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Origins of genome-editing excisases as illuminated by the somatic genome of the ciliate Blepharisma .

Minakshi SinghBrandon K B SeahChristiane EmmerichAditi SinghChristian WoehleBruno HuettelAdam ByerlyNaomi A StoverMayumi SugiuraTerue HarumotoEstienne C Swart
Published in: Proceedings of the National Academy of Sciences of the United States of America (2023)
Massive DNA excision occurs regularly in ciliates, ubiquitous microbial eukaryotes with somatic and germline nuclei in the same cell. Tens of thousands of internally eliminated sequences (IESs) scattered throughout the ciliate germline genome are deleted during the development of the streamlined somatic genome. The genus Blepharisma represents one of the two high-level ciliate clades (subphylum Postciliodesmatophora) and, unusually, has dual pathways of somatic nuclear and genome development. This makes it ideal for investigating the functioning and evolution of these processes. Here we report the somatic genome assembly of  Blepharisma stoltei strain ATCC 30299 (41 Mbp), arranged as numerous telomere-capped minichromosomal isoforms. This genome encodes eight PiggyBac transposase homologs no longer harbored by transposons . All appear subject to purifying selection, but just one, the putative IES excisase, has a complete catalytic triad. We hypothesize that PiggyBac homologs were ancestral excisases that enabled the evolution of extensive natural genome editing.
Keyphrases
  • genome editing
  • crispr cas
  • genome wide
  • copy number
  • stem cells
  • gene expression
  • bone marrow
  • mesenchymal stem cells
  • oxidative stress
  • microbial community