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1.
Cell ; 186(13): 2839-2852.e21, 2023 06 22.
Article in English | MEDLINE | ID: mdl-37352836

ABSTRACT

The gut microbiome is complex, raising questions about the role of individual strains in the community. Here, we address this question by constructing variants of a complex defined community in which we eliminate strains that occupy the bile acid 7α-dehydroxylation niche. Omitting Clostridium scindens (Cs) and Clostridium hylemonae (Ch) eliminates secondary bile acid production and reshapes the community in a highly specific manner: eight strains change in relative abundance by >100-fold. In single-strain dropout communities, Cs and Ch reach the same relative abundance and dehydroxylate bile acids to a similar extent. However, Clostridium sporogenes increases >1,000-fold in the ΔCs but not ΔCh dropout, reshaping the pool of microbiome-derived phenylalanine metabolites. Thus, strains that are functionally redundant within a niche can have widely varying impacts outside the niche, and a strain swap can ripple through the community in an unpredictable manner, resulting in a large impact on an unrelated community-level phenotype.


Subject(s)
Gastrointestinal Microbiome , Bile Acids and Salts , Clostridiales
2.
Nature ; 575(7781): 224-228, 2019 11.
Article in English | MEDLINE | ID: mdl-31666699

ABSTRACT

The human gastrointestinal tract consists of a dense and diverse microbial community, the composition of which is intimately linked to health. Extrinsic factors such as diet and host immunity are insufficient to explain the constituents of this community, and direct interactions between co-resident microorganisms have been implicated as important drivers of microbiome composition. The genomes of bacteria derived from the gut microbiome contain several pathways that mediate contact-dependent interbacterial antagonism1-3. Many members of the Gram-negative order Bacteroidales encode the type VI secretion system (T6SS), which facilitates the delivery of toxic effector proteins into adjacent cells4,5. Here we report the occurrence of acquired interbacterial defence (AID) gene clusters in Bacteroidales species that reside within the human gut microbiome. These clusters encode arrays of immunity genes that protect against T6SS-mediated intra- and inter-species bacterial antagonism. Moreover, the clusters reside on mobile elements, and we show that their transfer is sufficient to confer resistance to toxins in vitro and in gnotobiotic mice. Finally, we identify and validate the protective capability of a recombinase-associated AID subtype (rAID-1) that is present broadly in Bacteroidales genomes. These rAID-1 gene clusters have a structure suggestive of active gene acquisition and include predicted immunity factors of toxins derived from diverse organisms. Our data suggest that neutralization of contact-dependent interbacterial antagonism by AID systems helps to shape human gut microbiome ecology.


Subject(s)
Bacteroidetes , Gastrointestinal Microbiome , Gastrointestinal Tract/microbiology , Microbial Interactions , Type VI Secretion Systems/antagonists & inhibitors , Animals , Bacteroidetes/genetics , Bacteroidetes/immunology , Female , Gastrointestinal Microbiome/immunology , Gastrointestinal Tract/immunology , Genes, Bacterial/genetics , Humans , Mice , Microbial Interactions/genetics , Microbial Interactions/immunology , Multigene Family/genetics , Type VI Secretion Systems/genetics , Type VI Secretion Systems/immunology
3.
Proc Natl Acad Sci U S A ; 119(48): e2202934119, 2022 11 29.
Article in English | MEDLINE | ID: mdl-36417437

ABSTRACT

The molecular mechanisms by which dietary fruits and vegetables confer cardiometabolic benefits remain poorly understood. Historically, these beneficial properties have been attributed to the antioxidant activity of flavonoids. Here, we reveal that the host metabolic benefits associated with flavonoid consumption hinge, in part, on gut microbial metabolism. Specifically, we show that a single gut microbial flavonoid catabolite, 4-hydroxyphenylacetic acid (4-HPAA), is sufficient to reduce diet-induced cardiometabolic disease (CMD) burden in mice. The addition of flavonoids to a high fat diet heightened the levels of 4-HPAA within the portal plasma and attenuated obesity, and continuous delivery of 4-HPAA was sufficient to reverse hepatic steatosis. The antisteatotic effect was shown to be associated with the activation of AMP-activated protein kinase α (AMPKα). In a large survey of healthy human gut metagenomes, just over one percent contained homologs of all four characterized bacterial genes required to catabolize flavonols into 4-HPAA. Our results demonstrate the gut microbial contribution to the metabolic benefits associated with flavonoid consumption and underscore the rarity of this process in human gut microbial communities.


Subject(s)
Fatty Liver , Gastrointestinal Microbiome , Humans , Mice , Animals , Polyphenols/pharmacology , Gastrointestinal Microbiome/physiology , Fatty Liver/prevention & control , Obesity/metabolism , Diet, High-Fat/adverse effects , Flavonoids/pharmacology
4.
Infect Immun ; 91(9): e0025523, 2023 09 14.
Article in English | MEDLINE | ID: mdl-37638725

ABSTRACT

Salmonella enterica serovar Typhimurium is a leading cause of gastroenteritis worldwide and a deadly pathogen in children, immunocompromised patients, and the elderly. Salmonella induces innate immune responses through the NLRC4 inflammasome, which has been demonstrated to have distinct roles during systemic and mucosal detections of flagellin and non-flagellin molecules. We hypothesized that NLRC4 recognition of Salmonella flagellin is the dominant protective pathway during infection. To test this hypothesis, we used wild-type, flagellin-deficient, and flagellin-overproducing Salmonella to establish the role of flagellin in mediating NLRC4-dependent host resistance during systemic and mucosal infections in mice. We observed that during the systemic phase of infection, Salmonella efficiently evades NLRC4-mediated innate immunity. During mucosal Salmonella infection, flagellin recognition by the NLRC4 inflammasome pathway is the dominant mediator of protective innate immunity. Deletion of flgM results in constitutive expression of flagellin and severely limits systemic and mucosal Salmonella infections in an NLRC4 inflammasome-dependent manner. These data establish that recognition of Salmonella's flagellin by the NLRC4 inflammasome during mucosal infection is the dominant innate protective pathway for host resistance against the enteric pathogen and that FlgM-mediated evasion of the NLRC4 inflammasome enhances virulence and intestinal tissue destruction.


Subject(s)
Gastroenteritis , Inflammasomes , Animals , Mice , Flagellin/genetics , Immunity, Innate , Inflammasomes/genetics , Salmonella typhimurium
5.
Proc Natl Acad Sci U S A ; 117(37): 22984-22991, 2020 09 15.
Article in English | MEDLINE | ID: mdl-32868431

ABSTRACT

Immune evasion through membrane remodeling is a hallmark of Yersinia pestis pathogenesis. Yersinia remodels its membrane during its life cycle as it alternates between mammalian hosts (37 °C) and ambient (21 °C to 26 °C) temperatures of the arthropod transmission vector or external environment. This shift in growth temperature induces changes in number and length of acyl groups on the lipid A portion of lipopolysaccharide (LPS) for the enteric pathogens Yersinia pseudotuberculosis (Ypt) and Yersinia enterocolitica (Ye), as well as the causative agent of plague, Yersinia pestis (Yp). Addition of a C16 fatty acid (palmitate) to lipid A by the outer membrane acyltransferase enzyme PagP occurs in immunostimulatory Ypt and Ye strains, but not in immune-evasive Yp Analysis of Yp pagP gene sequences identified a single-nucleotide polymorphism that results in a premature stop in translation, yielding a truncated, nonfunctional enzyme. Upon repair of this polymorphism to the sequence present in Ypt and Ye, lipid A isolated from a Yp pagP+ strain synthesized two structures with the C16 fatty acids located in acyloxyacyl linkage at the 2' and 3' positions of the diglucosamine backbone. Structural modifications were confirmed by mass spectrometry and gas chromatography. With the genotypic restoration of PagP enzymatic activity in Yp, a significant increase in lipid A endotoxicity mediated through the MyD88 and TRIF/TRAM arms of the TLR4-signaling pathway was observed. Discovery and repair of an evolutionarily lost lipid A modifying enzyme provides evidence of lipid A as a crucial determinant in Yp infectivity, pathogenesis, and host innate immune evasion.


Subject(s)
Acyltransferases/immunology , Immune Evasion/immunology , Immunity, Innate/immunology , Lipid A/immunology , Yersinia pestis/immunology , Animals , Biological Evolution , Cell Line , Cell Line, Tumor , HEK293 Cells , Humans , Leukocytes, Mononuclear/immunology , Lipopolysaccharides/immunology , Mice , Mice, Inbred BALB C , Mice, Inbred C57BL , Polymorphism, Single Nucleotide/immunology , THP-1 Cells/immunology , U937 Cells , Yersinia pseudotuberculosis/immunology
6.
PLoS Pathog ; 16(1): e1008251, 2020 01.
Article in English | MEDLINE | ID: mdl-31961914

ABSTRACT

Patients with cystic fibrosis (CF) have altered fecal microbiomes compared to those of healthy controls. The magnitude of this dysbiosis correlates with measures of CF gastrointestinal (GI) disease, including GI inflammation and nutrient malabsorption. However, whether this dysbiosis is caused by mutations in the CFTR gene, the underlying defect in CF, or whether CF-associated dysbiosis augments GI disease was not clear. To test the relationships between CFTR dysfunction, microbes, and intestinal health, we established a germ-free (GF) CF mouse model and demonstrated that CFTR gene mutations are sufficient to alter the GI microbiome. Furthermore, flow cytometric analysis demonstrated that colonized CF mice have increased mesenteric lymph node and spleen TH17+ cells compared with non-CF mice, suggesting that CFTR defects alter adaptive immune responses. Our findings demonstrate that CFTR mutations modulate both the host adaptive immune response and the intestinal microbiome.


Subject(s)
Cystic Fibrosis Transmembrane Conductance Regulator/genetics , Cystic Fibrosis/microbiology , Dysbiosis/microbiology , Gastrointestinal Microbiome , Animals , Bacteria/classification , Bacteria/genetics , Bacteria/isolation & purification , Cystic Fibrosis/genetics , Cystic Fibrosis/immunology , Cystic Fibrosis Transmembrane Conductance Regulator/immunology , Disease Models, Animal , Dysbiosis/genetics , Dysbiosis/immunology , Female , Humans , Intestines/immunology , Intestines/microbiology , Male , Mice , Mice, Inbred C57BL , Mutation
7.
J Biol Chem ; 290(21): 13440-53, 2015 May 22.
Article in English | MEDLINE | ID: mdl-25837248

ABSTRACT

Lipid A in LPS activates innate immunity through the Toll-like receptor 4 (TLR4)-MD-2 complex on host cells. Variation in lipid A has significant consequences for TLR4 activation and thus may be a means by which Gram-negative bacteria modulate host immunity. However, although even minor changes in lipid A structure have been shown to affect downstream immune responses, the mechanism by which the TLR4-MD-2 receptor complex recognizes these changes is not well understood. We previously showed that strain BP338 of the human pathogen Bordetella pertussis, the causative agent of whooping cough, modifies its lipid A by the addition of glucosamine moieties that promote TLR4 activation in human, but not mouse, macrophages. Using site-directed mutagenesis and an NFκB reporter assay screen, we have identified several charged amino acid residues in TLR4 and MD-2 that are important for these species-specific responses; some of these are novel for responses to penta-acyl B. pertussis LPS, and their mutation does not affect the response to hexa-acylated Escherichia coli LPS or tetra-acylated lipid IVA. We additionally show evidence that suggests that recognition of penta-acylated B. pertussis lipid A is dependent on uncharged amino acids in TLR4 and MD-2 and that this is true for both human and mouse TLR4-MD-2 receptors. Taken together, we have demonstrated that the TLR4-MD-2 receptor complex recognizes variation in lipid A molecules using multiple sites for receptor-ligand interaction and propose that host-specific immunity to a particular Gram-negative bacterium is, at least in part, mediated by very subtle tuning of one of the earliest interactions at the host-pathogen interface.


Subject(s)
Amino Acids/chemistry , Bordetella pertussis/immunology , Host Specificity/immunology , Lipid A/chemistry , Lipid A/immunology , Lymphocyte Antigen 96/metabolism , Toll-Like Receptor 4/metabolism , Amino Acids/immunology , Amino Acids/metabolism , Animals , Blotting, Western , Cells, Cultured , Glucosamine/metabolism , HEK293 Cells , Humans , Immunity, Innate/immunology , Lipid A/metabolism , Lymphocyte Antigen 96/genetics , Lymphocyte Antigen 96/immunology , Mice , Mutagenesis, Site-Directed , Mutation/genetics , Protein Conformation , Signal Transduction , Toll-Like Receptor 4/genetics , Toll-Like Receptor 4/immunology
8.
PLoS Pathog ; 8(10): e1002963, 2012.
Article in English | MEDLINE | ID: mdl-23071439

ABSTRACT

Although lipopolysaccharide (LPS) stimulation through the Toll-like receptor (TLR)-4/MD-2 receptor complex activates host defense against Gram-negative bacterial pathogens, how species-specific differences in LPS recognition impact host defense remains undefined. Herein, we establish how temperature dependent shifts in the lipid A of Yersinia pestis LPS that differentially impact recognition by mouse versus human TLR4/MD-2 dictate infection susceptibility. When grown at 37°C, Y. pestis LPS is hypo-acylated and less stimulatory to human compared with murine TLR4/MD-2. By contrast, when grown at reduced temperatures, Y. pestis LPS is more acylated, and stimulates cells equally via human and mouse TLR4/MD-2. To investigate how these temperature dependent shifts in LPS impact infection susceptibility, transgenic mice expressing human rather than mouse TLR4/MD-2 were generated. We found the increased susceptibility to Y. pestis for "humanized" TLR4/MD-2 mice directly paralleled blunted inflammatory cytokine production in response to stimulation with purified LPS. By contrast, for other Gram-negative pathogens with highly acylated lipid A including Salmonella enterica or Escherichia coli, infection susceptibility and the response after stimulation with LPS were indistinguishable between mice expressing human or mouse TLR4/MD-2. Thus, Y. pestis exploits temperature-dependent shifts in LPS acylation to selectively evade recognition by human TLR4/MD-2 uncovered with "humanized" TLR4/MD-2 transgenic mice.


Subject(s)
Lipopolysaccharides/immunology , Lymphocyte Antigen 96/metabolism , Plague/immunology , Salmonella Infections, Animal/immunology , Salmonella enterica/pathogenicity , Toll-Like Receptor 4/metabolism , Yersinia pestis/immunology , Yersinia pestis/pathogenicity , Acylation , Animals , Cell Line , Chromosomes, Artificial, Bacterial , Cytokines/biosynthesis , Escherichia coli/immunology , Escherichia coli/pathogenicity , Escherichia coli Infections/immunology , Escherichia coli Infections/microbiology , HEK293 Cells , Humans , Lipid A/chemistry , Lipid A/immunology , Lipopolysaccharides/chemistry , Lymphocyte Antigen 96/immunology , Mice , Mice, Inbred C57BL , Mice, Transgenic , Plague/microbiology , Salmonella Infections, Animal/microbiology , Salmonella enterica/immunology , Salmonella enterica/metabolism , Signal Transduction , Temperature , Toll-Like Receptor 4/immunology , Yersinia pestis/metabolism
10.
mBio ; 14(5): e0093723, 2023 Oct 31.
Article in English | MEDLINE | ID: mdl-37737636

ABSTRACT

IMPORTANCE: The key atherosclerotic TMAO originates from the initial gut microbial conversion of L-carnitine and other dietary compounds into TMA. Developing therapeutic strategies to block gut microbial TMA production needs a detailed understanding of the different production mechanisms and their relative contributions. Recently, we identified a two-step anaerobic pathway for TMA production from L-carnitine through initial conversion by some microbes into the intermediate γBB which is then metabolized by other microbes into TMA. Investigational studies of this pathway, however, are limited by the lack of single microbes harboring the whole pathway. Here, we engineered E. fergusonii strain to harbor the whole two-step pathway and optimized the expression through cloning a specific chaperone from the original host. Inoculating germ-free mice with this recombinant E. fergusonii is enough to raise serum TMAO to pathophysiological levels upon L-carnitine feeding. This engineered microbe will facilitate future studies investigating the contribution of this pathway to cardiovascular disease.


Subject(s)
Carnitine , Methylamines , Mice , Animals , Anaerobiosis , Disease Models, Animal , Carnitine/metabolism , Methylamines/metabolism , Metabolic Networks and Pathways/genetics , Choline/metabolism
11.
Cell Host Microbe ; 31(1): 18-32.e9, 2023 01 11.
Article in English | MEDLINE | ID: mdl-36549300

ABSTRACT

Recent studies show gut microbiota-dependent metabolism of dietary phenylalanine into phenylacetic acid (PAA) is critical in phenylacetylglutamine (PAGln) production, a metabolite linked to atherosclerotic cardiovascular disease (ASCVD). Accordingly, microbial enzymes involved in this transformation are of interest. Using genetic manipulation in selected microbes and monocolonization experiments in gnotobiotic mice, we identify two distinct gut microbial pathways for PAA formation; one is catalyzed by phenylpyruvate:ferredoxin oxidoreductase (PPFOR) and the other by phenylpyruvate decarboxylase (PPDC). PPFOR and PPDC play key roles in gut bacterial PAA production via oxidative and non-oxidative phenylpyruvate decarboxylation, respectively. Metagenomic analyses revealed a significantly higher abundance of both pathways in gut microbiomes of ASCVD patients compared with controls. The present studies show a role for these two divergent microbial catalytic strategies in the meta-organismal production of PAGln. Given the numerous links between PAGln and ASCVD, these findings will assist future efforts to therapeutically target PAGln formation in vivo.


Subject(s)
Cardiovascular Diseases , Gastrointestinal Microbiome , Mice , Animals , Glutamine
12.
mBio ; : e0133123, 2023 Nov 10.
Article in English | MEDLINE | ID: mdl-37947418

ABSTRACT

p-Cresol sulfate (pCS) and indoxyl sulfate (IS), gut microbiome-derived metabolites, are traditionally associated with cardiovascular disease (CVD) risks in the setting of impaired kidney function. While pharmacologic provision of pCS or IS can promote pro-thrombotic phenotypes, neither the microbial enzymes involved nor direct gut microbial production have been linked to CVD. Untargeted metabolomics was performed on a discovery cohort (n = 1,149) with relatively preserved kidney function, followed by stable isotope-dilution mass spectrometry quantification of pCS and IS in an independent validation cohort (n = 3,954). Genetic engineering of human commensals to produce p-cresol and indole gain-of-function and loss-of-function mutants, followed by colonization of germ-free mice, and studies on host thrombosis were performed. Systemic pCS and IS levels were independently associated with all-cause mortality. Both in vitro and within colonized germ-free mice p-cresol productions were recapitulated by collaboration of two organisms: a Bacteroides strain that converts tyrosine to 4-hydroxyphenylacetate, and a Clostridium strain that decarboxylates 4-hydroxyphenylacetate to p-cresol. We then engineered a single organism, Bacteroides thetaiotaomicron, to produce p-cresol, indole, or both metabolites. Colonizing germ-free mice with engineered strains, we show the gut microbial genes for p-cresol (hpdBCA) and indole (tryptophanase) are sufficient to confer a pro-thrombotic phenotype in vivo. Moreover, human fecal metagenomics analyses show that abundances of hpdBCA and tryptophanase are associated with CVD. These studies show that pCS and IS, two abundant microbiome-derived metabolites, play a broader potential role in CVD than was previously known. They also suggest that therapeutic targeting of gut microbial p-cresol- and indole-producing pathways represent rational targets for CVD.IMPORTANCEAlterations in gut microbial composition and function have been linked to numerous diseases. Identifying microbial pathways responsible for producing molecules that adversely impact the host is an important first step in the development of therapeutic interventions. Here, we first use large-scale clinical observations to link blood levels of defined microbial products to cardiovascular disease risks. Notably, the previously identified uremic toxins p-cresol sulfate and indoxyl sulfate were shown to predict 5-year mortality risks. After identifying the microbes and microbial enzymes involved in the generation of these uremic toxins, we used bioengineering technologies coupled with colonization of germ-free mice to show that the gut microbial genes that generate p-cresol and indole are sufficient to confer p-cresol sulfate and indoxyl sulfate formation, and a pro-thrombotic phenotype in vivo. The findings and tools developed serve as a critical step in both the study and targeting of these gut microbial pathways in vivo.

13.
Infect Immun ; 80(3): 943-51, 2012 Mar.
Article in English | MEDLINE | ID: mdl-22215738

ABSTRACT

Lipopolysaccharide (LPS) structural modifications have been shown to specifically affect the pathogenesis of many gram-negative pathogens. In Francisella, modification of the lipid A component of LPS resulted in a molecule with no to low endotoxic activity. The role of the terminal lipid A phosphates in host recognition and pathogenesis was determined using a Francisella novicida mutant that lacked the 4' phosphatase enzyme (LpxF). The lipid A of this strain retained the phosphate moiety at the 4' position and the N-linked fatty acid at the 3' position on the diglucosamine backbone. Studies were undertaken to determine the pathogenesis of this mutant strain via the pulmonary and subcutaneous routes of infection. Mice infected with the lpxF-null F. novicida mutant by either route survived primary infection and subsequently developed protective immunity against a lethal wild-type (WT) F. novicida challenge. To determine the mechanism(s) by which the host controlled primary infection by the lpxF-null mutant, the role of innate immune components, including Toll-like receptor 2 (TLR2), TLR4, caspase-1, MyD88, alpha interferon (IFN-α), and gamma interferon(IFN-γ), was examined using knockout mice. Interestingly, only the IFN-γ knockout mice succumbed to a primary lpxF-null F. novicida mutant infection, highlighting the importance of IFN-γ production. To determine the role of components of the host adaptive immune system that elicit the long-term protective immune response, T- and B-cell deficient RAG1(-/-) mice were examined. All mice survived primary infection; however, RAG1(-/-) mice did not survive WT challenge, highlighting a role for T and B cells in the protective immune response.


Subject(s)
Francisella/immunology , Francisella/pathogenicity , Lipid A/metabolism , Lipid A/toxicity , Phosphates/metabolism , Animals , Cytokines/genetics , Disease Models, Animal , Female , Francisella/metabolism , Gene Knockout Techniques , Gram-Negative Bacterial Infections/immunology , Gram-Negative Bacterial Infections/microbiology , Gram-Negative Bacterial Infections/mortality , Gram-Negative Bacterial Infections/pathology , Immunity, Innate , Lipid A/immunology , Mice , Mice, Inbred C57BL , Mice, Knockout , Phosphoric Monoester Hydrolases/genetics , Phosphoric Monoester Hydrolases/metabolism , Receptors, Immunologic/genetics , Survival Analysis , Virulence
14.
J Periodontol ; 93(12): 1940-1950, 2022 12.
Article in English | MEDLINE | ID: mdl-35100435

ABSTRACT

BACKGROUND: The gingival epithelium protects periodontal tissues and the alveolar bone by maintaining a steady state of regulated inflammatory surveillance, also known as healthy homeostasis. Accordingly, the repertoire of receptors present within the gingival epithelium showcases its ability to recognize microbial colonization and contribute to bacterial sensing. Macrophage migration inhibitory factor (MIF) is one of many cytokines that are expressed in this protective state and is involved in neutrophil regulation. However, its role in the maintenance of healthy gingival tissue has not been described. METHODS: Gingival tissues from wild-type (WT) and Mif knock-out (KO) mice were stained for neutrophils and three key neutrophil chemoattractants: MIF, Gro-α/CXCL1, and Gro-ß/CXCL2 in the junctional epithelium (JE). In addition, gene silencing studies were performed using gingival epithelial cells (GECs) to examine the role of MIF on transcription of key bacterial recognition receptors Toll-like receptors (TLR)-1, -2, -4, -6, -9 and interleukin-1 receptors (IL-1R1 and IL-1R2) in response to oral bacterial stimulation. RESULTS: WT murine gingival tissues demonstrated high expression of MIF in the JE. In Mif KO mice, despite the significant reduction of Gro-α/CXCL1 and Gro-ß/CXCL2, there was a slight increase in neutrophils. Gene silencing experiments showed that MIF down-regulated the mRNA expression of TLR4, IL-1R1, and IL-1R2 in GEC, in addition to decreasing secreted IL-8/CXCL8 in response to bacteria. CONCLUSIONS: MIF regulates the expression of TLR4, IL-1Rs, and IL-8/CXCL8, components that are all involved in maintaining oral health. Our data demonstrate that MIF is a significant contributor to the maintenance of healthy oral homeostasis.


Subject(s)
Epithelial Cells , Immunity, Innate , Macrophage Migration-Inhibitory Factors , Animals , Mice , Interleukin-8 , Mice, Knockout , Receptors, Interleukin-1 Type II , Toll-Like Receptor 4 , Gingiva/cytology
15.
Nat Microbiol ; 7(1): 73-86, 2022 01.
Article in English | MEDLINE | ID: mdl-34949826

ABSTRACT

The heightened cardiovascular disease (CVD) risk observed among omnivores is thought to be linked, in part, to gut microbiota-dependent generation of trimethylamine-N-oxide (TMAO) from L-carnitine, a nutrient abundant in red meat. Gut microbial transformation of L-carnitine into trimethylamine (TMA), the precursor of TMAO, occurs via the intermediate γ-butyrobetaine (γBB). However, the interrelationship of γBB, red meat ingestion and CVD risks, as well as the gut microbial genes responsible for the transformation of γBB to TMA, are unclear. In the present study, we show that plasma γBB levels in individuals from a clinical cohort (n = 2,918) are strongly associated with incident CVD event risks. Culture of human faecal samples and microbial transplantation studies in gnotobiotic mice with defined synthetic communities showed that the introduction of Emergencia timonensis, a human gut microbe that can metabolize γBB into TMA, is sufficient to complete the carnitine → γBB → TMA transformation, elevate TMAO levels and enhance thrombosis potential in recipients after arterial injury. RNA-sequencing analyses of E. timonensis identified a six-gene cluster, herein named the γBB utilization (gbu) gene cluster, which is upregulated in response to γBB. Combinatorial cloning and functional studies identified four genes (gbuA, gbuB, gbuC and gbuE) that are necessary and sufficient to recapitulate the conversion of γBB to TMA when coexpressed in Escherichia coli. Finally, reanalysis of samples (n = 113) from a clinical, randomized diet, intervention study showed that the abundance of faecal gbuA correlates with plasma TMAO and a red meat-rich diet. Our findings reveal a microbial gene cluster that is critical to dietary carnitine → γBB → TMA → TMAO transformation in hosts and contributes to CVD risk.


Subject(s)
Cardiovascular Diseases/genetics , Carnitine/blood , Carnitine/metabolism , Gastrointestinal Microbiome/physiology , Genes, Bacterial/genetics , Multigene Family , Red Meat , Animals , Cardiovascular Diseases/blood , Clostridiales/genetics , Clostridiales/metabolism , Feces/microbiology , Female , Germ-Free Life , Humans , Methylamines/metabolism , Mice , Mice, Inbred C57BL , Observational Studies as Topic
16.
J Immunol ; 183(11): 7150-60, 2009 Dec 01.
Article in English | MEDLINE | ID: mdl-19917677

ABSTRACT

The human neonate and infant are unduly susceptible to infection with a wide variety of microbes. This susceptibility is thought to reflect differences from adults in innate and adaptive immunity, but the nature of these differences is incompletely characterized. The innate immune response directs the subsequent adaptive immune response after integrating information from TLRs and other environmental sensors. We set out to provide a comprehensive analysis defining differences in response to TLR ligation between human neonates and adults. In response to most TLR ligands, neonatal innate immune cells, including monocytes and conventional and plasmacytoid dendritic cells produced less IL-12p70 and IFN-alpha (and consequently induced less IFN-gamma), moderately less TNF-alpha, but as much or even more IL-1beta, IL-6, IL-23, and IL-10 than adult cells. At the single-cell level, neonatal innate cells generally were less capable of producing multiple cytokines simultaneously, i.e., were less polyfunctional. Overall, our data suggest a robust if not enhanced capacity of the neonate vs the adult white-blood cell TLR-mediated response to support Th17- and Th2-type immunity, which promotes defense against extracellular pathogens, but a reduced capacity to support Th1-type responses, which promote defense against intracellular pathogens.


Subject(s)
Cytokines/biosynthesis , Immunity, Innate/immunology , Infant, Newborn/immunology , Toll-Like Receptors/immunology , Adult , Cytokines/immunology , Dendritic Cells/immunology , Enzyme-Linked Immunosorbent Assay , Flow Cytometry , Humans , Infant , Monocytes/immunology
17.
J Infect Dis ; 202(12): 1897-906, 2010 Dec 15.
Article in English | MEDLINE | ID: mdl-21050116

ABSTRACT

Bordetella endotoxins show remarkable structural variability both among each other and in comparison to other gram-negative bacteria. Here we demonstrate that, in contrast to the common Bordetella pertussis laboratory strain and Tohama I derivative BP338, lipooligosaccharide from mouse challenge strain 18-323 is a poor inducer of inflammatory cytokines in human and murine macrophages, is greatly impaired in Toll-like receptor 4-mediated activation of nuclear factor-κB in transfected HEK-293 cells, and functions as a Toll-like receptor 4 antagonist. Comparison of lipid A and lipooligosaccharide structures of B. pertussis strains BP338 and 18-323 revealed that 18-323 (1) lacks the ability to modify its lipid A phosphate groups with glucosamine, (2) is distinct in its acylation at the C3' position of the lipid A diglucosamine backbone, and (3) expresses molecular lipooligosaccharide species that lack a terminal heptose. Our findings have important implications for interpreting previous studies of host defenses to B. pertussis infection in mice and in vitro.


Subject(s)
Bordetella pertussis/chemistry , Endotoxins/chemistry , Endotoxins/toxicity , Lipopolysaccharides/chemistry , Lipopolysaccharides/toxicity , Animals , Bordetella pertussis/pathogenicity , Cell Line , Humans , Macrophages/drug effects , Macrophages/immunology , Mice , NF-kappa B/metabolism , Toll-Like Receptors/drug effects
18.
Cell Host Microbe ; 29(7): 1199-1208.e5, 2021 07 14.
Article in English | MEDLINE | ID: mdl-34139173

ABSTRACT

Clinical studies have demonstrated associations between circulating levels of the gut-microbiota-derived metabolite trimethylamine-N-oxide (TMAO) and stroke incident risk. However, a causal role of gut microbes in stroke has not yet been demonstrated. Herein we show that gut microbes, through dietary choline and TMAO generation, directly impact cerebral infarct size and adverse outcomes following stroke. Fecal microbial transplantation from low- versus high-TMAO-producing human subjects into germ-free mice shows that both TMAO generation and stroke severity are transmissible traits. Furthermore, employing multiple murine stroke models and transplantation of defined microbial communities with genetically engineered human commensals into germ-free mice, we demonstrate that the microbial cutC gene (an enzymatic source of choline-to-TMA transformation) is sufficient to transmit TMA/TMAO production, heighten cerebral infarct size, and lead to functional impairment. We thus reveal that gut microbiota in general, specifically the metaorganismal TMAO pathway, directly contributes to stroke severity.


Subject(s)
Bacteria/metabolism , Gastrointestinal Microbiome , Methylamines/metabolism , Oxides/metabolism , Stroke/microbiology , Animals , Bacteria/classification , Bacteria/genetics , Bacteria/isolation & purification , Choline/metabolism , Female , Humans , Male , Mice , Mice, Inbred C57BL , Severity of Illness Index , Stroke/metabolism , Stroke/pathology
19.
Infect Immun ; 78(5): 2060-9, 2010 May.
Article in English | MEDLINE | ID: mdl-20176798

ABSTRACT

Bordetella pertussis endotoxin is a key modulator of the host immune response, mainly due to the role of its lipid A moiety in Toll-like receptor 4 (TLR4)-mediated signaling. We have previously demonstrated that the lipid A phosphate groups of B. pertussis BP338 can be substituted with glucosamine in a BvgAS-regulated manner. Here we examined the effect of this lipid A modification on the biological activity of B. pertussis endotoxin. We compared purified endotoxin and heat-killed B. pertussis BP338 whole cells that have modified lipid A phosphate groups to an isogenic mutant lacking this modification with respect to their capacities to induce the release of inflammatory cytokines by human and murine macrophages and to participate in the TLR4-mediated activation of NF-kappaB in transfected HEK-293 cells. We found inactivated B. pertussis cells to be stronger inducers of proinflammatory cytokines in THP-1-derived macrophages when lipid A was modified. Most notably, lack of lipid A modification abolished the ability of purified B. pertussis endotoxin to induce the release of inflammatory cytokines by human THP-1-derived macrophages but led to only slightly reduced inflammatory cytokine levels when stimulating murine (RAW 264.7) macrophages. Accordingly, upon stimulation of HEK-293 cells with inactivated bacteria and purified endotoxin, lack of lipid A modification led to impaired NF-kappaB activation only when human, and not when murine, TLR4-MD-2-CD14 was expressed. We speculate that in B. pertussis, lipid A modification has evolved to benefit the bacteria during human infection by modulating immune defenses rather than to evade innate immune recognition.


Subject(s)
Bordetella pertussis/immunology , Cytokines/biosynthesis , Lipid A/chemistry , Lipid A/immunology , Macrophages/immunology , NF-kappa B/immunology , Animals , Bordetella pertussis/pathogenicity , Cell Line , Glucosamine/metabolism , Humans , Lipopolysaccharide Receptors/immunology , Lymphocyte Antigen 96/immunology , Mice , Phosphates/metabolism , Toll-Like Receptor 4/immunology
20.
PLoS Pathog ; 4(2): e24, 2008 Feb 08.
Article in English | MEDLINE | ID: mdl-18266468

ABSTRACT

Francisella tularensis (Ft) is a highly infectious gram-negative bacterium and the causative agent of the human disease tularemia. Ft is designated a class A select agent by the Centers for Disease Control and Prevention. Human clinical isolates of Ft produce lipid A of similar structure to Ft subspecies novicida (Fn), a pathogen of mice. We identified three enzymes required for Fn lipid A carbohydrate modifications, specifically the presence of mannose (flmF1), galactosamine (flmF2), or both carbohydrates (flmK). Mutants lacking either galactosamine (flmF2) or galactosamine/mannose (flmK) addition to their lipid A were attenuated in mice by both pulmonary and subcutaneous routes of infection. In addition, aerosolization of the mutants (flmF2 and flmK) provided protection against challenge with wild-type (WT) Fn, whereas subcutaneous administration of only the flmK mutant provided protection from challenge with WT Fn. Furthermore, infection of an alveolar macrophage cell line by the flmK mutant induced higher levels of tumor necrosis factor-alpha (TNF-alpha) and macrophage inhibitory protein-2 (MIP-2) when compared to infection with WT Fn. Bone marrow-derived macrophages (BMMø) from Toll-like receptor 4 (TLR4) and TLR2/4 knockout mice infected with the flmK mutant also produced significantly higher amounts of interleukin-6 (IL-6) and MIP-2 than BMMø infected with WT Fn. However, production of IL-6 and MIP-2 was undetectable in BMMø from MyD88(-/-) mice infected with either strain. MyD88(-/-) mice were also susceptible to flmK mutant infection. We hypothesize that the ability of the flmK mutant to activate pro-inflammatory cytokine/chemokine production and innate immune responses mediated by the MyD88 signaling pathway may be responsible for its attenuation, leading to the induction of protective immunity by this mutant.


Subject(s)
Francisella tularensis/physiology , Genes, Bacterial/genetics , Lipid A/metabolism , Tularemia/microbiology , Animals , Biomarkers/metabolism , Bone Marrow Cells/metabolism , Bone Marrow Cells/microbiology , Cell Line , Disease Models, Animal , Female , Gene Silencing , Immunity, Innate/physiology , Macrophages, Alveolar/metabolism , Macrophages, Alveolar/microbiology , Mice , Mice, Inbred BALB C , Mice, Inbred C57BL , Mice, Knockout , Mutation , Myeloid Differentiation Factor 88/deficiency , Myeloid Differentiation Factor 88/genetics , Myeloid Differentiation Factor 88/metabolism , Signal Transduction , Specific Pathogen-Free Organisms , Tularemia/genetics , Tularemia/immunology
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