🏆 Foundational Paper

Mechanism of cluster DNA damage repair in response to high-atomic number and energy particles radiation.

Asaithamby Aroumougame, Chen David J

📰 Mutation research 📅 2011 📊 160 citations

Abstract

Low-linear energy transfer (LET) radiation (i.e., γ- and X-rays) induces DNA double-strand breaks (DSBs) that are rapidly repaired (rejoined). In contrast, DNA damage induced by the dense ionizing track of high-atomic number and energy (HZE) particles is slowly repaired or is irreparable. These unrepaired and/or misrepaired DNA lesions may contribute to the observed higher relative biological effectiveness for cell killing, chromosomal aberrations, mutagenesis, and carcinogenesis in HZE particle irradiated cells compared to those treated with low-LET radiation. The types of DNA lesions induced by HZE particles have been characterized in vitro and usually consist of two or more closely spaced strand breaks, abasic sites, or oxidized bases on opposing strands. It is unclear why these lesions are difficult to repair. In this review, we highlight the potential of a new technology allowing direct visualization of different types of DNA lesions in human cells and document the emerging significance of live-cell imaging for elucidation of the spatio-temporal characterization of complex DNA damage. We focus on the recent insights into the molecular pathways that participate in the repair of HZE particle-induced DSBs. We also discuss recent advances in our understanding of how different end-processing nucleases aid in repair of DSBs with complicated ends generated by HZE particles. Understanding the mechanism underlying the repair of DNA damage induced by HZE particles will have important implications for estimating the risks to human health associated with HZE particle exposure.

🔬 Techniques

🧬 Organisms

✨ Fluorophores

🧪 Sample Preparation

🏭 Microscope Brands

Zeiss

🏛️ Research Organizations (ROR)

Affiliated research institutions:

📊 Figures

Figure 1

Clustered DNA lesions induced by iron particles can be visualized by indirect immunostaining with DNA repair and response proteins

(A) Phosphorylated H2AX and DNA PKcs foci form tracks along the paths traversed by iron particles. Normal human skin fibroblasts were irradiated horizontally with iron particles (1 Gy at 1 GeV/nucleon...

Figure 2

DNA double-strand breaks induced by a spectrum of HZE particles can be directly monitored in live cells

(A) 53BP1 forms foci along the densely ionizing paths traversed by iron (Fe), silicon (Si) and oxygen (O) particles. HT1080 cells stably expressing yellow fluorescent protein (YFP) tagged 53BP1 were i...

Figure 3

Spatio-temporal characterization of DNA lesions induced by iron particles

(A) Not all persistent 53BP1 foci are located in regions of heterochromatin. HT1080 cells stably expressing YFP-tagged 53BP1 were irradiated horizontally with iron particles (1 Gy at 1 GeV/nucleon) an...

Figure 4

WRN and Artemis play roles in processing the complex DNA damage induced by iron particles

(A) WRN is recruited to the sites of DNA damage induced by iron particles. WS cells stably expressing EGFP-WRN were exposed to iron particles (1Gy at 1GeV/nucleon) and immunostained with u03b3H2AX ant...

Figure images are served from the NIH/NLM PubMed Central Open Access Subset or Europe PMC; copyright remains with the publishers and authors.

🏛️ Imaging Facility

🏛️ University of Texas Southwestern Medical Center at Dallas

💬 Discussion

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