A key modality of non-surgical cancer management is DNA damaging therapy that causes DNA double-strand breaks that are preferentially toxic to rapidly dividing cancer cells. Double-strand break repair capacity is recognized as an important mechanism in drug resistance and is therefore a potential target for adjuvant chemotherapy. Additionally, spontaneous and environmentally induced DSBs are known to promote cancer, making DSB evaluation important as a tool in epidemiology, clinical evaluation and in the development of novel pharmaceuticals. Currently available assays to detect double-strand breaks are limited in throughput and specificity and offer minimal information concerning the kinetics of repair. Here, we present the CometChip, a 96-well platform that enables assessment of double-strand break levels and repair capacity of multiple cell types and conditions in parallel and integrates with standard high-throughput screening and analysis technologies. We demonstrate the ability to detect multiple genetic deficiencies in double-strand break repair and evaluate a set of clinically relevant chemical inhibitors of one of the major double-strand break repair pathways, non-homologous end-joining. While other high-throughput repair assays measure residual damage or indirect markers of damage, the CometChip detects physical double-strand breaks, providing direct measurement of damage induction and repair capacity, which may be useful in developing and implementing treatment strategies with reduced side effects.
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http://dx.doi.org/10.4161/cc.23880 | DOI Listing |
Nat Struct Mol Biol
January 2025
Department of Biological Chemistry, School of Medicine, University of California Irvine, Irvine, CA, USA.
DNA damage in cells induces the expression of inflammatory genes. However, the mechanism by which cells initiate an innate immune response in the presence of DNA lesions blocking transcription remains unknown. Here we find that genotoxic stresses lead to an acute activation of the transcription factor NF-κB through two distinct pathways, each triggered by different types of DNA lesions and coordinated by either ataxia-telangiectasia mutated (ATM) or IRAK1 kinases.
View Article and Find Full Text PDFMol Cell
January 2025
Department of Biochemistry & Structural Biology and Greehey Children's Cancer Research Institute, University of Texas Health Science Center at San Antonio, San Antonio, TX 78229, USA.
In this issue of Molecular Cell, studies by Xu et al., Kimble et al., and Elango et al.
View Article and Find Full Text PDFAlzheimers Dement
December 2024
University of Pennsylvania, Philadelphia, PA, USA.
Background: To date, Alzheimer's disease (AD) research has principally focused on neurons. In contrast, recent studies suggest that genetic mechanisms drive microglia towards prolonged inflammation in AD brains, exacerbating neurodegeneration. Indeed, many of the 70 disease-associated loci uncovered with genome-wide association studies (GWAS) reside near genes related to microglial function, such as TREM2.
View Article and Find Full Text PDFAlzheimers Dement
December 2024
University of Tennessee Health Science Center, Memphis, TN, USA.
Background: Tauopathies are a group of neurological disorders including Alzheimer's disease that involve progressive neurodegeneration, behavioral deficits, and aberrant tau accumulation. While the molecular mechanisms that regulate the progression of the tauopathy are not fully elucidated, there is evidence to suggest that accumulation of nuclear DNA damage, particularly nuclear DNA double-strand breaks (DNA DSBs), contribute to the progression of neurodegeneration. In our present work, we investigated the relationship between DNA DSB accumulation and neuroinflammation in the brains of AD patients and a mouse model of tauopathy.
View Article and Find Full Text PDFInt J Radiat Biol
January 2025
N.N. Semenov Federal Research Center for Chemical Physics, Russian Academy of Sciences, Moscow, Russia.
Background: Enumeration of residual DNA repair foci 24 hours or more after exposure to ionizing radiation (IR) is often used to assess the efficiency of DNA double-strand break repair. However, the relationship between the number of residual foci in irradiated cells and the radiation dose is still poorly understood. The aim of this work was to investigate the dose responses for residual DNA repair foci in normal human fibroblasts after X-ray exposure in the absorbed dose range from 0.
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