Porphyromonas gingivalis-nucleoside-diphosphate-kinase inhibits ATP-induced reactive-oxygen-species via P2X7 receptor / NADPH-oxidase signaling and contributes to persistence
ORCiD
David M. Ojcius: 0000-0003-1461-4495
Department
Biomedical Sciences
Document Type
Article
Publication Title
Cellular Microbiology
ISSN
1462-5814
Volume
15
Issue
6
DOI
10.1111/cmi.12089
First Page
961
Last Page
976
Publication Date
6-1-2013
Abstract
Ligation of P2X7 receptors with a 'danger signal', extracellular ATP (eATP), has recently been shown to result in production of intracellular reactive-oxygen-species (ROS) in macrophages. We show that primary gingival epithelial cells (GECs) produce sustained, robust cellular ROS upon stimulation by eATP. The induction of ROS was mediated by P2X7 receptor signalling coupled with NADPH-oxidase activation, as determined by pharmacological inhibition and RNA interference. Furthermore, Porphyromonas gingivalis, an oral opportunistic pathogen, upregulated the antioxidant glutathione response, modulated eATP-induced cytosolic and mitochondrial ROS generated through P2X7 /NADPH-oxidase interactome, and subsequently blocked oxidative stress in GECs via temporal secretion of a P. gingivalis effector, nucleoside-diphosphate-kinase (Ndk). An ndk-deficient P. gingivalis mutant lacked the ability to inhibit ROS production and persist intracellularly following eATP stimulation. Treatment with recombinant Ndk significantly diminished eATP-evoked ROS production. P. gingivalis infection elicited a strong, time-dependent increase in anti-oxidativemitochondrial UCP2 levels, whereas ndk-deficient mutant did not cause any change. The results reveal a novel signalling cascade that is tightly coupled with eATP signalling and ROS regulation. Ndk by P. gingivalis counteracts these antimicrobial signalling activities by secreting Ndk, thus contributing to successful persistence of the pathogen.
Recommended Citation
Choi, C. H.,
Spooner, R.,
DeGuzman, J.,
Koutouzis, T.,
Ojcius, D. M.,
&
Yilmaz, Ö.
(2013).
Porphyromonas gingivalis-nucleoside-diphosphate-kinase inhibits ATP-induced reactive-oxygen-species via P2X7 receptor / NADPH-oxidase signaling and contributes to persistence.
Cellular Microbiology, 15(6), 961–976.
DOI: 10.1111/cmi.12089
https://scholarlycommons.pacific.edu/dugoni-facarticles/131