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Assessing testicular germ cell DNA damage in the comet assay; introduction of a proof-of-concept
Authors:Yvette Dirven  Dag Markus Eide  Erika Witasp Henriksson  Rune Hjorth  Anoop Kumar Sharma  Anne Graupner  Gunnar Brunborg  Jarle Ballangby  Anne Mette Zenner Boisen  Stellan Swedmark  Kristine Bjerve Gützkow  Ann-Karin Olsen
Affiliation:1. Norwegian Institute of Public Health, Division of Climate and Environmental Health, Oslo, Norway

Centre for Environmental Radioactivity (CERAD, Centre of Excellence of the Norwegian Research Council), Oslo, Norway;2. Swedish Chemicals Agency, Department of Development of Legislation and Other Instruments, Unit of Proposals for Classification and Restriction, Sundbyberg, Sweden

Swedish Chemicals Agency, Department of Development of Legislation and Other Instruments, Unit of Evaluation of Substances, Sundbyberg, Sweden;3. The Danish Environmental Protection Agency, Odense, Denmark;4. Technical University of Denmark, National Food Institute, Lyngby, Denmark;5. Swedish Chemicals Agency, Department of Development of Legislation and Other Instruments, Unit of Evaluation of Substances, Sundbyberg, Sweden;6. Norwegian Institute of Public Health, Division of Climate and Environmental Health, Oslo, Norway

Abstract:The in vivo comet assay is widely used to measure genotoxicity; however, the current OECD test guideline (TG 489) does not recommend using the assay to assess testicular germ cells, due to the presence of testicular somatic cells. An adapted approach to specifically assess testicular germ cells within the comet assay is certainly warranted, considering regulatory needs for germ cell-specific genotoxicity data in relation to the increasing global production of and exposure to potentially hazardous chemicals. Here, we provide a proof-of-concept to selectively analyze round spermatids and primary spermatocytes, distinguishing them from other cells of the testicle. Utilizing the comet assay recordings of DNA content (total fluorescence intensity) and DNA damage (% tail intensity) of individual comets, we developed a framework to distinguish testicular cell populations based on differences in DNA content/ploidy and appearance. Haploid round spermatid comets are identified through (1) visual inspection of DNA content distributions, (2) setting DNA content thresholds, and (3) modeling DNA content distributions using a normal mixture distribution function. We also describe an approach to distinguish primary spermatocytes during comet scoring, based on their high DNA content and large physical size. Our concept allows both somatic and germ cells to be analyzed in the same animal, adding a versatile, sensitive, rapid, and resource-efficient assay to the limited genotoxicity assessment toolbox for germ cells. An adaptation of TG 489 facilitates accumulation of valuable information regarding distribution of substances to germ cells and their potential for inducing germ cell gene mutations and structural chromosomal aberrations.
Keywords:genotoxicity  OECD TG 489  primary spermatocyte  round spermatid  total fluorescence intensity
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