Toward genetic modification of plant-parasitic nematodes: Delivery of macromolecules to adults and expression of exogenous mRNA in second stage juveniles

Olaf Kranse, Helen Beasley, Sally Adams, Andre Pires-Da Silva, Christopher Bell, Catherine J. Lilley, Peter E. Urwin, David Bird, Eric Miska, Geert Smant, Godelieve Gheysen, John Jones, Mark Viney, Pierre Abad, Thomas R. Maier, Thomas J. Baum, Shahid Siddique, Valerie Williamson, Alper Akay, Sebastian Eves-Van Den Akker*

*Corresponding author for this work

Research output: Contribution to journalArticleAcademicpeer-review

2 Citations (Scopus)

Abstract

Plant-parasitic nematodes are a continuing threat to food security, causing an estimated 100 billion USD in crop losses each year. The most problematic are the obligate sedentary endoparasites (primarily root knot nematodes and cyst nematodes). Progress in understanding their biology is held back by a lack of tools for functional genetics: forward genetics is largely restricted to studies of natural variation in populations and reverse genetics is entirely reliant on RNA interference. There is an expectation that the development of functional genetic tools would accelerate the progress of research on plant-parasitic nematodes, and hence the development of novel control solutions. Here, we develop some of the foundational biology required to deliver a functional genetic tool kit in plant-parasitic nematodes. We characterize the gonads of male Heterodera schachtii and Meloidogyne hapla in the context of spermatogenesis. We test and optimize various methods for the delivery, expression, and/or detection of exogenous nucleic acids in plant-parasitic nematodes. We demonstrate that delivery of macromolecules to cyst and root knot nematode male germlines is difficult, but possible. Similarly, we demonstrate the delivery of oligonucleotides to root knot nematode gametes. Finally, we develop a transient expression system in plant-parasitic nematodes by demonstrating the delivery and expression of exogenous mRNA encoding various reporter genes throughout the body of H. schachtii juveniles using lipofectamine-based transfection. We anticipate these developments to be independently useful, will expedite the development of genetic modification tools for plant-parasitic nematodes, and ultimately catalyze research on a group of nematodes that threaten global food security.

Original languageEnglish
Article numberjkaa058
JournalG3: Genes, Genomes, Genetics
Volume11
Issue number2
DOIs
Publication statusPublished - 15 Feb 2021

Keywords

  • Genetic modification
  • Germline
  • Lipofection
  • Plant-parasitic nematodes
  • Transformation
  • Transient expression

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