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Comparative metagenomic analysis of gut microbiota in Anacanthotermes turkestanicus and A. ahngerianus reveals diet- and habitat-driven functional divergence

Ulugbek TogaevInstitute of Bioorganic Chemistry, Academy of Science of UzbekistanVartika MathurAnimal-Plant Interactions Lab, Department of Zoology, Sri Venkateswara CollegeAziza RakhmonkulovaInstitute of Bioorganic Chemistry, Academy of Science of UzbekistanSurbhi AgarwalAnimal-Plant Interactions Lab, Department of Zoology, Sri Venkateswara CollegeAarav MathurAnimal-Plant Interactions Lab, Department of Zoology, Sri Venkateswara CollegeShuhrat TurageldiyevInstitute of Bioorganic Chemistry, Academy of Science of UzbekistanRasul RuzmetovDepartment of Agronomy, Urganch State UniversityAbboskhon S. TuraevInstitute of Bioorganic Chemistry, Academy of Science of UzbekistanZaitjan TillyabaevInstitute of Bioorganic Chemistry, Academy of Science of UzbekistanAlimjan MatchanovInstitute of Bioorganic Chemistry, Academy of Science of UzbekistanDavid Sillam-DussèsLaboratory of Experimental and Comparative Ethology, Laboratory of Experimental and Comparative Ethology (LEEC), Unité de Recherche (UR) 4443, University Sorbonne Paris Nord
2026
ABI

Аннотация

The gut microbiome of termites plays a crucial role in lignocellulose degradation and nutrient recycling. This study presents the first metagenomic characterization of the gut microbiota in two lower termite species, Anacanthotermes ahngerianus and Anacanthotermes turkestanicus , collected from distinct ecological habitats. In Uzbekistan, the first lives in building a mound in nature in the West part while the second mainly lives in contact with human constructions in the East part without building a proper mound. Both species showed similar bacterial dominance (~53%) in their guts but A. ahngerianus exhibited higher overall microbial diversity (Shannon index: 4.046 vs. 3.363; Simpson’s index: 0.927 vs. 0.776). Moreover, both termite species showed differences in microbial profiles, including bacterial taxa and eukaryotic groups relevant to lower-termite gut symbiosis. Protist-associated eukaryotic reads were retained because flagellated protists are essential symbionts of lower termites, whereas unexpected non-protist eukaryotic assignments were interpreted cautiously and were not used as evidence of functional gut symbionts or host adaptation. Functional profiling revealed enrichment of pathways related to carbohydrate metabolism, amino acid transport, and energy production in both species. However, A. turkestanicus exhibited stronger bacterial dominance associated with lignocellulose degradation and nitrogen cycling, while A. ahngerianus maintained a more balanced representation of bacteria, fungi, and viruses. These findings suggest that species identity and ecological habits may be associated with differences in gut microbiome structure and predicted functional potential.

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