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Updated: Apr 27, 2026

MicroRNA Amplification and Recognition through Locked-nucleic-acid In situ Hybridization as a Novel Detection and Quantification Method
Published on: October 7, 2025
Computational prediction of disease microRNAs in domestic animals
Teresia Buza1, Mark Arick, Hui Wang
1Department of Basic Sciences, College of Veterinary Medicine, Mississippi State University, P, O, Box 6100, Mississippi State 39762, USA. tbuza@cvm.msstate.edu.
Background:
The most important means of identifying diseases before symptoms appear is through the discovery of disease-associated biomarkers. Recently, microRNAs (miRNAs) have become highly useful biomarkers of infectious, genetic and metabolic diseases in human but they have not been well studied in domestic animals. It is probable that many of the animal homologs of human disease-associated miRNAs may be involved in domestic animal diseases. Here we describe a computational biology study in which human disease miRNAs were utilized to predict orthologous miRNAs in cow, chicken, pig, horse, and dog.
Results:
We identified 287 human disease-associated miRNAs which had at least one 100% identical animal homolog. The 287 miRNAs were associated with 359 human diseases referenced in 2,863 Pubmed articles. Multiple sequence analysis indicated that over 60% of known horse mature miRNAs found perfect matches in human disease-associated miRNAs, followed by dog (50%). As expected, chicken had the least number of perfect matches (5%). Phylogenetic analysis of miRNA precursors indicated that 85% of human disease pre-miRNAs were highly conserved in animals, showing less than 5% nucleotide substitution rates over evolutionary time. As an example we demonstrated conservation of human hsa-miR-143-3p which is associated with type 2 diabetes and targets AKT1 gene which is highly conserved in pig, horse and dog. Functional analysis of AKT1 gene using Gene Ontology (GO) showed that it is involved in glucose homeostasis, positive regulation of glucose import, positive regulation of glycogen biosynthetic process, glucose transport and response to food.
Conclusions:
This data provides the animal and veterinary research community with a resource to assist in generating hypothesis-driven research for discovering animal disease-related miRNA from their datasets and expedite development of prophylactic and disease-treatment strategies and also influence research efforts to identify novel disease models in large animals. Integrated data is available for download at http://agbase.hpc.msstate.edu/cgi-bin/animal_mirna.cgi.
Insights
Researchers identified 287 human disease-associated microRNAs (miRNAs) with identical animal homologs. This discovery aids in developing new animal disease diagnostic and treatment strategies by leveraging conserved miRNAs.
Area of Science:
- Veterinary Medicine
- Computational Biology
- Genomics
Background:
- Biomarkers are crucial for early disease detection.
- MicroRNAs (miRNAs) are established human disease biomarkers but understudied in animals.
- Animal homologs of human disease-associated miRNAs may play roles in domestic animal diseases.
Purpose of the Study:
- To computationally predict animal orthologs of human disease-associated miRNAs.
- To identify conserved miRNAs across species for potential use in veterinary medicine.
- To create a resource for animal and veterinary researchers.
Main Methods:
- Utilized a computational biology approach.
- Identified human disease-associated miRNAs with 100% identical animal homologs.
- Performed multiple sequence and phylogenetic analyses.
Main Results:
- Identified 287 human disease-associated miRNAs with animal homologs.
- Found high conservation rates, with over 60% of horse miRNAs matching human disease miRNAs.
- Demonstrated conservation of a specific miRNA (hsa-miR-143-3p) linked to type 2 diabetes and its conserved target gene (AKT1).
Conclusions:
- Provides a valuable resource for the animal and veterinary research community.
- Facilitates hypothesis-driven research for discovering animal disease-related miRNAs.
- Aims to expedite the development of animal disease prophylactic and treatment strategies.
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