<HashMap><database>biostudies-other</database><scores/><additional><submitter>Li Y</submitter><funding>NIAID NIH HHS</funding><pagination>8716-21</pagination><full_dataset_link>https://www.ebi.ac.uk/biostudies/studies/S-EPMC3365160</full_dataset_link><abstract>Maintenance of membrane function is essential and regulated at the genomic, transcriptional, and translational levels. Bacterial pathogens have a variety of mechanisms to adapt their membrane in response to transmission between environment, vector, and human host. Using a well-characterized model of lipid A diversification (Francisella), we demonstrate temperature-regulated membrane remodeling directed by multiple alleles of the lipid A-modifying N-acyltransferase enzyme, LpxD. Structural analysis of the lipid A at environmental and host temperatures revealed that the LpxD1 enzyme added a 3-OH C18 acyl group at 37 °C (host), whereas the LpxD2 enzyme added a 3-OH C16 acyl group at 18 °C (environment). Mutational analysis of either of the individual Francisella lpxD genes altered outer membrane (OM) permeability, antimicrobial peptide, and antibiotic susceptibility, whereas only the lpxD1-null mutant was attenuated in mice and subsequently exhibited protection against a lethal WT challenge. Additionally, growth-temperature analysis revealed transcriptional control of the lpxD genes and posttranslational control of the LpxD1 and LpxD2 enzymatic activities. These results suggest a direct mechanism for LPS/lipid A-level modifications resulting in alterations of membrane fluidity, as well as integrity and may represent a general paradigm for bacterial membrane adaptation and virulence-state adaptation.</abstract><repository>biostudies-other</repository><data_source>Europe PMC</data_source><omics_type>Unknown</omics_type><volume>109(22)</volume><journal>Proceedings of the National Academy of Sciences of the United States of America</journal><pmcid>PMC3365160</pmcid><funding_grant_id>T32 AI007540</funding_grant_id><funding_grant_id>U54 AI057141</funding_grant_id><pubmed_authors>Pelletier MR</pubmed_authors><pubmed_authors>Goodlett DR</pubmed_authors><pubmed_authors>Ernst RK</pubmed_authors><pubmed_authors>Li Y</pubmed_authors><pubmed_authors>Raetz CR</pubmed_authors><pubmed_authors>Rasko DA</pubmed_authors><pubmed_authors>Leszyk JD</pubmed_authors><pubmed_authors>Scott AJ</pubmed_authors><pubmed_authors>Masoudi A</pubmed_authors><pubmed_authors>Powell DA</pubmed_authors><pubmed_authors>Shaffer SA</pubmed_authors><pubmed_authors>Wang X</pubmed_authors></additional><is_claimable>false</is_claimable><name>LPS remodeling is an evolved survival strategy for bacteria.</name><description>Maintenance of membrane function is essential and regulated at the genomic, transcriptional, and translational levels. Bacterial pathogens have a variety of mechanisms to adapt their membrane in response to transmission between environment, vector, and human host. Using a well-characterized model of lipid A diversification (Francisella), we demonstrate temperature-regulated membrane remodeling directed by multiple alleles of the lipid A-modifying N-acyltransferase enzyme, LpxD. Structural analysis of the lipid A at environmental and host temperatures revealed that the LpxD1 enzyme added a 3-OH C18 acyl group at 37 °C (host), whereas the LpxD2 enzyme added a 3-OH C16 acyl group at 18 °C (environment). Mutational analysis of either of the individual Francisella lpxD genes altered outer membrane (OM) permeability, antimicrobial peptide, and antibiotic susceptibility, whereas only the lpxD1-null mutant was attenuated in mice and subsequently exhibited protection against a lethal WT challenge. Additionally, growth-temperature analysis revealed transcriptional control of the lpxD genes and posttranslational control of the LpxD1 and LpxD2 enzymatic activities. These results suggest a direct mechanism for LPS/lipid A-level modifications resulting in alterations of membrane fluidity, as well as integrity and may represent a general paradigm for bacterial membrane adaptation and virulence-state adaptation.</description><dates><release>2012-01-01T00:00:00Z</release><publication>2012 May</publication><modification>2019-03-27T00:54:01Z</modification><creation>2019-03-27T00:54:01Z</creation></dates><accession>S-EPMC3365160</accession><cross_references><pubmed>22586119</pubmed><doi>10.1073/pnas.1202908109 </doi></cross_references></HashMap>