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Chromatin and the Cellular Response to Particle Radiation-Induced Oxidative and Clustered DNA Damage
by
Provencher, Luc
, Goodarzi, Aaron A.
, Danforth, John M.
in
Atoms & subatomic particles
/ Carbon
/ Cell and Developmental Biology
/ Charged particles
/ Chromatin
/ clustered DNA damage
/ Cosmic rays
/ DNA damage
/ DNA repair
/ Energy
/ FDA approval
/ Gamma rays
/ Ion beams
/ Ionization
/ Ionizing radiation
/ Lesions
/ multiply-damaged sites
/ particle radiation
/ Radiation therapy
/ Radioisotopes
/ Radon
/ X-rays
2022
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Chromatin and the Cellular Response to Particle Radiation-Induced Oxidative and Clustered DNA Damage
by
Provencher, Luc
, Goodarzi, Aaron A.
, Danforth, John M.
in
Atoms & subatomic particles
/ Carbon
/ Cell and Developmental Biology
/ Charged particles
/ Chromatin
/ clustered DNA damage
/ Cosmic rays
/ DNA damage
/ DNA repair
/ Energy
/ FDA approval
/ Gamma rays
/ Ion beams
/ Ionization
/ Ionizing radiation
/ Lesions
/ multiply-damaged sites
/ particle radiation
/ Radiation therapy
/ Radioisotopes
/ Radon
/ X-rays
2022
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Do you wish to request the book?
Chromatin and the Cellular Response to Particle Radiation-Induced Oxidative and Clustered DNA Damage
by
Provencher, Luc
, Goodarzi, Aaron A.
, Danforth, John M.
in
Atoms & subatomic particles
/ Carbon
/ Cell and Developmental Biology
/ Charged particles
/ Chromatin
/ clustered DNA damage
/ Cosmic rays
/ DNA damage
/ DNA repair
/ Energy
/ FDA approval
/ Gamma rays
/ Ion beams
/ Ionization
/ Ionizing radiation
/ Lesions
/ multiply-damaged sites
/ particle radiation
/ Radiation therapy
/ Radioisotopes
/ Radon
/ X-rays
2022
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Chromatin and the Cellular Response to Particle Radiation-Induced Oxidative and Clustered DNA Damage
Journal Article
Chromatin and the Cellular Response to Particle Radiation-Induced Oxidative and Clustered DNA Damage
2022
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Overview
Exposure to environmental ionizing radiation is prevalent, with greatest lifetime doses typically from high Linear Energy Transfer (high-LET) alpha particles via the radioactive decay of radon gas in indoor air. Particle radiation is highly genotoxic, inducing DNA damage including oxidative base lesions and DNA double strand breaks. Due to the ionization density of high-LET radiation, the consequent damage is highly clustered wherein ≥2 distinct DNA lesions occur within 1–2 helical turns of one another. These multiply-damaged sites are difficult for eukaryotic cells to resolve either quickly or accurately, resulting in the persistence of DNA damage and/or the accumulation of mutations at a greater rate per absorbed dose, relative to lower LET radiation types. The proximity of the same and different types of DNA lesions to one another is challenging for DNA repair processes, with diverse pathways often confounding or interplaying with one another in complex ways. In this context, understanding the state of the higher order chromatin compaction and arrangements is essential, as it influences the density of damage produced by high-LET radiation and regulates the recruitment and activity of DNA repair factors. This review will summarize the latest research exploring the processes by which clustered DNA damage sites are induced, detected, and repaired in the context of chromatin.
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