Activation of transposable elements and genetic instability during long-term culture of the human fungal pathogen Candida albicans

Biogerontology. 2019 Aug;20(4):457-474. doi: 10.1007/s10522-019-09809-2. Epub 2019 Apr 15.

Abstract

It has been repeatedly reported that transposable elements (TE) become active and/or mobile in the genomes of replicatively and stress-induced senescent mammalian cells. However, the biological role of senescence-associated transposon activation and its occurrence and relevance in other eukaryotic cells remain to be elucidated. In the present study, Candida albicans, a prevalent opportunistic fungal pathogen in humans, was used to analyze changes in gene copy number of selected TE, namely Cirt2, Moa and Cmut1 during long-term culture (up to 90 days). The effects of stress stimuli (fluconazole, hydrogen peroxide, hypochlorite) and ploidy state (haploid, diploid, tetraploid cells) were also considered. An increase in copy number of Cirt2 and Moa was the most accented in tetraploid cells after 90 days of culture that was accompanied by changes in karyotype patterns and slightly more limited growth rate compared to haploid and diploid cells. Stress stimuli did not potentiate TE activity. Elevation in chromosomal DNA breaks was also observed during long-term culture of cells of different ploidy, however this was not correlated with increased TE activity. Our results suggest that increased TE activity may promote genomic diversity and plasticity, and cellular heterogeneity during long-term culture of C. albicans cells.

Keywords: Candida albicans; DNA breaks; Karyotype profiling; Long-term culture; Stress inductors; Transposon activity.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Adaptation, Physiological / genetics
  • Animals
  • Candida albicans / genetics*
  • Cellular Senescence / genetics*
  • Culture Techniques / methods
  • DNA Breaks
  • DNA Transposable Elements / physiology*
  • Gene Dosage*
  • Genetic Variation / genetics*
  • Humans
  • Ploidies
  • Time

Substances

  • DNA Transposable Elements