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Biology subjects

Plum, M. T. W.

Publications and source records attributed to Plum, M. T. W..

2 recordsLinked to original sources

Intranuclear niche: actin-tail mediated nuclear entry by intracellular pathogens

Intracellular pathogens localize to various niches in the host cells to avoid immune detection. However, very little is known about bacteria that enter the host nuclei. Here we report that Burkholderia thailandensis, a facultative intracellular pathogen, can enter eukaryotic nuclei and replicate. Nuclear invasion events were rare, occurring 1 in 500-1,000 infected cells, and inhibition of cell division further reduced the frequency of these events. Moreover, we show that nuclear entry requires actin tail motility, although it is independent of other virulence factors such as the Type III Secretion System, Type VI Secretion System-5, and flagella motility. Inactivation of actin tail motility by deleting bimA or inhibition of actin polymerisation by cytochalasin D abolished nuclear entry. Surprisingly, we observed that accumulation of B. thailandensis in the nucleus activated assembly of the Type VI Secretion Systems-5. We further show that Shigella flexneri also enters nucleus in an actin polymerization dependent mechanism. Together, we show that actin tail forming intracellular pathogens occasionally localize to the nucleus, and while this largely requires host cell division, it may provide pathogens with a protective niche in certain mitotically active cells, such as skin, gut or epithelial cells.

microbiology↗

Regulation of Type VI secretion systems of Burkholderia thailandensis during transition to intracellular lifestyle

Pathogenic bacteria tightly regulate gene expression in response to environmental cues. In Burkholderia species, the Type VI Secretion Systems (T6SS) mediate interbacterial competition and host cell interactions. Here, we show that B. thailandensis switches from the antibacterial T6SS-1 to the anti-eukaryotic T6SS-5 during phagosomal maturation. While T6SS-1 expression persists in the host cells, its assembly progressively declines with increasing T6SS-5 expression. This switch is controlled by the two-component system VirAG as deletion of virA blocks T6SS-5 expression and restores T6SS-1 assembly in host cells. Notably, T6SS-1 activity in host cells induces mitochondrial fragmentation and apoptosis. Our data suggest that Burkholderia has evolved a mechanism to silence T6SS-1 upon host entry to preserve its replicative niche.

microbiology↗