Broadband Plasmonic Nanoantennas for Multi‐Color Nanoscale Dynamics in Living Cells

Author:

Sanz‐Paz Maria12,van Zanten Thomas S.13,Manzo Carlo14,Mivelle Mathieu5ORCID,Garcia‐Parajo Maria F.16

Affiliation:

1. ICFO‐Institut de Ciencies Fotoniques The Barcelona Institute for Science and Technology Barcelona 08860 Spain

2. Department of Physics University of Fribourg Chemin du Musée 3 Fribourg CH‐1700 Switzerland

3. National Centre for Biological Sciences Bangalore 560065 India

4. Facultat de Ciéncies Tecnologia i Enginyeries Universitat de Vic – Universitat Central de Catalunya C. de la Laura 13 Vic 08500 Spain

5. Sorbonne Université, CNRS Institut des NanoSciences de Paris UMR 7588 Paris 75005 France

6. ICREA Pg. Lluis Companys 23 Barcelona 08010 Spain

Abstract

AbstractRecently, the implementation of plasmonic nanoantennas has opened new possibilities to investigate the nanoscale dynamics of individual biomolecules in living cells. However, studies so far have been restricted to single molecular species as the narrow wavelength resonance of gold‐based nanostructures precludes the simultaneous interrogation of different fluorescently labeled molecules. Here, broadband aluminum‐based nanoantennas carved at the apex of near‐field probes are exploited to resolve nanoscale‐dynamic molecular interactions on living cell membranes. Through multicolor excitation, the authors simultaneously recorded fluorescence fluctuations of dual‐color labeled transmembrane receptors known to form nanoclusters. Fluorescence cross‐correlation studies revealed transient interactions between individual receptors in regions of ≈60 nm. Moreover, the high signal‐to‐background ratio provided by the antenna illumination allowed the authors to directly detect fluorescent bursts arising from the passage of individual receptors underneath the antenna. Remarkably, by reducing the illumination volume below the characteristic receptor nanocluster sizes, the molecular diffusion within nanoclusters is resolved and distinguished from nanocluster diffusion. Spatiotemporal characterization of transient interactions between molecules is crucial to understand how they communicate with each other to regulate cell function. This work demonstrates the potential of broadband photonic antennas to study multi‐molecular events and interactions in living cell membranes with unprecedented spatiotemporal resolution.

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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