The immune system of the chicken has long fascinated immunologists because it operates with a stripped-down, elegant version of the genetic machinery that humans and other mammals use to fight infection. Now, a team of researchers in South Korea and the United Kingdom has taken a close look at the most important immune genes of Korean native chickens, uncovering dozens of previously unknown genetic variants and four unique alleles that could help breeders build disease resistance into one of the country’s most valued poultry breeds. The study, led by Trisha Nicole Agulto, Minjun Kim and Jun Heon Lee of Chungnam National University, with contributions from Prabuddha Manjula, Roshani Fernando and renowned MHC specialist Jim Kaufman, was published in the journal Immunogenetics and offers both a technical milestone and a practical tool for conservation breeding.
At the heart of the research lies the chicken major histocompatibility complex, or MHC, a cluster of genes on chromosome 16 that biologists famously describe as a “minimal essential MHC.” Unlike the sprawling, gene-rich MHC regions of mammals, the chicken’s B locus contains just the core components needed for immune recognition: the class I (BF) and class II (BL) molecules that present peptide fragments to CD8-positive cytotoxic T cells and CD4-positive helper T cells, respectively. The class I molecule of greatest consequence is encoded by the BF2 gene, which is the predominant classical class I gene expressed in most chicken cells. Because chickens carry so few class I genes, each BF2 allele bears an enormous burden, determining which peptides from viruses and bacteria can be displayed to the immune system. This makes BF2 the single most influential locus for disease resistance traits, with documented effects on responses to Marek’s disease, avian influenza, infectious bronchitis and Salmonella infection.
The reason BF2 is so powerful, and so variable, is a molecular arms race. Pathogens constantly evolve to escape presentation by MHC molecules, and the MHC evolves in response, accumulating mutations in the alpha1 and alpha2 domains that form the peptide-binding groove of the class I molecule. Structural studies of chicken BF2 molecules have shown that different alleles range from “specialists” with narrow binding grooves and restricted anchor residues, which can explain why certain inbred chicken lines are exquisitely susceptible to particular viruses, to “generalists” with promiscuous peptide binding that offer broad protection. Capturing this functional variation is therefore the central goal of any MHC typing effort in poultry genetics.
For years, researchers have relied on two indirect tools to survey MHC diversity in chicken populations without sequencing the BF2 gene itself. The first is LEI0258, a highly polymorphic microsatellite marker located within the MHC-B region whose tandem repeat structure correlates broadly with MHC haplotypes. The second is the 90-SNP panel, often abbreviated BSNP, a set of single nucleotide polymorphisms spanning the MHC-B region that allows haplotypes to be assigned across large numbers of birds. Both tools have been enormously productive, revealing extensive diversity in commercial lines and indigenous breeds across Asia and Africa. But both share a critical blind spot: neither directly interrogates the alpha1 and alpha2 domains of BF2 where the peptide-binding residues, and therefore the functionally meaningful variation, actually reside.
To test how well these proxy markers reflect true BF2 variation, the team analyzed six populations of Korean native chickens, a breed prized for its distinctive flavor, meat quality and cultural heritage, and increasingly important to Korea’s agricultural economy. The researchers focused on individuals that were homozygous, meaning they carried identical copies, for both the BSNP-defined haplotypes and the LEI0258 marker. This homozygosity strategy simplifies the genetics: if both proxy markers indicate a single haplotype, the BF2 sequence recovered should represent that haplotype cleanly, without the ambiguity introduced by heterozygous individuals. The design allowed the group to link specific marker combinations to specific BF2 sequences with a clarity that mixed samples cannot provide.
The sequencing results were striking. Two standard BF2 alleles, B06 and B09, turned out to be identical in the regions examined, while seven additional haplotypes showed high similarity to sequences previously found in Korean native chicken samples. In total, the team identified 30 novel single nucleotide polymorphisms within the BF2 gene. More than half of these new variants fell within the peptide-binding regions, the very codons that determine which pathogen fragments the molecule can grasp and present. That concentration of novelty in the functionally critical sites is exactly what one would expect from a gene under intense balancing selection driven by pathogen pressure, and it underscores how much unseen functional diversity even well-studied indigenous breeds can harbor.
Comparing their sequences against previously published data from polymerase chain reaction-based typing and next-generation sequencing studies of Korean native chickens, the researchers found that most of their new variants overlapped with variants already reported by those earlier efforts, providing mutual validation across typing platforms. The combined evidence led to the identification of four BF2 alleles unique to Korean native chicken lines. Each of these alleles carries a distinct combination of substitutions in the peptide-binding groove, implying that each may present a different repertoire of pathogen-derived peptides. For a breed maintained in relatively small, closed populations, this level of diversity is a valuable genetic reservoir, and the sequence data have been deposited in the NCBI GenBank repository under accession numbers PQ658773 through PQ658808.
Perhaps the most practically important finding concerns the relationship, or lack thereof, among the three genetic systems. The study found no clear one-to-one relationship between the BSNP haplotypes, the LEI0258 marker, and the BF2 gene itself, confirming that the proxy markers cannot reliably predict the exact BF2 allele a bird carries. However, a crucial pattern emerged: individuals that were homozygous for both the BSNP panel and the LEI0258 marker were also homozygous across the BF2 region. In other words, while the markers cannot tell you which BF2 allele a bird has, they can reliably tell you whether the bird is genetically consistent at the BF2 locus. As the authors summarize in their key points, the LEI0258 marker and BSNP haplotypes are good indicators of BF2 gene homozygosity, even if they are not good predictors of BF2 identity.
This distinction matters enormously for breeding programs. Selective breeding for disease resistance requires managing variation at the BF2 locus, and verifying homozygosity is often the first step in establishing lines with defined MHC genotypes. The finding means that breeders and conservationists can continue to use the cheaper, faster LEI0258 and BSNP assays to identify candidate homozygous birds cheaply and at scale, and then reserve direct BF2 sequencing for confirming the exact alleles in a much smaller subset of animals. This tiered approach dramatically reduces the cost of incorporating high-resolution MHC information into Korean native chicken breeding schemes, whether the goal is resilience against avian influenza and Marek’s disease or simply the maintenance of maximum immune diversity within conservation flocks.
The broader significance of the work extends beyond Korea’s borders. Indigenous chicken populations across Asia and Africa are increasingly recognized as reservoirs of MHC diversity that industrial breeding has eroded, and comparative studies of native breeds in Bangladesh, Vietnam, Indonesia and Thailand have documented unique haplotypes in each. The Korean study adds a high-resolution functional layer to this growing picture by directly linking marker data to peptide-binding sequences. For immunologists, the 30 new SNPs and four novel alleles expand the reference space for studying how peptide presentation shapes disease outcomes in birds. For poultry producers facing persistent threats from viral pathogens, the study provides a validated, economical pathway for identifying and propagating birds with immune-genetic profiles suited to resistance. And for the Korean native chicken itself, a breed whose genetic heritage is a national resource, the research offers a molecular roadmap for ensuring that its remarkable immune diversity is not lost but deliberately preserved and deployed in the generations ahead.
Subject of Research: Genetic diversity of the major histocompatibility complex class I BF2 gene in Korean native chickens, assessed in relation to the LEI0258 microsatellite marker and the 90-SNP (BSNP) panel.
Subject of Research: Biology
Article Title: Genetic insights into the major histocompatibility complex class I BF2 gene of Korean native chickens in relation to the LEI0258 microsatellite marker and the 90-SNP panel
Article References: Agulto, T. N., Kim, M., Manjula, P., Fernando, R., Kaufman, J., & Lee, J. H. (2025). Genetic insights into the major histocompatibility complex class I BF2 gene of Korean native chickens in relation to the LEI0258 microsatellite marker and the 90-SNP panel. Immunogenetics, 77(1), Article 31. https://doi.org/10.1007/s00251-025-01389-5
Image Credits: AI Generated
DOI: 10.1007/s00251-025-01389-5
Keywords: BF2, BSNP, LEI0258, Korean native chicken, MHC, major histocompatibility complex, genetic diversity, disease resistance, peptide-binding regions, single nucleotide polymorphisms, selective breeding, conservation
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Juliet Wilcox. (September 8, 2026). Genetic links found between BF2 gene, LEI0258 marker, and SNP panel. Scienmag. https://scienmag.com/genetic-links-found-between-bf2-gene-lei0258-marker-and-snp-panel/
Juliet Wilcox. “Genetic links found between BF2 gene, LEI0258 marker, and SNP panel.” Scienmag, 8 September 2026, https://scienmag.com/genetic-links-found-between-bf2-gene-lei0258-marker-and-snp-panel/. Accessed 8 September 2026.
Juliet Wilcox. “Genetic links found between BF2 gene, LEI0258 marker, and SNP panel.” Scienmag. September 8, 2026. https://scienmag.com/genetic-links-found-between-bf2-gene-lei0258-marker-and-snp-panel/
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