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"Lipid A - metabolism"
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Functional convergence of hopanoids and sterols in membrane ordering
by
Sáenz, James Peter
,
Sezgin, Erdinc
,
Simons, Kai
in
Bacteria
,
Bacteria - metabolism
,
Bacteria - ultrastructure
2012
Liquid-ordered phases are one of two biochemically active membrane states, which until now were thought to be a unique consequence of the interactions between eukaryotic membrane lipids. The formation of a liquid-ordered phase depends crucially on the ordering properties of sterols. However, it is not known whether this capacity exists in organisms that lack sterols, such as bacteria. We show that diplopterol, the simplest bacterial hopanoid, has similar properties and that hopanoids are bacterial “sterol surrogates” with the ability to order saturated lipids and to form a liquid-ordered phase in model membranes. These observations suggest that the evolution of an ordered biochemically active liquid membrane could have evolved before the oxygenation of Earth’s surface and the emergence of sterols.
Journal Article
The lipooligosaccharide of the gut symbiont Akkermansia muciniphila exhibits a remarkable structure and TLR signaling capacity
by
de Vos, Willem M.
,
Garcia-Vello, Pilar
,
Tytgat, Hanne L. P.
in
140/131
,
631/250/347
,
631/326/41/2533
2024
The cell-envelope of Gram-negative bacteria contains endotoxic lipopolysaccharides (LPS) that are recognized by the innate immune system via Toll-Like Receptors (TLRs). The intestinal mucosal symbiont
Akkermansia muciniphila
is known to confer beneficial effects on the host and has a Gram-negative architecture. Here we show that
A. muciniphila
LPS lacks the O-polysaccharide repeating unit, with the resulting lipooligosaccharide (LOS) having unprecedented structural and signaling properties. The LOS consists of a complex glycan chain bearing two distinct undeca- and hexadecasaccharide units each containing three 2-keto-3-deoxy-D-
manno
-octulosonic acid (Kdo) residues. The lipid A moiety appears as a mixture of differently phosphorylated and acylated species and carries either linear or branched acyl moieties. Peritoneal injection of the LOS in mice increased higher gene expression of liver TLR2 than TLR4 (100-fold) and induced high IL-10 gene expression.
A. muciniphila
LOS was found to signal both through TLR4 and TLR2, whereas lipid A only induced TLR2 in a human cell line. We propose that the unique structure of the
A. muciniphila
LOS allows interaction with TLR2, thus generating an anti-inflammatory response as to compensate for the canonical inflammatory signaling associated with LOS and TLR4, rationalizing its beneficial host interaction.
Here, the authors characterize the structure of the Lipooligosaccharide of the gut symbiont
Akkermansia muciniphila
showing unique features and TLR4 and TLR2 signaling capacity, which underscore the beneficial properties of this bacterium.
Journal Article
Inflammatory caspases are innate immune receptors for intracellular LPS
2014
The murine caspase-11 non-canonical inflammasome responds to various bacterial infections. Caspase-11 activation-induced pyroptosis, in response to cytoplasmic lipopolysaccharide (LPS), is critical for endotoxic shock in mice. The mechanism underlying cytosolic LPS sensing and the responsible pattern recognition receptor are unknown. Here we show that human monocytes, epithelial cells and keratinocytes undergo necrosis upon cytoplasmic delivery of LPS. LPS-induced cytotoxicity was mediated by human caspase-4 that could functionally complement murine caspase-11. Human caspase-4 and the mouse homologue caspase-11 (hereafter referred to as caspase-4/11) and also human caspase-5, directly bound to LPS and lipid A with high specificity and affinity. LPS associated with endogenous caspase-11 in pyroptotic cells. Insect-cell purified caspase-4/11 underwent oligomerization upon LPS binding, resulting in activation of the caspases. Underacylated lipid IVa and lipopolysaccharide from
Rhodobacter sphaeroides
(LPS-RS) could bind to caspase-4/11 but failed to induce their oligomerization and activation. LPS binding was mediated by the CARD domain of the caspase. Binding-deficient CARD-domain point mutants did not respond to LPS with oligomerization or activation and failed to induce pyroptosis upon LPS electroporation or bacterial infections. The function of caspase-4/5/11 represents a new mode of pattern recognition in immunity and also an unprecedented means of caspase activation.
Caspase-4 and caspase-11 are shown to be the direct sensors for cytoplasmic lipopolysaccharide in humans and mice, respectively, mediating inflammatory cell death in intracellular bacterial infection.
Sensing role for caspases in innate immunity
A 'non-canonical' innate immune pathway, independent of Toll-like receptor 4 but involving caspase-11, was recently discovered in mice, where it acts to recognize lipopolysaccharide (LPS) from pathogenic bacteria. Here Feng Shao and colleagues investigate this pathway and a similar one in humans. They find that caspase-11 and caspase-4 are the direct sensors for cytoplasmic LPS in mice and humans, respectively, mediating inflammatory cell death in intracellular bacterial infection.
Journal Article
Hopanoids as functional analogues of cholesterol in bacterial membranes
by
Simons, Kai
,
Bradley, Alexander S.
,
Broda, Martyna
in
Bacteria
,
Biological Sciences
,
Biological Transport
2015
The functionality of cellular membranes relies on the molecular order imparted by lipids. In eukaryotes, sterols such as cholesterol modulate membrane order, yet they are not typically found in prokaryotes. The structurally similar bacterial hopanoids exhibit similar ordering properties as sterols in vitro, but their exact physiological role in living bacteria is relatively uncharted. We present evidence that hopanoids interact with glycolipids in bacterial outer membranes to form a highly ordered bilayer in a manner analogous to the interaction of sterols with sphingolipids in eukaryotic plasma membranes. Furthermore, multidrug transport is impaired in a hopanoid-deficient mutant of the gram-negativeMethylobacterium extorquens, which introduces a link between membrane order and an energy-dependent, membrane-associated function in prokaryotes. Thus, we reveal a convergence in the architecture of bacterial and eukaryotic membranes and implicate the biosynthetic pathways of hopanoids and other order-modulating lipids as potential targets to fight pathogenic multidrug resistance.
Journal Article
Structure of the essential inner membrane lipopolysaccharide–PbgA complex
2020
Lipopolysaccharide (LPS) resides in the outer membrane of Gram-negative bacteria where it is responsible for barrier function
1
,
2
. LPS can cause death as a result of septic shock, and its lipid A core is the target of polymyxin antibiotics
3
,
4
. Despite the clinical importance of polymyxins and the emergence of multidrug resistant strains
5
, our understanding of the bacterial factors that regulate LPS biogenesis is incomplete. Here we characterize the inner membrane protein PbgA and report that its depletion attenuates the virulence of
Escherichia coli
by reducing levels of LPS and outer membrane integrity. In contrast to previous claims that PbgA functions as a cardiolipin transporter
6
–
9
, our structural analyses and physiological studies identify a lipid A-binding motif along the periplasmic leaflet of the inner membrane. Synthetic PbgA-derived peptides selectively bind to LPS in vitro and inhibit the growth of diverse Gram-negative bacteria, including polymyxin-resistant strains. Proteomic, genetic and pharmacological experiments uncover a model in which direct periplasmic sensing of LPS by PbgA coordinates the biosynthesis of lipid A by regulating the stability of LpxC, a key cytoplasmic biosynthetic enzyme
10
–
12
. In summary, we find that PbgA has an unexpected but essential role in the regulation of LPS biogenesis, presents a new structural basis for the selective recognition of lipids, and provides opportunities for future antibiotic discovery.
Structural and physiological studies show that the inner membrane protein PbgA is a crucial sensor of lipopolysaccharide (LPS) and regulates the activity of the LPS biosynthesis enzyme LpxC.
Journal Article
Phospholipid retention in the absence of asymmetry strengthens the outer membrane permeability barrier to last-resort antibiotics
by
Powers, Matthew J.
,
Trent, M. Stephen
in
Acinetobacter baumannii - genetics
,
Acinetobacter baumannii - metabolism
,
Anchors
2018
The outer membrane of Gram-negative bacteria is a critical barrier that prevents entry of noxious compounds. Integral to this functionality is the presence of lipopolysaccharide (LPS) or lipooligosaccharide (LOS), a molecule that is located exclusively in the outer leaflet of the outer membrane. Its lipid anchor, lipid A, is a glycolipid whose hydrophobicity and net negative charge are primarily responsible for the robustness of the membrane. Because of this, lipid A is a hallmark of Gram-negative physiology and is generally essential for survival. Rare exceptions have been described, including Acinetobacter baumannii, which can survive in the absence of lipid A, albeit with significant growth and membrane permeability defects. Here, we show by an evolution experiment that LOS-deficient A. baumannii can rapidly improve fitness over the course of only 120 generations. We identified two factors which negatively contribute to fitness in the absence of LOS, Mla and PldA. These proteins are involved in glycerophospholipid transport (Mla) and lipid degradation (PldA); both are active only on mislocalized, surface-exposed glycerophospholipids. Elimination of these two mechanisms was sufficient to cause a drastic fitness improvement in LOS-deficient A. baumannii. The LOS-deficient double mutant grows as robustly as LOS-positive wild-type bacteriawhile remaining resistant to the last-resort polymyxin antibiotics. These data provide strong biological evidence for the directionality of Mla-mediated glycerophospholipid transport in Gram-negative bacteria and furthers our knowledge of asymmetry-maintenance mechanisms in the context of the outer membrane barrier.
Journal Article
Structural basis of species-specific endotoxin sensing by innate immune receptor TLR4/MD-2
by
Miyake, Kensuke
,
Fukase, Koichi
,
Shimizu, Toshiyuki
in
agonists
,
analogs & derivatives
,
Animals
2012
Lipopolysaccharide (LPS), also known as endotoxin, activates the innate immune response through toll-like receptor 4 (TLR4) and its coreceptor, MD-2. MD-2 has a unique hydrophobic cavity that directly binds to lipid A, the active center of LPS. Tetraacylated lipid IVa, a synthetic lipid A precursor, acts as a weak agonist to mouse TLR4/MD-2, but as an antagonist to human TLR4/MD-2. However, it remains unclear as to how LPS and lipid IVa show agonistic or antagonistic activities in a species-specific manner. The present study reports the crystal structures of mouse TLR4/MD-2/LPS and TLR4/MD-2/lipid IVa complexes at 2.5 and 2.7 Å resolutions, respectively. Mouse TLR4/MD-2/LPS exhibited an agonistic \"m\"-shaped 2:2:2 complex similar to the human TLR4/MD-2/LPS complex. Mouse TLR4/MD-2/lipid IVa complex also showed an agonistic structural feature, exhibiting architecture similar to the 2:2:2 complex. Remarkably, lipid IVa in the mouse TLR4/MD-2 complex occupied nearly the same space as LPS, although lipid IVa lacked the two acyl chains. Human MD-2 binds lipid IVa in an antagonistic manner completely differently from the way mouse MD-2 does. Together, the results provide structural evidence of the agonistic property of lipid IVa on mouse TLR4/MD-2 and deepen understanding of the ligand binding and dimerization mechanism by the structurally diverse LPS variants.
Journal Article
Structure of a lipid A phosphoethanolamine transferase suggests how conformational changes govern substrate binding
by
Jarvis, Gary A.
,
Phillips, Nancy J.
,
John, Constance M.
in
Amino Acid Sequence
,
Bacteria
,
Bacterial diseases
2017
Multidrug-resistant (MDR) gram-negative bacteria have increased the prevalence of fatal sepsis in modern times. Colistin is a cationic antimicrobial peptide (CAMP) antibiotic that permeabilizes the bacterial outer membrane (OM) and has been used to treat these infections. The OM outer leaflet is comprised of endotoxin containing lipid A, which can be modified to increase resistance to CAMPs and prevent clearance by the innate immune response. One type of lipid A modification involves the addition of phosphoethanolamine to the 1 and 4′ headgroup positions by phosphoethanolamine transferases. Previous structural work on a truncated form of this enzyme suggested that the full-length protein was required for correct lipid substrate binding and catalysis. We now report the crystal structure of a full-length lipid A phosphoethanolamine transferase from Neisseria meningitidis, determined to 2.75-Å resolution. The structure reveals a previously uncharacterized helical membrane domain and a periplasmic facing soluble domain. The domains are linked by a helix that runs along the membrane surface interacting with the phospholipid head groups. Two helices located in a periplasmic loop between two transmembrane helices contain conserved charged residues and are implicated in substrate binding. Intrinsic fluorescence, limited proteolysis, and molecular dynamics studies suggest the protein may sample different conformational states to enable the binding of two very different- sized lipid substrates. These results provide insights into the mechanism of endotoxin modification and will aid a structure-guided rational drug design approach to treating multidrug-resistant bacterial infections.
Journal Article
LPS Remodeling Triggers Formation of Outer Membrane Vesicles in Salmonella
by
Wine, Eytan
,
Elhenawy, Wael
,
Haurat, M. Florencia
in
Bacteria
,
Bacterial Proteins - metabolism
,
Carboxylic Ester Hydrolases - metabolism
2016
Outer membrane vesicles (OMV) are proposed to mediate multiple functions during pathogenesis and symbiosis. However, the mechanisms responsible for OMV formation remain poorly understood. It has been shown in eukaryotic membranes that lipids with an inverted-cone shape favor the formation of positive membrane curvatures. Based on these studies, we formulated the hypothesis that lipid A deacylation might impose shape modifications that result in the curvature of the outer membrane (OM) and subsequent OMV formation. We tested the effect of lipid A remodeling on OMV biogenesis employing Salmonella enterica serovar Typhimurium as a model organism. Expression of the lipid A deacylase PagL resulted in increased vesiculation, without inducing an envelope stress response. Mass spectrometry analysis revealed profound differences in the patterns of lipid A in OM and OMV, with accumulation of deacylated lipid A forms exclusively in OMV. OMV biogenesis by intracellular bacteria upon macrophage infection was drastically reduced in a pagL mutant strain. We propose a novel mechanism for OMV biogenesis requiring lipid A deacylation in the context of a multifactorial process that involves the orchestrated remodeling of the outer membrane. IMPORTANCE The role of lipid remodeling in vesiculation is well documented in eukaryotes. Similarly, bacteria produce membrane-derived vesicles; however, the molecular mechanisms underlying their production are yet to be determined. In this work, we investigated the role of outer membrane remodeling in OMV biogenesis in S . Typhimurium. We showed that the expression of the lipid A deacylase PagL results in overvesiculation with deacylated lipid A accumulation exclusively in OMV. An S . Typhimurium Δ pagL strain showed a significant reduction in intracellular OMV secretion relative to the wild-type strain. Our results suggest a novel mechanism for OMV biogenesis that involves outer membrane remodeling through lipid A modification. Understanding how OMV are produced by bacteria is important to advance our understanding of the host-pathogen interactions. The role of lipid remodeling in vesiculation is well documented in eukaryotes. Similarly, bacteria produce membrane-derived vesicles; however, the molecular mechanisms underlying their production are yet to be determined. In this work, we investigated the role of outer membrane remodeling in OMV biogenesis in S . Typhimurium. We showed that the expression of the lipid A deacylase PagL results in overvesiculation with deacylated lipid A accumulation exclusively in OMV. An S . Typhimurium Δ pagL strain showed a significant reduction in intracellular OMV secretion relative to the wild-type strain. Our results suggest a novel mechanism for OMV biogenesis that involves outer membrane remodeling through lipid A modification. Understanding how OMV are produced by bacteria is important to advance our understanding of the host-pathogen interactions.
Journal Article
Fortifying the barrier: the impact of lipid A remodelling on bacterial pathogenesis
2013
Key Points
Lipid A is the bioactive outer-membrane anchor of the major surface molecule, lipopolysaccharide (LPS), of Gram-negative bacteria. Although the synthetic pathway of lipid A is highly conserved, most bacteria encode enzymes that alter the basic structure of this LPS component.
Lipid A modifications affect pathogenesis in several ways to allow bacteria to circumvent the host immune system. Some remodelling mechanisms alter the charge of the outer membrane and thereby influence the association of host molecules such as cationic antimicrobial peptides (CAMPs), whereas others decrease binding of the host innate immune receptor complex that is specific for lipid A (Toll-like receptor 4–MD2).
A balance between membrane integrity and lipid A modifications is important for survival of a bacterium in the diverse environments that it encounters, and thus many lipid A modification enzymes are regulated transcriptionally and/or post-translationally, by mechanisms such as two-component systems, small RNAs, peptide feedback loops and substrate availability.
Gram-negative bacteria have evolved diverse lipid A-remodelling schemes that contribute to adaptation for specific niches. These schemes are exemplified by the complex regulation of lipid A modification in
Salmonella enterica
subsp.
enterica
serovar Typhimurium, the extensive evasion of the innate immune system by
Helicobacter pylori
, temperature-dependent alteration of lipid A in
Yersinia pestis
and
Francisella tularensis
, and CAMP resistance in
Vibrio cholerae
.
Host modification mechanisms affect the presence of bioactive lipid A. These range from covalent modifications that remove those segments of the molecule which are necessary for immune responsiveness, to sequestration of lipid A for eventual disposal.
Recent work has uncovered links between lipid A modification strategies and other physiological functions in bacteria, such as virulence factor activity, motility and toxin delivery.
Lipid A is the bioactive component of the Gram-negative outer membrane and is extensively remodelled to enable the bacterium to subvert the immune system of the host. Here, Needham and Trent describe the regulation of lipid A-modifying enzymes, the host defences that target lipid A and the strategies that bacterial pathogens use to avoid immune detection.
Gram-negative bacteria decorate their outermost surface structure, lipopolysaccharide, with elaborate chemical moieties, which effectively disguises them from immune surveillance and protects them from the onslaught of host defences. Many of these changes occur on the lipid A moiety of lipopolysaccharide, a component that is crucial for host recognition of Gram-negative infection. In this Review, we describe the regulatory mechanisms controlling lipid A modification and discuss the impact of modifications on pathogenesis, bacterial physiology and bacterial interactions with the host immune system.
Journal Article