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High-resolution Spatiotemporal Analysis of Receptor Dynamics by Single-molecule Fluorescence Microscopy
Published on: July 25, 2014
Plasmon Resonance Energy Transfer for Molecular-Scale Tracking Receptor Dimerization and Apoptosis at the Single-Cell
Yu Zhang1, Qi Li1, Xingru Fang1
1Joint Research Center for Food Derived Functional Factors and Synthetic Biology of IHM, Anhui Provincial International Science and Technology Cooperation Base for Major Metabolic Diseases and Nutritional Interventions, China Light Industry Key Laboratory of Meat Microbial Control and Utilization, School of Food and Biological Engineering, Engineering Research Center of Bio-process, Ministry of Education, School of Chemistry and Chemical Engineering, Hefei University of Technology, Hefei 230601, P. R. China.
Abstract:
Plasmon resonance energy transfer (PRET) faces critical challenges in achieving precise molecular-scale distance control and non-perturbative operation within single live-cell environments, e.g., the inability to dynamically tune the donor-acceptor distance (r) at the single molecular dipole level. To overcome these bottlenecks, we designed a non-genetic, non-fluorescent PRET nanodevice integrating a single gold nanoparticle donor (ErbB3-targeting antibody@GNP), a single molecular dipole acceptor (ErbB2-targeting aptamer@TAMRA), and a programmable nucleic acid spacer (nTA). This spacer enables precise in situ control of r (2.7 nm vs 7.2 nm) on the single-living MCF-7 cell membrane. At r ≈ 2.7 nm (PRET-ON), ErbB2-ErbB3 heterodimerization occurs, suppressing apoptosis. At r ≈ 7.2 nm (PRET-OFF), receptor dissociation activates caspase-9-mediated apoptosis via suppression of the AKT pathway suppression. This distance-tunable single molecular dipole PRET nanodevice overcomes membrane fluidity constraints, eliminates photobleaching artifacts, and provides long-term, single-cell resolution, establishing a potential universal platform for spatiotemporally controlling receptor interactions and downstream signaling.
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