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1.
Essays Biochem ; 67(3): 415-428, 2023 04 18.
Article in English | MEDLINE | ID: mdl-36350044

ABSTRACT

Butyrate-producing human gut microbiota members are recognized for their strong association with a healthy immune-homeostasis and protection from inflammatory disorders and colorectal cancer. These effects are attributed to butyrate, the terminal electron sink of glycan fermentation by prevalent and abundant colonic Firmicutes from the Lachnospiraceae and Oscillospiraceae families. Remarkably, our insight into the glycan utilization mechanisms and preferences of butyrogenic Firmicutes remains very limited as compared with other gut symbionts, especially from the Bacteroides, Bifidobacterium, and Lactobacillus genera. Here, we summarize recent findings on the strategies that colonic butyrate producers have evolved to harvest energy from major dietary fibres, especially plant structural and storage glycans, such as resistant starch, xylans, and mannans. Besides dietary fibre, we also present the unexpected discovery of a conserved protein apparatus that confers the growth of butyrate producers on human milk oligosaccharides (HMOs), which are unique to mother's milk. The dual dietary fibre/HMO utilization machinery attests the adaptation of this group to both the infant and adult guts. These finding are discussed in relation to the early colonization of butyrogenic bacteria and the maturation of the microbiota during the transition from mother's milk to solid food. To date, the described butyrogenic Firmicutes are glycan utilization specialists that target only a few glycans in a highly competitive manner relying on co-regulated glycan utilization loci. We describe the common pillars of this machinery, highlighting butyrate producers as a source for discovery of biochemically and structurally novel carbohydrate active enzymes.


Subject(s)
Butyrates , Polysaccharides , Infant , Humans , Butyrates/metabolism , Polysaccharides/metabolism , Firmicutes/metabolism , Colon/metabolism , Colon/microbiology , Dietary Fiber
2.
Biotechnol Biofuels ; 13: 135, 2020.
Article in English | MEDLINE | ID: mdl-32774456

ABSTRACT

BACKGROUND: Lytic polysaccharide monooxygenases (LPMOs) are often studied in simple models involving activity measurements of a single LPMO or a blend thereof with hydrolytic enzymes towards an insoluble substrate. However, the contribution of LPMOs to polysaccharide breakdown in complex cocktails of hydrolytic and oxidative enzymes, similar to fungal secretomes, remains elusive. Typically, two starch-specific AA13 LPMOs are encoded by mainly Ascomycota genomes. Here, we investigate the impact of LPMO loss on the growth and degradation of starches of varying resistance to amylolytic hydrolases by Aspergillus nidulans. RESULTS: Deletion of the genes encoding AnAA13A that possesses a CBM20 starch-binding module, AnAA13B (lacking a CBM20) or both AA13 genes resulted in reduced growth on solid media with resistant, but not soluble processed potato starch. Larger size and amount of residual starch granules were observed for the AA13-deficient strains as compared to the reference and the impairment of starch degradation was more severe for the strain lacking AnAA13A based on a microscopic analysis. After 5 days of growth on raw potato starch in liquid media, the mount of residual starch was about fivefold higher for the AA13 gene deletion strains compared to the reference, which underscores the importance of LPMOs for degradation of especially resistant starches. Proteomic analyses revealed substantial changes in the secretomes of the double AA13 gene deletion, followed by the AnAA13A-deficient strain, whereas only a single protein was significantly different in the proteome of the AnAA13B-deficient strain as compared to the reference. CONCLUSIONS: This study shows that the loss of AA13, especially the starch-binding AnAA13A, impairs degradation of resistant potato starch, but has limited impact on less-resistant wheat starch and no impact on processed solubilized starch. The effects of LPMO loss are more pronounced at the later stages of fungal growth, likely due to the accumulation of the less-accessible regions of the substrate. The striking impairment in granular starch degradation due to the loss of a single LPMO from the secretome offers insight into the crucial role played by AA13 in the breakdown of resistant starch and presents a methodological framework to analyse the contribution of distinct LPMOs towards semi-crystalline polysaccharides under in vivo conditions.

3.
Nat Commun ; 11(1): 3285, 2020 07 03.
Article in English | MEDLINE | ID: mdl-32620774

ABSTRACT

The early life human gut microbiota exerts life-long health effects on the host, but the mechanisms underpinning its assembly remain elusive. Particularly, the early colonization of Clostridiales from the Roseburia-Eubacterium group, associated with protection from colorectal cancer, immune- and metabolic disorders is enigmatic. Here, we describe catabolic pathways that support the growth of Roseburia and Eubacterium members on distinct human milk oligosaccharides (HMOs). The HMO pathways, which include enzymes with a previously unknown structural fold and specificity, were upregulated together with additional glycan-utilization loci during growth on selected HMOs and in co-cultures with Akkermansia muciniphila on mucin, suggesting an additional role in enabling cross-feeding and access to mucin O-glycans. Analyses of 4599 Roseburia genomes underscored the preponderance and diversity of the HMO utilization loci within the genus. The catabolism of HMOs by butyrate-producing Clostridiales may contribute to the competitiveness of this group during the weaning-triggered maturation of the microbiota.


Subject(s)
Butyrates/metabolism , Clostridiales/metabolism , Milk, Human/metabolism , Mucins/metabolism , Oligosaccharides/metabolism , Akkermansia , Bifidobacterium/metabolism , Clostridiales/genetics , Colon/microbiology , Eubacterium/metabolism , Gastrointestinal Microbiome/physiology , Humans , Infant , Infant, Newborn , Metabolism/physiology , Milk, Human/chemistry , Polysaccharides/metabolism , Verrucomicrobia/metabolism , Weaning
4.
FEBS J ; 287(10): 2105-2117, 2020 05.
Article in English | MEDLINE | ID: mdl-31693302

ABSTRACT

Efficient capture of glycans, the prime metabolic resources in the human gut, confers a key competitive advantage for gut microbiota members equipped with extracellular glycoside hydrolases (GHs) to target these substrates. The association of glycans to the bacterial cell surface is typically mediated by carbohydrate binding modules (CBMs). Here, we report the structure of RiCBM86 appended to a GH family 10 xylanase from Roseburia intestinalis. This CBM represents a new family of xylan binding CBMs present in xylanases from abundant and prevalent healthy human gut Clostridiales. RiCBM86 adopts a canonical ß-sandwich fold, but shows structural divergence from known CBMs. The structure of RiCBM86 has been determined with a bound xylohexaose, which revealed an open and shallow binding site. RiCBM86 recognizes only a single xylosyl ring with direct hydrogen bonds. This mode of recognition is unprecedented amongst previously reported xylan binding type-B CBMs that display more extensive hydrogen-bonding patterns to their ligands or employ Ca2+ to mediate ligand-binding. The architecture of RiCBM86 is consistent with an atypically low binding affinity (KD  about 0.5 mm for xylohexaose) compared to most xylan binding CBMs. Analyses using NMR spectroscopy corroborated the observations from the complex structure and the preference of RiCBM86 to arabinoxylan over glucuronoxylan, consistent with the largely negatively charged surface flanking the binding site. Mutational analysis and affinity electrophoresis established the importance of key binding residues, which are conserved in the family. This study provides novel insight into the structural features that shape low-affinity CBMs that mediate extended bacterial glycan capture in the human gut niche. DATABASES: Structural data are available in the protein data bank database under the accession number 6SGF. Sequence data are available in the GenBank database under the accession number EEV01588.1. The assignment of the Roseburia intestinalis xylan binding module into the CBM86 new family is available in the CAZy database (http://www.cazy.org/CBM86.html).


Subject(s)
Clostridiales/enzymology , Endo-1,4-beta Xylanases/genetics , Glycoside Hydrolases/genetics , Polysaccharides/genetics , Binding Sites/genetics , Clostridiales/genetics , Endo-1,4-beta Xylanases/isolation & purification , Gastrointestinal Microbiome/genetics , Glycoside Hydrolases/isolation & purification , Humans , Hydrogen Bonding , Ligands , Polysaccharides/chemistry , Xylans/chemistry , Xylans/genetics , Xylans/metabolism
5.
Nat Commun ; 10(1): 905, 2019 02 22.
Article in English | MEDLINE | ID: mdl-30796211

ABSTRACT

ß-Mannans are plant cell wall polysaccharides that are commonly found in human diets. However, a mechanistic understanding into the key populations that degrade this glycan is absent, especially for the dominant Firmicutes phylum. Here, we show that the prominent butyrate-producing Firmicute Roseburia intestinalis expresses two loci conferring metabolism of ß-mannans. We combine multi-"omic" analyses and detailed biochemical studies to comprehensively characterize loci-encoded proteins that are involved in ß-mannan capturing, importation, de-branching and degradation into monosaccharides. In mixed cultures, R. intestinalis shares the available ß-mannan with Bacteroides ovatus, demonstrating that the apparatus allows coexistence in a competitive environment. In murine experiments, ß-mannan selectively promotes beneficial gut bacteria, exemplified by increased R. intestinalis, and reduction of mucus-degraders. Our findings highlight that R. intestinalis is a primary degrader of this dietary fiber and that this metabolic capacity could be exploited to selectively promote key members of the healthy microbiota using ß-mannan-based therapeutic interventions.


Subject(s)
Clostridiales/metabolism , Dietary Carbohydrates/metabolism , Mannans/metabolism , Animals , Bacteroides/genetics , Bacteroides/metabolism , Clostridiales/enzymology , Clostridiales/genetics , Diet , Gastrointestinal Microbiome , Humans , Male , Mice
6.
Biomol NMR Assign ; 13(1): 55-58, 2019 04.
Article in English | MEDLINE | ID: mdl-30244308

ABSTRACT

The N-terminal domain (residues 28-165) from the glycoside hydrolase family 10 from Roseburia intestinalis (RiCBMx), has been isotopically labeled and recombinantly expressed in Escherichia coli. Here we report 1H, 13C and 15N NMR chemical shift assignments for this carbohydrate binding module (CBM).


Subject(s)
Endo-1,4-beta Xylanases/chemistry , Firmicutes/enzymology , Nuclear Magnetic Resonance, Biomolecular , Receptors, Cell Surface/chemistry , Carbon Isotopes , Nitrogen Isotopes , Protein Structure, Secondary , Protons
7.
Nat Microbiol ; 3(5): 570-580, 2018 05.
Article in English | MEDLINE | ID: mdl-29610517

ABSTRACT

Metabolism of dietary glycans is pivotal in shaping the human gut microbiota. However, the mechanisms that promote competition for glycans among gut commensals remain unclear. Roseburia intestinalis, an abundant butyrate-producing Firmicute, is a key degrader of the major dietary fibre xylan. Despite the association of this taxon to a healthy microbiota, insight is lacking into its glycan utilization machinery. Here, we investigate the apparatus that confers R. intestinalis growth on different xylans. R. intestinalis displays a large cell-attached modular xylanase that promotes multivalent and dynamic association to xylan via four xylan-binding modules. This xylanase operates in concert with an ATP-binding cassette transporter to mediate breakdown and selective internalization of xylan fragments. The transport protein of R. intestinalis prefers oligomers of 4-5 xylosyl units, whereas the counterpart from a model xylan-degrading Bacteroides commensal targets larger ligands. Although R. intestinalis and the Bacteroides competitor co-grew in a mixed culture on xylan, R. intestinalis dominated on the preferred transport substrate xylotetraose. These findings highlight the differentiation of capture and transport preferences as a possible strategy to facilitate co-growth on abundant dietary fibres and may offer a unique route to manipulate the microbiota based on glycan transport preferences in therapeutic interventions to boost distinct taxa.


Subject(s)
Bacterial Proteins/metabolism , Bacteroides/growth & development , Clostridiales/growth & development , Dietary Fiber/metabolism , Xylans/metabolism , ATP-Binding Cassette Transporters/metabolism , Bacteroides/metabolism , Clostridiales/metabolism , Coculture Techniques , Endo-1,4-beta Xylanases/metabolism , Gastrointestinal Microbiome , Gene Expression Regulation, Bacterial , Humans , Substrate Specificity , Symbiosis
8.
Protein Sci ; 21(12): 1929-41, 2012 Dec.
Article in English | MEDLINE | ID: mdl-23076998

ABSTRACT

Rheumatoid arthritis (RA) is the most common autoimmune rheumatic disease. It is characterized by persistent joint inflammation, resulting in loss of joint function, morbidity and premature mortality. The presence of antibodies against citrullinated proteins is a characteristic feature of RA and up to 70% of RA patients are anticitrullinated protein antibody (ACPA) positive. ACPA responses have been widely studied and are suggested to be heterogeneous, favoring antibody cross-reactivity to citrullinated proteins. In this study, we examined factors that may influence cross-reactivity between a commercial human anticitrullinated fibrinogen monoclonal antibody and a citrullinated peptide. Using a citrullinated profilaggrin sequence (HQCHQEST- Cit-GRSRGRCGRSGS) as template, cyclic and linear truncated peptide versions were tested for reactivity to the monoclonal antibody. Factors such as structure, peptide length and flanking amino acids were found to have a notable impact on antibody cross-reactivity. The results achieved contribute to the understanding of the interactions between citrullinated peptides and ACPA, which may aid in the development of improved diagnostics of ACPA.


Subject(s)
Antibodies, Monoclonal/immunology , Citrulline/immunology , Fibrinogen/immunology , Immunoglobulin G/immunology , Intermediate Filament Proteins/immunology , Amino Acid Sequence , Arthritis, Rheumatoid/immunology , Citrulline/chemistry , Cross Reactions , Fibrinogen/chemistry , Filaggrin Proteins , Humans , Intermediate Filament Proteins/chemistry , Molecular Sequence Data , Peptides, Cyclic/chemistry , Peptides, Cyclic/immunology
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