Protein nanobarcodes enable single-step multiplexed fluorescence imaging.

Multiplexed cellular imaging typically relies on the sequential application of detection probes, as antibodies or DNA barcodes, which is complex and time-consuming. To address this, we developed here protein nanobarcodes, composed of combinations of epitopes recognized by specific sets of nanobodies...

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Published in:PLoS Biology
Main Authors: Daniëlle de Jong-Bolm, Mohsen Sadeghi, Cristian A Bogaciu, Guobin Bao, Gabriele Klaehn, Merle Hoff, Lucas Mittelmeier, F Buket Basmanav, Felipe Opazo, Frank Noé, Silvio O Rizzoli
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2023-12-01
Online Access:https://journals.plos.org/plosbiology/article/file?id=10.1371/journal.pbio.3002427&type=printable
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author Daniëlle de Jong-Bolm
Mohsen Sadeghi
Cristian A Bogaciu
Guobin Bao
Gabriele Klaehn
Merle Hoff
Lucas Mittelmeier
F Buket Basmanav
Felipe Opazo
Frank Noé
Silvio O Rizzoli
author_facet Daniëlle de Jong-Bolm
Mohsen Sadeghi
Cristian A Bogaciu
Guobin Bao
Gabriele Klaehn
Merle Hoff
Lucas Mittelmeier
F Buket Basmanav
Felipe Opazo
Frank Noé
Silvio O Rizzoli
author_sort Daniëlle de Jong-Bolm
collection DOAJ
container_title PLoS Biology
description Multiplexed cellular imaging typically relies on the sequential application of detection probes, as antibodies or DNA barcodes, which is complex and time-consuming. To address this, we developed here protein nanobarcodes, composed of combinations of epitopes recognized by specific sets of nanobodies. The nanobarcodes are read in a single imaging step, relying on nanobodies conjugated to distinct fluorophores, which enables a precise analysis of large numbers of protein combinations. Fluorescence images from nanobarcodes were used as input images for a deep neural network, which was able to identify proteins with high precision. We thus present an efficient and straightforward protein identification method, which is applicable to relatively complex biological assays. We demonstrate this by a multicell competition assay, in which we successfully used our nanobarcoded proteins together with neurexin and neuroligin isoforms, thereby testing the preferred binding combinations of multiple isoforms, in parallel.
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spelling doaj-art-a0fe7e696f5542bd88b88b00a857d7ee2025-08-19T23:42:55ZengPublic Library of Science (PLoS)PLoS Biology1544-91731545-78852023-12-012112e300242710.1371/journal.pbio.3002427Protein nanobarcodes enable single-step multiplexed fluorescence imaging.Daniëlle de Jong-BolmMohsen SadeghiCristian A BogaciuGuobin BaoGabriele KlaehnMerle HoffLucas MittelmeierF Buket BasmanavFelipe OpazoFrank NoéSilvio O RizzoliMultiplexed cellular imaging typically relies on the sequential application of detection probes, as antibodies or DNA barcodes, which is complex and time-consuming. To address this, we developed here protein nanobarcodes, composed of combinations of epitopes recognized by specific sets of nanobodies. The nanobarcodes are read in a single imaging step, relying on nanobodies conjugated to distinct fluorophores, which enables a precise analysis of large numbers of protein combinations. Fluorescence images from nanobarcodes were used as input images for a deep neural network, which was able to identify proteins with high precision. We thus present an efficient and straightforward protein identification method, which is applicable to relatively complex biological assays. We demonstrate this by a multicell competition assay, in which we successfully used our nanobarcoded proteins together with neurexin and neuroligin isoforms, thereby testing the preferred binding combinations of multiple isoforms, in parallel.https://journals.plos.org/plosbiology/article/file?id=10.1371/journal.pbio.3002427&type=printable
spellingShingle Daniëlle de Jong-Bolm
Mohsen Sadeghi
Cristian A Bogaciu
Guobin Bao
Gabriele Klaehn
Merle Hoff
Lucas Mittelmeier
F Buket Basmanav
Felipe Opazo
Frank Noé
Silvio O Rizzoli
Protein nanobarcodes enable single-step multiplexed fluorescence imaging.
title Protein nanobarcodes enable single-step multiplexed fluorescence imaging.
title_full Protein nanobarcodes enable single-step multiplexed fluorescence imaging.
title_fullStr Protein nanobarcodes enable single-step multiplexed fluorescence imaging.
title_full_unstemmed Protein nanobarcodes enable single-step multiplexed fluorescence imaging.
title_short Protein nanobarcodes enable single-step multiplexed fluorescence imaging.
title_sort protein nanobarcodes enable single step multiplexed fluorescence imaging
url https://journals.plos.org/plosbiology/article/file?id=10.1371/journal.pbio.3002427&type=printable
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