ABSTRACT Bovine tuberculosis (bTB), caused by Mycobacterium bovis, causes major economic losses in the global livestock industry and threatens public health. Macrophages are essential for pathogen clearance, yet serve as the primary intracellular niche for mycobacterial survival. These characteristics emphasize the importance of identifying host factors that regulate macrophage functions during infection. To systematically uncover such factors, we constructed a genome-wide CRISPR-KO library in Bomac cells (the bovine macrophage cell line) and performed iterative infection screening under high selective pressure. Here, the host protein SH3PXD2B was identified as a key host factor to promote mycobacterial invasion: SH3PXD2B was significantly enriched in the screening. M. bovis infection significantly increases the expression of SH3PXD2B. The phagocytic activity of macrophages is enhanced in an SH3PXD2B-dependent manner, and the high expression of SH3PXD2B inhibits the migration of macrophages, causing macrophages to remain at the site of infection and promoting the entry of more mycobacteria into macrophages to establish infection. Further results indicate that macrophage migration inhibitory factor is positively regulated by SH3PXD2B and plays an important role in SH3PXD2B-mediated macrophage migration and phagocytic activity. These results indicate that SH3PXD2B is a critical host factor manipulated by M. bovis to promote infection. It provides a new potential target for genetic breeding against bTB. IMPORTANCE There is a complex interaction between Mycobacterium bovis and the host, which has an important impact on the occurrence and development of bTB. However, the host gene regulatory network for M. bovis infection is still incomplete, and the specific genes that play a key role in the infection process are still unclear. Bovine tuberculosis remains a major economic and public health burden worldwide. This study identifies SH3PXD2B as a novel host factor that is exploited by M. bovis to promote macrophage phagocytosis and inhibit migration, thereby facilitating bacterial invasion. These findings reveal a new pathogenic strategy and suggest that SH3PXD2B may represent a potential target for host-directed therapy and genetic breeding against bTB. There is a complex interaction between Mycobacterium bovis and the host, which has an important impact on the occurrence and development of bTB. However, the host gene regulatory network for M. bovis infection is still incomplete, and the specific genes that play a key role in the infection process are still unclear. Bovine tuberculosis remains a major economic and public health burden worldwide. This study identifies SH3PXD2B as a novel host factor that is exploited by M. bovis to promote macrophage phagocytosis and inhibit migration, thereby facilitating bacterial invasion. These findings reveal a new pathogenic strategy and suggest that SH3PXD2B may represent a potential target for host-directed therapy and genetic breeding against bTB.
Donghui Liu, Ting Zhang, Yu-jie Sheng et al.· Applied and Environmental Mi...· 0 citations
ClpB, an ATP-dependent molecular chaperone belonging to the Hsp100/Clp subfamily of AAA+ ATPases, plays a crucial role in protein disaggregation, thereby enhancing bacterial survival under stress conditions. Despite its well-conserved function in prokaryotes, the specific contributions of ClpB to the pathogenesis of the ruminant pathogen Mycoplasma bovis remain largely unexplored. In this study, we identified and functionally characterized a ClpB homolog in M. bovis. Biochemical assays confirmed that the recombinant ClpB protein exhibits intrinsic ATPase activity and, in cooperation with the DnaK chaperone system, efficiently mediates protein disaggregation in vitro. Through genome-wide transposon mutagenesis of the M. bovis HB0801 strain, we generated ClpB-deficient mutants that maintained normal growth kinetics and morphology at 37 °C but exhibited significant growth defects under thermal and oxidative stress conditions. Phenotypic analysis demonstrated that ClpB disruption attenuated key virulence traits, including impaired adhesion to host cells, marked reduction in biofilm formation, diminished pro-inflammatory cytokines (IL-1β, IL-6, TNF-α) expression in BoMac cells. Furthermore, the reduced virulence of the ClpB mutant was investigated by DIA proteomic analyses, which revealed that the ClpB mutant strain altered distinct protein expression patterns related to proteostasis, including phosphotransferase system, serine-type peptidase activity, serine hydrolase activity, and chaperone-mediated protein folding that contribute to the stress response and virulence. These findings collectively demonstrate that ClpB serves as a multifunctional virulence determinant in M. bovis, orchestrating stress adaptation, host-pathogen interactions, and pathogenic potential through modulation of both protein quality control systems and virulence-associated pathways.
Hui Zhang, Doukun Lu, Gang Zhao et al.· International Journal of Bio...· 0 citations
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