and depletion effects. Meanwhile, SLB-based electrochemical sensing platforms excel at high-throughput detection of viral membrane fusion events by virtue of their excellent compatibility and facile integration. These sensors provide powerful tools for elucidating the molecular mechanisms underlying SNARE-mediated membrane fusion and viral fusion processes. Finally, this review outlines future directions centered on the integration of multimodal sensing and the construction of physiomimetic membranes, emphasizing the critical role of cross-scale, multiparameter sensing in bridging molecular mechanisms with biological functions and advancing the diagnosis and treatment of membrane fusion-related diseases.

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