1. Advances in the application of genetic manipulation methods to apicomplexan parasites.
- Author
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Suarez CE, Bishop RP, Alzan HF, Poole WA, and Cooke BM
- Subjects
- Animals, Apicomplexa genetics, Apicomplexa growth & development, Apicomplexa pathogenicity, CRISPR-Cas Systems, DNA Repair, Deoxyribonucleases metabolism, Gene Editing, Gene Knockout Techniques, Genome, Protozoan, Life Cycle Stages, Mutagenesis, Insertional, Protozoan Infections, Animal economics, Protozoan Infections, Animal prevention & control, Protozoan Vaccines, Transfection, Virulence Factors physiology, Apicomplexa physiology, Protozoan Infections, Animal parasitology
- Abstract
Apicomplexan parasites such as Babesia, Theileria, Eimeria, Cryptosporidium and Toxoplasma greatly impact animal health globally, and improved, cost-effective measures to control them are urgently required. These parasites have complex multi-stage life cycles including obligate intracellular stages. Major gaps in our understanding of the biology of these relatively poorly characterised parasites and the diseases they cause severely limit options for designing novel control methods. Here we review potentially important shared aspects of the biology of these parasites, such as cell invasion, host cell modification, and asexual and sexual reproduction, and explore the potential of the application of relatively well-established or newly emerging genetic manipulation methods, such as classical transfection or gene editing, respectively, for closing important gaps in our knowledge of the function of specific genes and proteins, and the biology of these parasites. In addition, genetic manipulation methods impact the development of novel methods of control of the diseases caused by these economically important parasites. Transient and stable transfection methods, in conjunction with whole and deep genome sequencing, were initially instrumental in improving our understanding of the molecular biology of apicomplexan parasites and paved the way for the application of the more recently developed gene editing methods. The increasingly efficient and more recently developed gene editing methods, in particular those based on the CRISPR/Cas9 system and previous conceptually similar techniques, are already contributing to additional gene function discovery using reverse genetics and related approaches. However, gene editing methods are only possible due to the increasing availability of in vitro culture, transfection, and genome sequencing and analysis techniques. We envisage that rapid progress in the development of novel gene editing techniques applied to apicomplexan parasites of veterinary interest will ultimately lead to the development of novel and more efficient methods for disease control., (Published by Elsevier Ltd.)
- Published
- 2017
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