Real time assays for quantifying cytotoxicity with single cell resolution.

A new live cell-based assay platform has been developed for the determination of complement dependent cytotoxicity (CDC), antibody dependent cellular cytotoxicity (ADCC), and overall cytotoxicity in human whole blood. In these assays, the targeted tumor cell populations are first labeled with fluore...

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Main Authors: Sonny C Hsiao, Hong Liu, Taylor A Holstlaw, Cheng Liu, Catherine Y Francis, Matthew B Francis
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2013-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3691166?pdf=render
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spelling doaj-bc680bf15a894d36a1877884147955712020-11-24T21:17:52ZengPublic Library of Science (PLoS)PLoS ONE1932-62032013-01-0186e6673910.1371/journal.pone.0066739Real time assays for quantifying cytotoxicity with single cell resolution.Sonny C HsiaoHong LiuTaylor A HolstlawCheng LiuCatherine Y FrancisMatthew B FrancisA new live cell-based assay platform has been developed for the determination of complement dependent cytotoxicity (CDC), antibody dependent cellular cytotoxicity (ADCC), and overall cytotoxicity in human whole blood. In these assays, the targeted tumor cell populations are first labeled with fluorescent Cell Tracker dyes and immobilized using a DNA-based adhesion technique. This allows the facile generation of live cell arrays that are arranged arbitrarily or in ordered rectilinear patterns. Following the addition of antibodies in combination with serum, PBMCs, or whole blood, cell death within the targeted population can be assessed by the addition of propidium iodide (PI) as a viability probe. The array is then analyzed with an automated microscopic imager. The extent of cytotoxicity can be quantified accurately by comparing the number of surviving target cells to the number of dead cells labeled with both Cell Tracker and PI. Excellent batch-to-batch reproducibility has been achieved using this method. In addition to allowing cytotoxicity analysis to be conducted in real time on a single cell basis, this new assay overcomes the need for hazardous radiochemicals. Fluorescently-labeled antibodies can be used to identify individual cells that bear the targeted receptors, but yet resist the CDC and ADCC mechanisms. This new approach also allows the use of whole blood in cytotoxicity assays, providing an assessment of antibody efficacy in a highly relevant biological mixture. Given the rapid development of new antibody-based therapeutic agents, this convenient assay platform is well-poised to streamline the drug discovery process significantly.http://europepmc.org/articles/PMC3691166?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Sonny C Hsiao
Hong Liu
Taylor A Holstlaw
Cheng Liu
Catherine Y Francis
Matthew B Francis
spellingShingle Sonny C Hsiao
Hong Liu
Taylor A Holstlaw
Cheng Liu
Catherine Y Francis
Matthew B Francis
Real time assays for quantifying cytotoxicity with single cell resolution.
PLoS ONE
author_facet Sonny C Hsiao
Hong Liu
Taylor A Holstlaw
Cheng Liu
Catherine Y Francis
Matthew B Francis
author_sort Sonny C Hsiao
title Real time assays for quantifying cytotoxicity with single cell resolution.
title_short Real time assays for quantifying cytotoxicity with single cell resolution.
title_full Real time assays for quantifying cytotoxicity with single cell resolution.
title_fullStr Real time assays for quantifying cytotoxicity with single cell resolution.
title_full_unstemmed Real time assays for quantifying cytotoxicity with single cell resolution.
title_sort real time assays for quantifying cytotoxicity with single cell resolution.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2013-01-01
description A new live cell-based assay platform has been developed for the determination of complement dependent cytotoxicity (CDC), antibody dependent cellular cytotoxicity (ADCC), and overall cytotoxicity in human whole blood. In these assays, the targeted tumor cell populations are first labeled with fluorescent Cell Tracker dyes and immobilized using a DNA-based adhesion technique. This allows the facile generation of live cell arrays that are arranged arbitrarily or in ordered rectilinear patterns. Following the addition of antibodies in combination with serum, PBMCs, or whole blood, cell death within the targeted population can be assessed by the addition of propidium iodide (PI) as a viability probe. The array is then analyzed with an automated microscopic imager. The extent of cytotoxicity can be quantified accurately by comparing the number of surviving target cells to the number of dead cells labeled with both Cell Tracker and PI. Excellent batch-to-batch reproducibility has been achieved using this method. In addition to allowing cytotoxicity analysis to be conducted in real time on a single cell basis, this new assay overcomes the need for hazardous radiochemicals. Fluorescently-labeled antibodies can be used to identify individual cells that bear the targeted receptors, but yet resist the CDC and ADCC mechanisms. This new approach also allows the use of whole blood in cytotoxicity assays, providing an assessment of antibody efficacy in a highly relevant biological mixture. Given the rapid development of new antibody-based therapeutic agents, this convenient assay platform is well-poised to streamline the drug discovery process significantly.
url http://europepmc.org/articles/PMC3691166?pdf=render
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AT chengliu realtimeassaysforquantifyingcytotoxicitywithsinglecellresolution
AT catherineyfrancis realtimeassaysforquantifyingcytotoxicitywithsinglecellresolution
AT matthewbfrancis realtimeassaysforquantifyingcytotoxicitywithsinglecellresolution
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