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A 3D mixing-based portable magnetic device for fully automatic immunofluorescence staining of γ-H2AX in UVC-irradiated CD4(+) cells

Immunofluorescence (IF) is a common method used in cell biology. The conventional protocol for IF staining is time and labor-intensive, operator dependent and reagent-consuming. Magnetic Bead (MB)-based microdevices are frequently utilized in cellular assays, but integration of simple and efficient...

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Autores principales: Zhong, Runtao, Hou, Liangsheng, Zhao, Yingbo, Wang, Tianle, Wang, Shaohua, Wang, Mengyu, Xu, Dan, Sun, Yeqing
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/PMC9055984/
https://www.ncbi.nlm.nih.gov/pubmed/35521108
http://dx.doi.org/10.1039/d0ra03925j
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author Zhong, Runtao
Hou, Liangsheng
Zhao, Yingbo
Wang, Tianle
Wang, Shaohua
Wang, Mengyu
Xu, Dan
Sun, Yeqing
author_facet Zhong, Runtao
Hou, Liangsheng
Zhao, Yingbo
Wang, Tianle
Wang, Shaohua
Wang, Mengyu
Xu, Dan
Sun, Yeqing
author_sort Zhong, Runtao
collection PubMed
description Immunofluorescence (IF) is a common method used in cell biology. The conventional protocol for IF staining is time and labor-intensive, operator dependent and reagent-consuming. Magnetic Bead (MB)-based microdevices are frequently utilized in cellular assays, but integration of simple and efficient mixing with downstream multi-step manipulation of MBs for automatic IF staining is still challenging. We herein present a portable, inexpensive and integratable device for MB-based automatic IF staining. First, a front-end cell capture step is performed using a 3D-mixing module, which is built upon a novel mechanism named ec-2MagRotors and generates periodically changing 3D magnetic fields. A 5-fold enhancement of cell capture efficiency was attained even with a low bead-to-cell concentration ratio (5 : 1), when conducting magnetic 3D mixing. Second, a 1D-moving module is employed downstream to automatically manipulate MB–cell complexes for IF staining. Further, a simplified protocol for staining of γ-H2AX, a biomarker widely used in evaluation of cell radiation damage, is presented for proof-of-principle study of the magnetic device. Using UVC-irradiated CD4(+) cells as samples, our device achieved fully automatic γ-H2AX staining within 40 minutes at room temperature and showed a linear dose–response relationship. The developed portable magnetic device is automatic, efficient, cost-effective and simple-to-use, holding great potential for applications in different IF assays.
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spelling pubmed-90559842022-05-04 A 3D mixing-based portable magnetic device for fully automatic immunofluorescence staining of γ-H2AX in UVC-irradiated CD4(+) cells Zhong, Runtao Hou, Liangsheng Zhao, Yingbo Wang, Tianle Wang, Shaohua Wang, Mengyu Xu, Dan Sun, Yeqing RSC Adv Chemistry Immunofluorescence (IF) is a common method used in cell biology. The conventional protocol for IF staining is time and labor-intensive, operator dependent and reagent-consuming. Magnetic Bead (MB)-based microdevices are frequently utilized in cellular assays, but integration of simple and efficient mixing with downstream multi-step manipulation of MBs for automatic IF staining is still challenging. We herein present a portable, inexpensive and integratable device for MB-based automatic IF staining. First, a front-end cell capture step is performed using a 3D-mixing module, which is built upon a novel mechanism named ec-2MagRotors and generates periodically changing 3D magnetic fields. A 5-fold enhancement of cell capture efficiency was attained even with a low bead-to-cell concentration ratio (5 : 1), when conducting magnetic 3D mixing. Second, a 1D-moving module is employed downstream to automatically manipulate MB–cell complexes for IF staining. Further, a simplified protocol for staining of γ-H2AX, a biomarker widely used in evaluation of cell radiation damage, is presented for proof-of-principle study of the magnetic device. Using UVC-irradiated CD4(+) cells as samples, our device achieved fully automatic γ-H2AX staining within 40 minutes at room temperature and showed a linear dose–response relationship. The developed portable magnetic device is automatic, efficient, cost-effective and simple-to-use, holding great potential for applications in different IF assays. The Royal Society of Chemistry 2020-08-07 /pmc/articles/PMC9055984/ /pubmed/35521108 http://dx.doi.org/10.1039/d0ra03925j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zhong, Runtao
Hou, Liangsheng
Zhao, Yingbo
Wang, Tianle
Wang, Shaohua
Wang, Mengyu
Xu, Dan
Sun, Yeqing
A 3D mixing-based portable magnetic device for fully automatic immunofluorescence staining of γ-H2AX in UVC-irradiated CD4(+) cells
title A 3D mixing-based portable magnetic device for fully automatic immunofluorescence staining of γ-H2AX in UVC-irradiated CD4(+) cells
title_full A 3D mixing-based portable magnetic device for fully automatic immunofluorescence staining of γ-H2AX in UVC-irradiated CD4(+) cells
title_fullStr A 3D mixing-based portable magnetic device for fully automatic immunofluorescence staining of γ-H2AX in UVC-irradiated CD4(+) cells
title_full_unstemmed A 3D mixing-based portable magnetic device for fully automatic immunofluorescence staining of γ-H2AX in UVC-irradiated CD4(+) cells
title_short A 3D mixing-based portable magnetic device for fully automatic immunofluorescence staining of γ-H2AX in UVC-irradiated CD4(+) cells
title_sort 3d mixing-based portable magnetic device for fully automatic immunofluorescence staining of γ-h2ax in uvc-irradiated cd4(+) cells
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9055984/
https://www.ncbi.nlm.nih.gov/pubmed/35521108
http://dx.doi.org/10.1039/d0ra03925j
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