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A high-throughput alpha particle irradiation system for monitoring DNA damage repair, genome instability and screening in human cell and yeast model systems

Ionizing radiation (IR) is environmentally prevalent and, depending on dose and linear energy transfer (LET), can elicit serious health effects by damaging DNA. Relative to low LET photon radiation (X-rays, gamma rays), higher LET particle radiation produces more disease causing, complex DNA damage...

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Autores principales: Stanley, Fintan K T, Berger, N Daniel, Pearson, Dustin D, Danforth, John M, Morrison, Hali, Johnston, James E, Warnock, Tyler S, Brenner, Darren R, Chan, Jennifer A, Pierce, Greg, Cobb, Jennifer A, Ploquin, Nicolas P, Goodarzi, Aaron A
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7641727/
https://www.ncbi.nlm.nih.gov/pubmed/33010172
http://dx.doi.org/10.1093/nar/gkaa782
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author Stanley, Fintan K T
Berger, N Daniel
Pearson, Dustin D
Danforth, John M
Morrison, Hali
Johnston, James E
Warnock, Tyler S
Brenner, Darren R
Chan, Jennifer A
Pierce, Greg
Cobb, Jennifer A
Ploquin, Nicolas P
Goodarzi, Aaron A
author_facet Stanley, Fintan K T
Berger, N Daniel
Pearson, Dustin D
Danforth, John M
Morrison, Hali
Johnston, James E
Warnock, Tyler S
Brenner, Darren R
Chan, Jennifer A
Pierce, Greg
Cobb, Jennifer A
Ploquin, Nicolas P
Goodarzi, Aaron A
author_sort Stanley, Fintan K T
collection PubMed
description Ionizing radiation (IR) is environmentally prevalent and, depending on dose and linear energy transfer (LET), can elicit serious health effects by damaging DNA. Relative to low LET photon radiation (X-rays, gamma rays), higher LET particle radiation produces more disease causing, complex DNA damage that is substantially more challenging to resolve quickly or accurately. Despite the majority of human lifetime IR exposure involving long-term, repetitive, low doses of high LET alpha particles (e.g. radon gas inhalation), technological limitations to deliver alpha particles in the laboratory conveniently, repeatedly, over a prolonged period, in low doses and in an affordable, high-throughput manner have constrained DNA damage and repair research on this topic. To resolve this, we developed an inexpensive, high capacity, 96-well plate-compatible alpha particle irradiator capable of delivering adjustable, low mGy/s particle radiation doses in multiple model systems and on the benchtop of a standard laboratory. The system enables monitoring alpha particle effects on DNA damage repair and signalling, genome stability pathways, oxidative stress, cell cycle phase distribution, cell viability and clonogenic survival using numerous microscopy-based and physical techniques. Most importantly, this method is foundational for high-throughput genetic screening and small molecule testing in mammalian and yeast cells.
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spelling pubmed-76417272020-11-10 A high-throughput alpha particle irradiation system for monitoring DNA damage repair, genome instability and screening in human cell and yeast model systems Stanley, Fintan K T Berger, N Daniel Pearson, Dustin D Danforth, John M Morrison, Hali Johnston, James E Warnock, Tyler S Brenner, Darren R Chan, Jennifer A Pierce, Greg Cobb, Jennifer A Ploquin, Nicolas P Goodarzi, Aaron A Nucleic Acids Res Methods Online Ionizing radiation (IR) is environmentally prevalent and, depending on dose and linear energy transfer (LET), can elicit serious health effects by damaging DNA. Relative to low LET photon radiation (X-rays, gamma rays), higher LET particle radiation produces more disease causing, complex DNA damage that is substantially more challenging to resolve quickly or accurately. Despite the majority of human lifetime IR exposure involving long-term, repetitive, low doses of high LET alpha particles (e.g. radon gas inhalation), technological limitations to deliver alpha particles in the laboratory conveniently, repeatedly, over a prolonged period, in low doses and in an affordable, high-throughput manner have constrained DNA damage and repair research on this topic. To resolve this, we developed an inexpensive, high capacity, 96-well plate-compatible alpha particle irradiator capable of delivering adjustable, low mGy/s particle radiation doses in multiple model systems and on the benchtop of a standard laboratory. The system enables monitoring alpha particle effects on DNA damage repair and signalling, genome stability pathways, oxidative stress, cell cycle phase distribution, cell viability and clonogenic survival using numerous microscopy-based and physical techniques. Most importantly, this method is foundational for high-throughput genetic screening and small molecule testing in mammalian and yeast cells. Oxford University Press 2020-10-03 /pmc/articles/PMC7641727/ /pubmed/33010172 http://dx.doi.org/10.1093/nar/gkaa782 Text en © The Author(s) 2020. Published by Oxford University Press on behalf of Nucleic Acids Research. http://creativecommons.org/licenses/by-nc/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Methods Online
Stanley, Fintan K T
Berger, N Daniel
Pearson, Dustin D
Danforth, John M
Morrison, Hali
Johnston, James E
Warnock, Tyler S
Brenner, Darren R
Chan, Jennifer A
Pierce, Greg
Cobb, Jennifer A
Ploquin, Nicolas P
Goodarzi, Aaron A
A high-throughput alpha particle irradiation system for monitoring DNA damage repair, genome instability and screening in human cell and yeast model systems
title A high-throughput alpha particle irradiation system for monitoring DNA damage repair, genome instability and screening in human cell and yeast model systems
title_full A high-throughput alpha particle irradiation system for monitoring DNA damage repair, genome instability and screening in human cell and yeast model systems
title_fullStr A high-throughput alpha particle irradiation system for monitoring DNA damage repair, genome instability and screening in human cell and yeast model systems
title_full_unstemmed A high-throughput alpha particle irradiation system for monitoring DNA damage repair, genome instability and screening in human cell and yeast model systems
title_short A high-throughput alpha particle irradiation system for monitoring DNA damage repair, genome instability and screening in human cell and yeast model systems
title_sort high-throughput alpha particle irradiation system for monitoring dna damage repair, genome instability and screening in human cell and yeast model systems
topic Methods Online
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7641727/
https://www.ncbi.nlm.nih.gov/pubmed/33010172
http://dx.doi.org/10.1093/nar/gkaa782
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