Synthesis of sphingolipids impacts survival of Porphyromonas gingivalis and the presentation of surface polysaccharides

Bacteria alter the biophysical properties of their membrane lipids in response to environmental cues, such as shifts in pH or temperature. In essence, lipid composition determines membrane structure, which in turn influences many basic functions, such as transport, secretion, and signaling. Like oth...

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Main Authors: Zachary Daniel Moye, Kornelija Valiuskyte, Floyd Dewhirst, Frank Nichols, Mary Ellen Davey
Format: Article
Language:English
Published: Frontiers Media S.A. 2016-11-01
Series:Frontiers in Microbiology
Subjects:
Online Access:http://journal.frontiersin.org/Journal/10.3389/fmicb.2016.01919/full
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spelling doaj-c98abc070ad34405898014f3c005ff992020-11-24T20:55:12ZengFrontiers Media S.A.Frontiers in Microbiology1664-302X2016-11-01710.3389/fmicb.2016.01919236659Synthesis of sphingolipids impacts survival of Porphyromonas gingivalis and the presentation of surface polysaccharidesZachary Daniel Moye0Kornelija Valiuskyte1Floyd Dewhirst2Floyd Dewhirst3Frank Nichols4Mary Ellen Davey5University of FloridaUniversity of FloridaForsyth InstituteHarvard UniversityUniversity of ConnecticutUniversity of FloridaBacteria alter the biophysical properties of their membrane lipids in response to environmental cues, such as shifts in pH or temperature. In essence, lipid composition determines membrane structure, which in turn influences many basic functions, such as transport, secretion, and signaling. Like other members of the phylum Bacteroidetes, the oral anaerobe Porphyromonas gingivalis possesses the ability to synthesize a variety of novel membrane lipids, including species of dihydroceramides that are distinct, yet similar in structure to sphingolipids produced by the human host. The role of dihydroceramides in the physiology and pathogenic potential of the human microbiota is only beginning to be explored; yet there is increasing data indicating that these lipids play a role in human diseases, such as periodontitis and multiple sclerosis. Here, we report on the identification of a gene (PG1780) in the chromosome of P. gingivalis strain W83 encoding a putative serine palmitoyltransferse, the enzyme that catalyzes the first step in sphingolipid biosynthesis. While we were able to detect dihydroceramides in whole lipid extracts of P. gingivalis cells as well as crude preparations of outer membrane vesicles, sphingolipids were absent in the PG1780 mutant strain. Moreover, we show that the synthesis of sphingolipids plays an essential role in the long-term survival of the organism as well as its resistance to oxidative stress. Further, a PG1780 mutant displayed much lower activity of cell-associated arginine and lysine gingipains, yet slightly higher activity in the corresponding culture supernates, which we hypothesize is due to altered membrane properties and anchoring of these proteases to the cell surface. In addition, we determined that sphingolipid production is critical to the presentation of surface polysaccharides, with the mutant strain displaying less K-antigen capsule and more anionic polysaccharide (APS). Overall, we have discovered that, in addition to their role in pathogenicity, the synthesis of sphingolipids is critical to the cellular homeostasis and persistence of this important dental pathogen.http://journal.frontiersin.org/Journal/10.3389/fmicb.2016.01919/fullPersistencestress responseCapsular PolysaccharidesSphingolipid biosynthesisDihydroceramides
collection DOAJ
language English
format Article
sources DOAJ
author Zachary Daniel Moye
Kornelija Valiuskyte
Floyd Dewhirst
Floyd Dewhirst
Frank Nichols
Mary Ellen Davey
spellingShingle Zachary Daniel Moye
Kornelija Valiuskyte
Floyd Dewhirst
Floyd Dewhirst
Frank Nichols
Mary Ellen Davey
Synthesis of sphingolipids impacts survival of Porphyromonas gingivalis and the presentation of surface polysaccharides
Frontiers in Microbiology
Persistence
stress response
Capsular Polysaccharides
Sphingolipid biosynthesis
Dihydroceramides
author_facet Zachary Daniel Moye
Kornelija Valiuskyte
Floyd Dewhirst
Floyd Dewhirst
Frank Nichols
Mary Ellen Davey
author_sort Zachary Daniel Moye
title Synthesis of sphingolipids impacts survival of Porphyromonas gingivalis and the presentation of surface polysaccharides
title_short Synthesis of sphingolipids impacts survival of Porphyromonas gingivalis and the presentation of surface polysaccharides
title_full Synthesis of sphingolipids impacts survival of Porphyromonas gingivalis and the presentation of surface polysaccharides
title_fullStr Synthesis of sphingolipids impacts survival of Porphyromonas gingivalis and the presentation of surface polysaccharides
title_full_unstemmed Synthesis of sphingolipids impacts survival of Porphyromonas gingivalis and the presentation of surface polysaccharides
title_sort synthesis of sphingolipids impacts survival of porphyromonas gingivalis and the presentation of surface polysaccharides
publisher Frontiers Media S.A.
series Frontiers in Microbiology
issn 1664-302X
publishDate 2016-11-01
description Bacteria alter the biophysical properties of their membrane lipids in response to environmental cues, such as shifts in pH or temperature. In essence, lipid composition determines membrane structure, which in turn influences many basic functions, such as transport, secretion, and signaling. Like other members of the phylum Bacteroidetes, the oral anaerobe Porphyromonas gingivalis possesses the ability to synthesize a variety of novel membrane lipids, including species of dihydroceramides that are distinct, yet similar in structure to sphingolipids produced by the human host. The role of dihydroceramides in the physiology and pathogenic potential of the human microbiota is only beginning to be explored; yet there is increasing data indicating that these lipids play a role in human diseases, such as periodontitis and multiple sclerosis. Here, we report on the identification of a gene (PG1780) in the chromosome of P. gingivalis strain W83 encoding a putative serine palmitoyltransferse, the enzyme that catalyzes the first step in sphingolipid biosynthesis. While we were able to detect dihydroceramides in whole lipid extracts of P. gingivalis cells as well as crude preparations of outer membrane vesicles, sphingolipids were absent in the PG1780 mutant strain. Moreover, we show that the synthesis of sphingolipids plays an essential role in the long-term survival of the organism as well as its resistance to oxidative stress. Further, a PG1780 mutant displayed much lower activity of cell-associated arginine and lysine gingipains, yet slightly higher activity in the corresponding culture supernates, which we hypothesize is due to altered membrane properties and anchoring of these proteases to the cell surface. In addition, we determined that sphingolipid production is critical to the presentation of surface polysaccharides, with the mutant strain displaying less K-antigen capsule and more anionic polysaccharide (APS). Overall, we have discovered that, in addition to their role in pathogenicity, the synthesis of sphingolipids is critical to the cellular homeostasis and persistence of this important dental pathogen.
topic Persistence
stress response
Capsular Polysaccharides
Sphingolipid biosynthesis
Dihydroceramides
url http://journal.frontiersin.org/Journal/10.3389/fmicb.2016.01919/full
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