<p>Brucellosis, a globally significant zoonotic disease caused by&#xa0;<i>Brucella</i>&#xa0;infection, relies on the pathogen’s ability to invade and replicate within host cells. This intracellular replication is tightly regulated by transcriptional networks, including the LysR-family regulator VtlR, which is critical for&#xa0;<i>B. abortus</i>&#xa0;virulence but whose role in <i>B. melitensis</i> remains unclear. Here, we constructed&#xa0;<i>vtlR</i>&#xa0;mutant and complemented strains in <i>B. melitensis</i> M5 and demonstrated that VtlR is essential for virulence. Phenotypic assays revealed that <i>vtlR</i> deletion impaired bacterial growth on L-fucose, D-glucose, and meso-erythritol, increased sensitivity to hydrogen peroxide and sodium nitroprusside, and reduced intracellular survival in RAW264.7 macrophages while triggering reactive oxygen species (ROS) production. RNA-seq and RT-qPCR analysis indicated that VtlR positively regulates small RNA AbcR2 and three DUF1127-domain proteins (RS13565, RS04310, RS13280), mirroring its regulatory role in&#xa0;<i>B. abortus</i>. However, overexpression of these targets failed to restore virulence in the&#xa0;<i>vtlR</i>&#xa0;mutant. Notably, the mutant strain elicited protective immunity in mice, suggesting its potential as a live-attenuated vaccine candidate. Collectively, this study elucidates the VtlR regulon in&#xa0;<i>B. melitensis</i>, advancing our understanding of&#xa0;<i>Brucella</i>&#xa0;pathogenesis and vaccine development.</p>

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The LysR-family transcriptional regulator VtlR coordinates carbon metabolism, oxidative and nitrosative stress resistance, and virulence in Brucella melitensis

  • Yong Wang,
  • Mengsi Li,
  • Xinmei Yang,
  • Yi Yin,
  • Jinyue Liu,
  • Jing Qu,
  • Yanqing Bao,
  • Jingjing Qi,
  • Xiangan Han,
  • Shaohui Wang,
  • Mingxing Tian

摘要

Brucellosis, a globally significant zoonotic disease caused by Brucella infection, relies on the pathogen’s ability to invade and replicate within host cells. This intracellular replication is tightly regulated by transcriptional networks, including the LysR-family regulator VtlR, which is critical for B. abortus virulence but whose role in B. melitensis remains unclear. Here, we constructed vtlR mutant and complemented strains in B. melitensis M5 and demonstrated that VtlR is essential for virulence. Phenotypic assays revealed that vtlR deletion impaired bacterial growth on L-fucose, D-glucose, and meso-erythritol, increased sensitivity to hydrogen peroxide and sodium nitroprusside, and reduced intracellular survival in RAW264.7 macrophages while triggering reactive oxygen species (ROS) production. RNA-seq and RT-qPCR analysis indicated that VtlR positively regulates small RNA AbcR2 and three DUF1127-domain proteins (RS13565, RS04310, RS13280), mirroring its regulatory role in B. abortus. However, overexpression of these targets failed to restore virulence in the vtlR mutant. Notably, the mutant strain elicited protective immunity in mice, suggesting its potential as a live-attenuated vaccine candidate. Collectively, this study elucidates the VtlR regulon in B. melitensis, advancing our understanding of Brucella pathogenesis and vaccine development.