微流控
荧光
扫描电镜
红细胞
膜
纳米技术
时间分辨率
跟踪(教育)
分辨率(逻辑)
高分辨率
荧光寿命成像显微镜
超分辨率
生物物理学
化学
材料科学
光学
物理
计算机科学
生物
生物化学
遥感
图像(数学)
地质学
人工智能
教育学
心理学
作者
Zhiwei Ye,Wei Yang,Ying Zheng,Shujing Wang,Xiaodong Zhang,Haibo Yu,Shuangshuang Li,Chunxiong Luo,Xiaojun Peng,Yi Xiao
标识
DOI:10.1002/anie.202211540
摘要
Living erythrocyte (red blood cell, RBC) membranes present rich ultrastructural and dynamic details, which require synchronous super-resolution imaging and single-molecule tracking to be revealed. Yet, it poses a serious challenge to achieve these dual functions in a single probe, due to the rigid and conflicting photophysical demands of the different techniques. Herein, we rationally developed a far-red boron dipyrromethene membrane probe with blinking capability and persistent single-molecule emission, and constructed a microfluidic platform for noninvasive trapping and long-term imaging of RBCs. By combining them, multi-dimensional super-resolution reconstructions and single-molecule tracking were achieved at the molecular scale on living human RBC membranes in a high-throughput manner. Our integrated system defines a quantitative method for analyzing RBC membranes under physiological and pathological conditions, improving precision and revealing new perspectives for future disease diagnostics.
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