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Aihua Wang

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Open access Sep 2026

The Brucella effector protein BtpB facilitates STAT3 activation to regulate polarization in macrophages during infection

Brucella is a Gram-negative facultative intracellular pathogen that causes widespread zoonotic infections. Macrophages are crucial immune and antigen-presenting cells that differentiate into proinflammatory M1-type or anti-inflammatory M2-type cells in different microenvironments. The BtpB protein of Brucella is a type IV secretion system effector protein that modulates host inflammatory responses by inhibiting Toll-like receptor signaling and controlling dendritic cell activation. A high expression of intracellular proinflammatory factors is induced in B. suis deficient in BtpB (B. suis mutant strain ΔbtpB). However, the role of BtpB in macrophage polarization triggered by Brucella infection is uncertain. In this study, RAW264.7 macrophages were utilized as a model to investigate the impact of BtpB on macrophage polarization. The cells were infected with wild-type B. suis strain S2, B. suis mutant strain ΔbtpB, or the B. suis complemented strain C-ΔbtpB followed by flow cytometry, reverse transcription quantitative PCR (RT-qPCR), western blotting, immunohistochemistry, and metabolic detection analyses. The expression of BtpB suppressed M1 polarization and promoted M2 macrophage polarization. Moreover, BtpB upregulated the expression of signal transducer and activator of transcription 3 (STAT3) in host cells. Inhibition of STAT3 promoted the expression of nitric oxide synthase (NOS2) in cells infected with either B. suis or C-ΔbtpB, with no observable differences compared to cells infected with ΔbtpB. Conversely, STAT3 overexpression resulted in a downregulation of NOS2 levels in both wild-type and mutant cells. These findings were corroborated by messenger RNA (mRNA) assay and enzyme-linked immunosorbent assay (ELISA) that confirmed the regulatory role of STAT3 in modulating NOS2 expression. Additionally, intracellular proliferation assays under STAT3-modulated conditions indicated that STAT3 suppresses replication of Brucella. In conclusion, the results demonstrate that BtpB inhibits M1 polarization in macrophages by regulating STAT3 expression which provides a strong foundation for improved understanding of Brucella infection mechanisms.

Ye Yuan, Minghui Wang, Mingyue Hao et al. · 0 citations
Open access Jul 2026

The immune protection of OMP16-specific IgM against Brucella infection.

BACKGROUND Brucellosis, a severe zoonotic infectious disease, poses substantial economic and health threats globally. The intracellular survival strategy of Brucella complicates disease control, highlighting the need for novel immunotherapeutic strategies such as antibody-based therapies and multi-epitope vaccines. RESULTS This study generated two IgM monoclonal antibodies (D3 and F5) against the conserved outer membrane protein OMP16 of Brucella using hybridoma technology. Peptide scanning and Western blot identified their linear epitopes (D3: 77TLSKQAQW84; F5: 120RDFLASRG127), which are highly conserved among major Brucella species. Integrated approaches-including molecular docking, alanine-scanning mutagenesis, and dot-blot assays-revealed key residues at the epitope interface that form stable bonds with antibody complementarity-determining regions (CDRs). Functionally, both antibodies activated the complement system, with F5 exhibiting significant complement-dependent bacteriolytic activity in vitro. Furthermore, in the presence of complement, D3 and F5 enhanced macrophage-mediated opsonophagocytosis and intracellular killing of Brucella abortus A19. In a mouse infection model, passive immunization with either antibody significantly alleviated infection-induced weight loss and splenomegaly and reduced bacterial load in the spleen. CONCLUSIONS Our study underscores the role of IgM antibodies in combating Brucella infection, offers insights for antibody-based immunotherapy, and provides a theoretical foundation for developing multi-epitope vaccines based on the conserved epitopes and critical residues.

Yunyi Zhai, Kaihui Sun, Ye Yuan et al. · 0 citations

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