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Isolation and Chemical Characterization of Lipid A from Gram-negative Bacteria
Published on: September 16, 2013
Outer membrane engineering through lipid A modification allows modulation of Burkholderia pseudomallei membrane
Thi Hai Au La1, Ian A McMillan1,2, Prashant Dahal1
1Pathogen Analysis and Translational Health Group, School of Life Sciences, University of Hawai'i at Mānoa, Honolulu, Hawaii, USA.
Abstract:
Burkholderia pseudomallei causes the tropical disease melioidosis. Host mortality primarily results from sepsis-related complications and associated cytokine release. Lipopolysaccharide (LPS), a major virulence factor and mediator of sepsis, is modified by B. pseudomallei in response to external stimuli. LpxO and PagL are lipid A-modifying proteins encoded by the B. pseudomallei genome to decrease recognition by host defenses. The contribution of lpxO and pagL-dependent lipid A modifications to outer membrane permeability and host response has not been clearly demonstrated. Mono-phosphorylated lipid A (MPLA) is known to maintain LPS-specific immunogenicity while reducing endotoxicity and has been used extensively as a vaccine adjuvant. Generation of MPLA can be mediated through LpxE. In this work, a panel of defined lipid A modification strains in B. pseudomallei was generated to study effects on bacterial physiology and cytokine expression in macrophages. Knockout of lpxO and pagL resulted in dehydroxylation and penta-acylation of lipid A, respectively, and reduced membrane permeability of B. pseudomallei. Expression of lpxE removed one phosphate group as measured by matrix-assisted laser desorption/ionization time-of-flight (MALDI-TOF) and caused increased membrane permeability. Outer membrane vesicles (OMVs) from the generated mutants were used to study the immunological effect of lipid A modifications on human monocyte-derived macrophages. Macrophages treated with OMVs isolated from lpxE-expressing strains showed significant increases in gene expression of proinflammatory cytokines tumor necrosis factor and interferon gamma compared to wild-type B. pseudomallei OMVs. These results show the importance of lipid A modifiers LpxO and PagL for B. pseudomallei physiology and highlight the immunostimulatory effect of lpxE-modified OMVs that could enhance OMV vaccine technology targeting melioidosis.
Insights
Investigating Burkholderia pseudomallei
Area of Science:
- * Microbiology
- * Immunology
- * Molecular Biology
Background:
- * Burkholderia pseudomallei causes melioidosis, a tropical disease with high mortality due to sepsis and cytokine release.
- * Lipopolysaccharide (LPS) is a key virulence factor modified by B. pseudomallei to evade host defenses.
- * Lipid A modification proteins LpxO and PagL's roles in outer membrane permeability and host response require further elucidation.
Purpose of the Study:
- * To investigate the physiological and immunological effects of lipid A modifications in B. pseudomallei.
- * To determine the impact of LpxO, PagL, and LpxE on bacterial membrane permeability and host cytokine expression.
- * To explore the potential of modified outer membrane vesicles (OMVs) for melioidosis vaccine development.
Main Methods:
- * Generation of defined lipid A modification mutant strains in B. pseudomallei.
- * Analysis of bacterial physiology, including outer membrane permeability.
- * Assessment of cytokine expression in human macrophages stimulated with B. pseudomallei OMVs.
Main Results:
- * Knockout of lpxO and pagL reduced B. pseudomallei membrane permeability.
- * Expression of lpxE led to dephosphorylation of lipid A and increased membrane permeability.
- * OMVs from lpxE-expressing strains significantly increased proinflammatory cytokine gene expression in macrophages.
Conclusions:
- * LpxO and PagL are crucial for B. pseudomallei physiology and membrane integrity.
- * LpxE-mediated lipid A modification enhances OMV immunogenicity.
- * Modified OMVs show promise for developing improved melioidosis vaccines.
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