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Rapid isolation of antigen-specific B-cells using droplet microfluidics

Monoclonal antibodies are powerful tools for scientific research and are the basis of numerous therapeutics. However, traditional approaches to generate monoclonal antibodies against a desired target, such as hybridoma-based techniques and display library methods, are laborious and suffer from fusio...

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Autores principales: Ding, Ruihua, Hung, Kuo-Chan, Mitra, Anindita, Ung, Lloyd W., Lightwood, Daniel, Tu, Ran, Starkie, Dale, Cai, Liheng, Mazutis, Linas, Chong, Shaorong, Weitz, David A., Heyman, John A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9055518/
https://www.ncbi.nlm.nih.gov/pubmed/35515810
http://dx.doi.org/10.1039/d0ra04328a
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author Ding, Ruihua
Hung, Kuo-Chan
Mitra, Anindita
Ung, Lloyd W.
Lightwood, Daniel
Tu, Ran
Starkie, Dale
Cai, Liheng
Mazutis, Linas
Chong, Shaorong
Weitz, David A.
Heyman, John A.
author_facet Ding, Ruihua
Hung, Kuo-Chan
Mitra, Anindita
Ung, Lloyd W.
Lightwood, Daniel
Tu, Ran
Starkie, Dale
Cai, Liheng
Mazutis, Linas
Chong, Shaorong
Weitz, David A.
Heyman, John A.
author_sort Ding, Ruihua
collection PubMed
description Monoclonal antibodies are powerful tools for scientific research and are the basis of numerous therapeutics. However, traditional approaches to generate monoclonal antibodies against a desired target, such as hybridoma-based techniques and display library methods, are laborious and suffer from fusion inefficiency and display bias, respectively. Here we present a platform, featuring droplet microfluidics and a bead-based binding assay, to rapidly identify and verify antigen-binding antibody sequences from primary cells. We used a defined mixture of hybridoma cells to characterize the system, sorting droplets at up to 100 Hz and isolating desired hybridoma cells, comprising 0.1% of the input, with a false positive rate of less than 1%. We then applied the system to once-frozen primary B-cells to isolate rare cells secreting target-binding antibody. We performed RT-PCR on individual sorted cells to recover the correctly paired heavy- and light-chain antibody sequences, and we used rapid cell-free protein synthesis to generate single-chain variable fragment-format (scFv) antibodies from fourteen of the sorted cells. Twelve of these showed antigen-specific binding by ELISA. Our platform facilitates screening animal B-cell repertoires within days at low cost, increasing both rate and range of discovering antigen-specific antibodies from living organisms. Further, these techniques can be adapted to isolate cells based on virtually any secreted product.
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spelling pubmed-90555182022-05-04 Rapid isolation of antigen-specific B-cells using droplet microfluidics Ding, Ruihua Hung, Kuo-Chan Mitra, Anindita Ung, Lloyd W. Lightwood, Daniel Tu, Ran Starkie, Dale Cai, Liheng Mazutis, Linas Chong, Shaorong Weitz, David A. Heyman, John A. RSC Adv Chemistry Monoclonal antibodies are powerful tools for scientific research and are the basis of numerous therapeutics. However, traditional approaches to generate monoclonal antibodies against a desired target, such as hybridoma-based techniques and display library methods, are laborious and suffer from fusion inefficiency and display bias, respectively. Here we present a platform, featuring droplet microfluidics and a bead-based binding assay, to rapidly identify and verify antigen-binding antibody sequences from primary cells. We used a defined mixture of hybridoma cells to characterize the system, sorting droplets at up to 100 Hz and isolating desired hybridoma cells, comprising 0.1% of the input, with a false positive rate of less than 1%. We then applied the system to once-frozen primary B-cells to isolate rare cells secreting target-binding antibody. We performed RT-PCR on individual sorted cells to recover the correctly paired heavy- and light-chain antibody sequences, and we used rapid cell-free protein synthesis to generate single-chain variable fragment-format (scFv) antibodies from fourteen of the sorted cells. Twelve of these showed antigen-specific binding by ELISA. Our platform facilitates screening animal B-cell repertoires within days at low cost, increasing both rate and range of discovering antigen-specific antibodies from living organisms. Further, these techniques can be adapted to isolate cells based on virtually any secreted product. The Royal Society of Chemistry 2020-07-20 /pmc/articles/PMC9055518/ /pubmed/35515810 http://dx.doi.org/10.1039/d0ra04328a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Ding, Ruihua
Hung, Kuo-Chan
Mitra, Anindita
Ung, Lloyd W.
Lightwood, Daniel
Tu, Ran
Starkie, Dale
Cai, Liheng
Mazutis, Linas
Chong, Shaorong
Weitz, David A.
Heyman, John A.
Rapid isolation of antigen-specific B-cells using droplet microfluidics
title Rapid isolation of antigen-specific B-cells using droplet microfluidics
title_full Rapid isolation of antigen-specific B-cells using droplet microfluidics
title_fullStr Rapid isolation of antigen-specific B-cells using droplet microfluidics
title_full_unstemmed Rapid isolation of antigen-specific B-cells using droplet microfluidics
title_short Rapid isolation of antigen-specific B-cells using droplet microfluidics
title_sort rapid isolation of antigen-specific b-cells using droplet microfluidics
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9055518/
https://www.ncbi.nlm.nih.gov/pubmed/35515810
http://dx.doi.org/10.1039/d0ra04328a
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