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1.
Cell Host Microbe ; 32(7): 1163-1176.e6, 2024 Jul 10.
Article in English | MEDLINE | ID: mdl-38906158

ABSTRACT

Depletion of beneficial microbes by modern lifestyle factors correlates with the rising prevalence of food allergies. Re-introduction of allergy-protective bacteria may be an effective treatment strategy. We characterized the fecal microbiota of healthy and food-allergic infants and found that the anaerobe Anaerostipes caccae (A. caccae) was representative of the protective capacity of the healthy microbiota. We isolated a strain of A. caccae from the feces of a healthy infant and identified lactulose as a prebiotic to optimize butyrate production by A. caccae in vitro. Administration of a synbiotic composed of our isolated A. caccae strain and lactulose increased luminal butyrate in gnotobiotic mice colonized with feces from an allergic infant and in antibiotic-treated specific pathogen-free (SPF) mice, and prevented or treated an anaphylactic response to allergen challenge. The synbiotic's efficacy in two models and microbial contexts suggests that it may be a promising approach for the treatment of food allergy.


Subject(s)
Feces , Food Hypersensitivity , Gastrointestinal Microbiome , Lactulose , Synbiotics , Animals , Synbiotics/administration & dosage , Food Hypersensitivity/prevention & control , Mice , Humans , Feces/microbiology , Gastrointestinal Microbiome/drug effects , Infant , Butyrates/metabolism , Prebiotics/administration & dosage , Female , Disease Models, Animal , Specific Pathogen-Free Organisms , Germ-Free Life , Male
2.
Nat Biomed Eng ; 8(5): 611-627, 2024 May.
Article in English | MEDLINE | ID: mdl-38561491

ABSTRACT

Butyrate-a metabolite produced by commensal bacteria-has been extensively studied for its immunomodulatory effects on immune cells, including regulatory T cells, macrophages and dendritic cells. However, the development of butyrate as a drug has been hindered by butyrate's poor oral bioavailability, owing to its rapid metabolism in the gut, its low potency (hence, necessitating high dosing), and its foul smell and taste. Here we report that the oral bioavailability of butyrate can be increased by esterifying it to serine, an amino acid transporter that aids the escape of the resulting odourless and tasteless prodrug (O-butyryl-L-serine, which we named SerBut) from the gut, enhancing its systemic uptake. In mice with collagen-antibody-induced arthritis (a model of rheumatoid arthritis) and with experimental autoimmune encephalomyelitis (a model of multiple sclerosis), we show that SerBut substantially ameliorated disease severity, modulated key immune cell populations systemically and in disease-associated tissues, and reduced inflammatory responses without compromising the global immune response to vaccination. SerBut may become a promising therapeutic for autoimmune and inflammatory diseases.


Subject(s)
Arthritis, Experimental , Biological Availability , Butyrates , Prodrugs , Serine , Animals , Prodrugs/pharmacology , Prodrugs/therapeutic use , Prodrugs/pharmacokinetics , Prodrugs/chemistry , Mice , Serine/metabolism , Butyrates/pharmacology , Butyrates/therapeutic use , Butyrates/chemistry , Butyrates/administration & dosage , Administration, Oral , Arthritis, Experimental/drug therapy , Arthritis, Experimental/immunology , Arthritis, Rheumatoid/drug therapy , Arthritis, Rheumatoid/immunology , Encephalomyelitis, Autoimmune, Experimental/drug therapy , Encephalomyelitis, Autoimmune, Experimental/immunology , Mice, Inbred C57BL , Neuroinflammatory Diseases/drug therapy , Female
3.
J Immunol ; 212(4): 702-714, 2024 Feb 15.
Article in English | MEDLINE | ID: mdl-38169331

ABSTRACT

We have previously reported that the gut microbiota of healthy infants harbors allergy-protective bacteria taxa that are depleted in infants with cow's milk allergy (CMA). Few reports have investigated the role of the gut microbiota in promoting allergic responses. In this study we selected a CMA-associated microbiota with increased abundance of Gram-negative bacteria for analysis of its proinflammatory potential. LPS is the major component of the outer membrane of Gram-negative bacteria. Colonization of mice with a global or conditional mutation of the LPS receptor TLR4 with this CMA microbiota induced expression of serum amyloid A1 (Saa1) and other Th17-, B cell-, and Th2-associated genes in the ileal epithelium in a TLR4-dependent manner. In agreement with the gene expression data, mice colonized with the CMA microbiota have expanded populations of Th17 and regulatory T cells and elevated concentrations of fecal IgA. Importantly, we used both antibiotic-treated specific pathogen-free and germ-free rederived mice with a conditional mutation of TLR4 in the CD11c+ compartment to demonstrate that the induction of proinflammatory genes, fecal IgA, and Th17 cells is dependent on TLR4 signaling. Furthermore, metagenomic sequencing revealed that the CMA microbiota has an increased abundance of LPS biosynthesis genes. Taken together, our results show that a microbiota displaying a higher abundance of LPS genes is associated with TLR4-dependent proinflammatory gene expression and a mixed type 2/type 3 response in mice, which may be characteristic of a subset of infants with CMA.


Subject(s)
Gastrointestinal Microbiome , Milk Hypersensitivity , Humans , Infant , Female , Cattle , Animals , Mice , Milk Hypersensitivity/complications , Lipopolysaccharides , Toll-Like Receptor 4/genetics , Immunity , Immunoglobulin A
4.
Cell Rep ; 42(10): 113153, 2023 10 31.
Article in English | MEDLINE | ID: mdl-37742185

ABSTRACT

The increasing prevalence of food allergies has been linked to reduced commensal microbial diversity. In this article, we describe two features of allergy-protective Clostridia that contribute to their beneficial effects. Some Clostridial taxa bear flagella (a ligand for TLR5) and produce indole (a ligand for the aryl hydrocarbon receptor [AhR]). Lysates and flagella from a Clostridia consortium induced interleukin-22 (IL-22) secretion from ileal explants. IL-22 production is abrogated in explants from mice in which TLR5 or MyD88 signaling is deficient either globally or conditionally in CD11c+ antigen-presenting cells. AhR signaling in RORγt+ cells is necessary for the induction of IL-22. Mice deficient in AhR in RORγt+ cells exhibit increased intestinal permeability and are more susceptible to an anaphylactic response to food. Our findings implicate TLR5 and AhR signaling in a molecular mechanism by which commensal Clostridia protect against allergic responses to food.


Subject(s)
Hypersensitivity , Toll-Like Receptor 5 , Animals , Mice , Allergens , Bacteria , Ligands , Mice, Inbred C57BL , Nuclear Receptor Subfamily 1, Group F, Member 3 , Receptors, Aryl Hydrocarbon
5.
Nat Biomed Eng ; 7(1): 38-55, 2023 Jan.
Article in English | MEDLINE | ID: mdl-36550307

ABSTRACT

The microbiome modulates host immunity and aids the maintenance of tolerance in the gut, where microbial and food-derived antigens are abundant. Yet modern dietary factors and the excessive use of antibiotics have contributed to the rising incidence of food allergies, inflammatory bowel disease and other non-communicable chronic diseases associated with the depletion of beneficial taxa, including butyrate-producing Clostridia. Here we show that intragastrically delivered neutral and negatively charged polymeric micelles releasing butyrate in different regions of the intestinal tract restore barrier-protective responses in mouse models of colitis and of peanut allergy. Treatment with the butyrate-releasing micelles increased the abundance of butyrate-producing taxa in Clostridium cluster XIVa, protected mice from an anaphylactic reaction to a peanut challenge and reduced disease severity in a T-cell-transfer model of colitis. By restoring microbial and mucosal homoeostasis, butyrate-releasing micelles may function as an antigen-agnostic approach for the treatment of allergic and inflammatory diseases.


Subject(s)
Colitis , Inflammatory Bowel Diseases , Peanut Hypersensitivity , Mice , Animals , Micelles , Butyrates
6.
Nat Metab ; 3(8): 1038-1039, 2021 08.
Article in English | MEDLINE | ID: mdl-34417592
7.
J Clin Invest ; 131(2)2021 01 19.
Article in English | MEDLINE | ID: mdl-33463536

ABSTRACT

BACKGROUNDThere has been a striking generational increase in the prevalence of food allergies. We have proposed that this increase can be explained, in part, by alterations in the commensal microbiome.METHODSTo identify bacterial signatures and metabolic pathways that may influence the expression of this disease, we collected fecal samples from a unique, well-controlled cohort of twins concordant or discordant for food allergy. Samples were analyzed by integrating 16S rRNA gene amplicon sequencing and liquid chromatography-tandem mass spectrometry metabolite profiling.RESULTSA bacterial signature of 64 operational taxonomic units (OTUs) distinguished healthy from allergic twins; the OTUs enriched in the healthy twins were largely taxa from the Clostridia class. We detected significant enrichment in distinct metabolite pathways in each group. The enrichment of diacylglycerol in healthy twins is of particular interest for its potential as a readily measurable fecal biomarker of health. In addition, an integrated microbial-metabolomic analysis identified a significant association between healthy twins and Phascolarctobacterium faecium and Ruminococcus bromii, suggesting new possibilities for the development of live microbiome-modulating biotherapeutics.CONCLUSIONTwin pairs exhibited significant differences in their fecal microbiomes and metabolomes through adulthood, suggesting that the gut microbiota may play a protective role in patients with food allergies beyond the infant stage.TRIAL REGISTRATIONParticipants in this study were recruited as part of an observational study (ClinicalTrials.gov NCT01613885) at multiple sites from 2014 to 2018.FUNDINGThis work was supported by the Sunshine Charitable Foundation; the Moss Family Foundation; the National Institute of Allergy and Infectious Diseases (NIAID) (R56AI134923 and R01AI 140134); the Sean N. Parker Center for Allergy and Asthma Research; the National Heart, Lung, and Blood Institute (R01 HL 118612); the Orsak family; the Kepner family; and the Stanford Institute for Immunity, Transplant and Infection.


Subject(s)
Bacteria/classification , Feces/microbiology , Food Hypersensitivity/microbiology , Microbiota , Twins , Adult , Aged , Bacteria/genetics , Bacteria/growth & development , Child , Child, Preschool , Female , Humans , Infant , Male , Middle Aged , RNA, Bacterial/genetics , RNA, Ribosomal, 16S/genetics
8.
Mucosal Immunol ; 14(1): 4-13, 2021 01.
Article in English | MEDLINE | ID: mdl-33106585

ABSTRACT

Food allergies are a major public health concern due to their widespread and rising prevalence. The increase in food allergy is partially due to Western lifestyle habits which deplete protective commensal microbiota. These microbial perturbations can result in adverse host-microbe interactions, altering the phenotype of various immune cells and instigating allergic sensitization. Although B cells are critical to allergic pathology, microbial influences on B cells have been somewhat overlooked. Here, we focus on direct and indirect interactions between bacteria and B cells and how such interactions regulate B-cell phenotype, namely antibody production (IgA, IgE, IgG1, and IgG4) and regulatory B-cell (Breg) function. Understanding how microbes modulate B-cell activity in the context of food allergies is critical to both tracing the development of disease and assessing future treatment options.


Subject(s)
B-Lymphocytes/immunology , Disease Susceptibility , Food Hypersensitivity/etiology , Microbiota/immunology , Animals , Antibody Formation/immunology , B-Lymphocyte Subsets/immunology , B-Lymphocyte Subsets/metabolism , B-Lymphocytes/metabolism , Disease Susceptibility/immunology , Food Hypersensitivity/diagnosis , Food Hypersensitivity/metabolism , Host Microbial Interactions , Humans
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