Intra- and Interspecies Regulation of Gene Expression by Actinobacillus actinomycetemcomitansLuxS

KP Fong, WO Chung, RJ Lamont… - Infection and …, 2001 - Am Soc Microbiol
KP Fong, WO Chung, RJ Lamont, DR Demuth
Infection and immunity, 2001Am Soc Microbiol
The cell density-dependent control of gene expression is employed by many bacteria for
regulating a variety of physiological functions, including the generation of bioluminescence,
sporulation, formation of biofilms, and the expression of virulence factors. Although
periodontal organisms do not appear to secrete acyl-homoserine lactone signals, several
species, eg, Porphyromonas gingivalis, Prevotella intermedia, and Fusobacterium
nucleatum, have recently been shown to secrete a signal related to the autoinducer II (AI-2) …
Abstract
The cell density-dependent control of gene expression is employed by many bacteria for regulating a variety of physiological functions, including the generation of bioluminescence, sporulation, formation of biofilms, and the expression of virulence factors. Although periodontal organisms do not appear to secrete acyl-homoserine lactone signals, several species, e.g., Porphyromonas gingivalis,Prevotella intermedia, and Fusobacterium nucleatum, have recently been shown to secrete a signal related to the autoinducer II (AI-2) of the signal system 2 pathway inVibrio harveyi. Here, we report that the periodontal pathogen Actinobacillus actinomycetemcomitans expresses a homolog of V. harveyi luxS and secretes an AI-2-like signal. Cell-free conditioned medium from A. actinomycetemcomitans or from a recombinant Escherichia coli strain (E. coli AIS) expressing A. actinomycetemcomitans luxS induced luminescence in V. harveyi BB170 >200-fold over controls. AI-2 levels peaked in mid-exponential-phase cultures of A. actinomycetemcomitans and were significantly reduced in late-log- and stationary-phase cultures. Incubation of early-log-phaseA. actinomycetemcomitans cells with conditioned medium from A. actinomycetemcomitans or from E. coli AIS resulted in a threefold induction of leukotoxic activity and a concomitant increase in leukotoxin polypeptide. In contrast, no increase in leukotoxin expression occurred when cells were exposed to sterile medium or to conditioned broth from E. coli AIS, a recombinant strain in whichluxS was insertionally inactivated. A. actinomycetemcomitans AI-2 also induced expression ofafuA, encoding a periplasmic iron transport protein, approximately eightfold, suggesting that LuxS-dependent signaling may play a role in the regulation of iron acquisition by A. actinomycetemcomitans. Finally, A. actinomycetemcomitans AI-2 added in transcomplemented a luxS knockout mutation in P. gingivalis by modulating the expression of theluxS-regulated genes uvrB andhasF in this organism. Together, these results suggest that LuxS-dependent signaling may modulate aspects of virulence and the uptake of iron by A. actinomycetemcomitans and induce responses in other periodontal organisms in mixed-species oral biofilm.
American Society for Microbiology