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Comparison of single-cell sequencing technologies for allele-specific expression analysis in rabbit spermatids

Elena Smertina*, Madi Rutherford, Brendan Hosking, Nehleh Kargarfard, Laurence O. W. Wilson, Kevin P. Oh, Ina L. Smith, Tanja Strive, Maria Jenckel*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

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Abstract

Gene drives are transmission distorters that can transmit specific alleles to >90% of the progeny, e.g., the naturally occurring t-haplotype in mice. The hypothesised mechanism involves biased allele expression with impaired transcript sharing between developing spermatids. For invasive pest species, there is interest in co-opting naturally occurring gene drives. It is unknown whether similar natural gene drives exist in the European rabbit, a detrimental pest species in Australia. Here, we analysed the allele-specific expression (ASE) in rabbit spermatids to identify candidate genes for future investigation in genetic biocontrol applications. We utilised short-read and long-read technologies and performed a comparative analysis. Illumina sequencing was deemed unsuitable, whereas both long-read sequencing platforms demonstrated similar performance. The SPINK2 gene that plays an important role in fertility, consistently showed ASE towards one of the alleles. Furthermore, two kinases displayed bimodal allele expression. Future work is warranted to assess suitability of these genes for genetic biocontrol.

Original languageEnglish
Article number111224
Pages (from-to)1-13
Number of pages13
JournalGenomics
Volume118
Issue number3
Early online date2 Mar 2026
DOIs
Publication statusPublished - May 2026

Bibliographical note

Copyright the Author(s) 2026. Version archived for private and non-commercial use with the permission of the author/s and according to publisher conditions. For further rights please contact the publisher.

Keywords

  • scRNA-seq
  • Long-read sequencing
  • Allele-specific expression (ASE)
  • Rabbit spermatid
  • Oryctolagus cuniculus
  • Gene drive

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