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research article

High-throughput spatiotemporal monitoring of single-cell secretions via plasmonic microwell arrays

Ansaryan, Saeid  
•
Liu, Yen-Cheng  
•
Li, Xiaokang
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April 3, 2023
Nature Biomedical Engineering

Methods for the analysis of cell secretions at the single-cell level only provide semiquantitative endpoint readouts. Here we describe a microwell array for the real-time spatiotemporal monitoring of extracellular secretions from hundreds of single cells in parallel. The microwell array incorporates a gold substrate with arrays of nanometric holes functionalized with receptors for a specific analyte, and is illuminated with light spectrally overlapping with the device's spectrum of extraordinary optical transmission. Spectral shifts in surface plasmon resonance resulting from analyte-receptor bindings around a secreting cell are recorded by a camera as variations in the intensity of the transmitted light while machine-learning-assisted cell tracking eliminates the influence of cell movements. We used the microwell array to characterize the antibody-secretion profiles of hybridoma cells and of a rare subset of antibody-secreting cells sorted from human donor peripheral blood mononuclear cells. High-throughput measurements of spatiotemporal secretory profiles at the single-cell level will aid the study of the physiological mechanisms governing protein secretion.

A plasmonic microwell array incorporating a gold substrate with arrays of receptor-coated nanometric holes enables the imaging-based spatiotemporal monitoring of secreted proteins from hundreds of single cells at sub-minute resolution.

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Type
research article
DOI
10.1038/s41551-023-01017-1
Web of Science ID

WOS:000962667800002

Author(s)
Ansaryan, Saeid  
Liu, Yen-Cheng  
Li, Xiaokang
Economou, Augoustina Maria  
Eberhardt, Christiane Sigrid
Jandus, Camilla
Altug, Hatice  
Date Issued

2023-04-03

Publisher

NATURE PORTFOLIO

Published in
Nature Biomedical Engineering
Subjects

Engineering, Biomedical

•

Engineering

•

versatile technique

•

heterogeneity

•

activation

•

proteins

•

reveals

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

Available on Infoscience
May 8, 2023
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/197477
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