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Genetic Diversity of Rhipicephalus (Boophilus) microplus for a Global Scenario: A Comprehensive Review
Muthu Sankar1, Binod Kumar2, Haranahally Vasanthachar Manjunathachar3
1Entomology Laboratory, Division of Parasitology, Indian Council of Agricultural Research-Indian Veterinary Research Institute, Izatnagar, Bareilly 243122, India.
Abstract:
Rhipicephalus microplus poses a substantial threat to livestock health and agricultural economies worldwide. Its remarkable adaptability to diverse environments and hosts is a testament to its extensive genetic diversity. This review delves into the genetic diversity of R. microplus, employing three pivotal genetic markers: the cytochrome c oxidase I (COX1) gene, ribosomal genes, and microsatellites. The COX1 gene, a crucial tool for genetic characterization and phylogenetic clustering, provides insights into the adaptability of ticks. Ribosomal genes, such as internal transcribed spacer regions (ITS-1 and2) as well as 18S and 28S, are routinely utilized for species differentiation. However, their use is limited due to indels (insertions and deletions). Microsatellites and minisatellites, known for their high polymorphism, have been successfully employed to study populations and genetic diversity across various tick species. Despite their effectiveness, challenges such as null alleles and marker variations warrant careful consideration. Bm86, a well-studied vaccine candidate, exhibits substantial genetic diversity. This diversity directly influences vaccine efficacy, posing challenges for developing a universally effective Bm86-based vaccine. Moreover, the review emphasizes the prevalence of genes associated with synthetic pyrethroid resistance. Identifying single nucleotide polymorphisms in the acaricide-resistant genes of R. microplus has facilitated the development of molecular markers for detecting and monitoring resistance against synthetic pyrethroids. However, mutations in sodium channels, the target site for synthetic pyrethroid, correlate well with the resistance status of R. microplus, which is not the case with other acaricide target genes. This study underscores the importance of understanding genetic diversity in developing effective tick management strategies. The choice of genetic marker should be tailored based on the level of taxonomic resolution and the group of ticks under investigation. A holistic approach combining multiple markers and integrating additional molecular and morphological data may offer a more comprehensive understanding of tick diversity and relationships. This research has far-reaching implications in formulating breeding programs and the development of vaccine against ticks and tick-borne diseases (TTBDs) as well as strategies for the management of resistant ticks.
Insights
Genetic diversity in the cattle tick, Rhipicephalus microplus, is key to understanding its adaptability and resistance. Analyzing genetic markers like COX1 and microsatellites aids in developing effective tick management and vaccine strategies.
Area of Science:
- Veterinary Entomology
- Molecular Biology
- Parasitology
Background:
- Rhipicephalus microplus is a significant global threat to livestock, impacting agriculture economically.
- Its adaptability is linked to extensive genetic diversity, necessitating detailed study.
Purpose of the Study:
- To review the genetic diversity of Rhipicephalus microplus using key genetic markers.
- To explore the implications of this diversity for tick control, vaccine development, and resistance management.
Main Methods:
- Analysis of genetic diversity using cytochrome c oxidase I (COX1) gene, ribosomal genes (ITS, 18S, 28S), and microsatellites.
- Review of studies on Bm86 vaccine candidate diversity and synthetic pyrethroid resistance genes.
Main Results:
- COX1 and microsatellites are valuable for tick characterization and population studies, though with limitations.
- Genetic diversity in Bm86 impacts vaccine efficacy; pyrethroid resistance is linked to specific gene mutations.
Conclusions:
- Understanding Rhipicephalus microplus genetic diversity is crucial for effective tick and tick-borne disease (TTBD) management.
- Tailored marker selection and integrated approaches are vital for comprehensive diversity assessment and strategy development.
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