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T-independent B-cell Effect of Agents Associated with Swine Grower-finisher Diarrhea

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Journal Vet Res Commun
Publisher Springer
Date 2023 Dec 3
PMID 38044397
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Abstract

Swine dysentery, spirochetal colitis, and salmonellosis are production-limiting enteric diseases of global importance to the swine industry. Despite decades of efforts, mitigation of these diseases still relies on antibiotic therapy. A common knowledge gap among the 3 agents is the early B-cell response to infection in pigs. Thus, this study aimed to characterize the porcine B-cell response to Brachyspira hyodysenteriae, Brachyspira hampsonii (virulent and avirulent strains), Brachyspira pilosicoli, and Salmonella Typhimurium, the agents of the syndromes mentioned above. Immortalized porcine B-cell line derived from a crossbred pig with lymphoma were co-incubated for 8 h with each pathogen, as well as E. coli lipopolysaccharide (LPS) and a sham-inoculum (n = 3/treatment). B-cell viability following treatments was evaluated using trypan blue, and the expression levels of B-cell activation-related genes was profiled using reverse transcription quantitative PCR. Only S. Typhimurium and LPS led to increased B-cell mortality. B. pilosicoli downregulated B-lymphocyte antigen (CD19), spleen associated tyrosine Kinase (syk), tyrosine-protein kinase (lyn), and Tumour Necrosis Factor alpha (TNF-α), and elicited no change in immunoglobulin-associated beta (CD79b) and swine leukocyte antigen class II (SLA-DRA) expression levels, when compared to the sham-inoculated group. In contrast, all other treatments significantly upregulated CD79b and stimulated responses in other B-cell downstream genes. These findings suggest that B. pilosicoli does not elicit an immediate T-independent B-cell response, nor does it trigger antigen-presenting mechanisms. All other agents activated at least one trigger within the T-independent pathways, as well as peptide antigen presenting mechanisms. Future research is warranted to verify these findings in vivo.

References
1.
Pasternak J, MacPhee D, Harding J . Fetal cytokine response to porcine reproductive and respiratory syndrome virus-2 infection. Cytokine. 2019; 126:154883. DOI: 10.1016/j.cyto.2019.154883. View

2.
Alvarez-Ordonez A, Martinez-Lobo F, Arguello H, Carvajal A, Rubio P . Swine dysentery: aetiology, pathogenicity, determinants of transmission and the fight against the disease. Int J Environ Res Public Health. 2013; 10(5):1927-47. PMC: 3709357. DOI: 10.3390/ijerph10051927. View

3.
Boes M, Schmidt T, Linkemann K, Beaudette B, Marshak-Rothstein A, Chen J . Accelerated development of IgG autoantibodies and autoimmune disease in the absence of secreted IgM. Proc Natl Acad Sci U S A. 2000; 97(3):1184-9. PMC: 15562. DOI: 10.1073/pnas.97.3.1184. View

4.
Boussiotis V, Nadler L, Strominger J, Goldfeld A . Tumor necrosis factor alpha is an autocrine growth factor for normal human B cells. Proc Natl Acad Sci U S A. 1994; 91(15):7007-11. PMC: 44327. DOI: 10.1073/pnas.91.15.7007. View

5.
Boxx G, Cheng G . The Roles of Type I Interferon in Bacterial Infection. Cell Host Microbe. 2016; 19(6):760-9. PMC: 5847370. DOI: 10.1016/j.chom.2016.05.016. View