Literature DB >> 33374540

A Paradigm Revolution or Just Better Resolution-Will Newly Emerging Superresolution Techniques Identify Chromatin Architecture as a Key Factor in Radiation-Induced DNA Damage and Repair Regulation?

Martin Falk1, Michael Hausmann2.   

Abstract

DNA double-strand breaks (DSBs) have been recognized as the most serious lesions in irradiated cells. While several biochemical pathways capable of repairing these lesions have been identified, the mechanisms by which cells select a specific pathway for activation at a given DSB site remain poorly understood. Our knowledge of DSB induction and repair has increased dramatically since the discovery of ionizing radiation-induced foci (IRIFs), initiating the possibility of spatiotemporally monitoring the assembly and disassembly of repair complexes in single cells. IRIF exploration revealed that all post-irradiation processes-DSB formation, repair and misrepair-are strongly dependent on the characteristics of DSB damage and the microarchitecture of the whole affected chromatin domain in addition to the cell status. The microscale features of IRIFs, such as their morphology, mobility, spatiotemporal distribution, and persistence kinetics, have been linked to repair mechanisms. However, the influence of various biochemical and structural factors and their specific combinations on IRIF architecture remains unknown, as does the hierarchy of these factors in the decision-making process for a particular repair mechanism at each individual DSB site. New insights into the relationship between the physical properties of the incident radiation, chromatin architecture, IRIF architecture, and DSB repair mechanisms and repair efficiency are expected from recent developments in optical superresolution microscopy (nanoscopy) techniques that have shifted our ability to analyze chromatin and IRIF architectures towards the nanoscale. In the present review, we discuss this relationship, attempt to correlate still rather isolated nanoscale studies with already better-understood aspects of DSB repair at the microscale, and consider whether newly emerging "correlated multiscale structuromics" can revolutionarily enhance our knowledge in this field.

Entities:  

Keywords:  DNA damage and repair; DNA double-strand breaks (DSBs); DSB repair pathway choice and hierarchy; chromatin architecture; ionizing radiation; ionizing radiation-induced foci (IRIFs); linear energy transfer (LET); single-molecule localization microscopy (SMLM); superresolution microscopy

Year:  2020        PMID: 33374540     DOI: 10.3390/cancers13010018

Source DB:  PubMed          Journal:  Cancers (Basel)        ISSN: 2072-6694            Impact factor:   6.639


  8 in total

Review 1.  Reconsidering pathway choice: a sequential model of mammalian DNA double-strand break pathway decisions.

Authors:  Tanya T Paull
Journal:  Curr Opin Genet Dev       Date:  2021-07-20       Impact factor: 5.578

2.  DeepFoci: Deep learning-based algorithm for fast automatic analysis of DNA double-strand break ionizing radiation-induced foci.

Authors:  Tomas Vicar; Jaromir Gumulec; Radim Kolar; Olga Kopecna; Eva Pagacova; Iva Falkova; Martin Falk
Journal:  Comput Struct Biotechnol J       Date:  2021-11-18       Impact factor: 7.271

Review 3.  Genome-wide mapping of genomic DNA damage: methods and implications.

Authors:  Stefano Amente; Giovanni Scala; Barbara Majello; Somaiyeh Azmoun; Helen G Tempest; Sanjay Premi; Marcus S Cooke
Journal:  Cell Mol Life Sci       Date:  2021-08-31       Impact factor: 9.261

4.  Analysis of Ionizing Radiation Induced DNA Damage by Superresolution dSTORM Microscopy.

Authors:  Szilvia Brunner; Dániel Varga; Renáta Bozó; Róbert Polanek; Tünde Tőkés; Emília Rita Szabó; Réka Molnár; Nikolett Gémes; Gábor J Szebeni; László G Puskás; Miklós Erdélyi; Katalin Hideghéty
Journal:  Pathol Oncol Res       Date:  2021-11-08       Impact factor: 3.201

Review 5.  Chromatin and the Cellular Response to Particle Radiation-Induced Oxidative and Clustered DNA Damage.

Authors:  John M Danforth; Luc Provencher; Aaron A Goodarzi
Journal:  Front Cell Dev Biol       Date:  2022-07-13

6.  Elucidation of the Clustered Nano-Architecture of Radiation-Induced DNA Damage Sites and Surrounding Chromatin in Cancer Cells: A Single Molecule Localization Microscopy Approach.

Authors:  Michael Hausmann; Martin Falk; Charlotte Neitzel; Andreas Hofmann; Abin Biswas; Theresa Gier; Iva Falkova; Dieter W Heermann; Georg Hildenbrand
Journal:  Int J Mol Sci       Date:  2021-03-31       Impact factor: 5.923

7.  DNA double-strand break repair gene mutation and the risk of papillary thyroid microcarcinoma: a case-control study.

Authors:  Jiali Qin; Jie Fan; Shanting Liu; Zhensheng Liu; Gang Li; Yao Wu
Journal:  Cancer Cell Int       Date:  2021-07-02       Impact factor: 5.722

8.  Incorporation of Low Concentrations of Gold Nanoparticles: Complex Effects on Radiation Response and Fate of Cancer Cells.

Authors:  Lucie Dobešová; Theresa Gier; Olga Kopečná; Eva Pagáčová; Tomáš Vičar; Felix Bestvater; Jiří Toufar; Alena Bačíková; Pavel Kopel; Radek Fedr; Georg Hildenbrand; Iva Falková; Martin Falk; Michael Hausmann
Journal:  Pharmaceutics       Date:  2022-01-11       Impact factor: 6.321

  8 in total

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