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1.
Cell Mol Life Sci ; 76(21): 4319-4340, 2019 Nov.
Article in English | MEDLINE | ID: mdl-31062073

ABSTRACT

The human gut microbiota, which underpins nutrition and systemic health, is compositionally sensitive to the availability of complex carbohydrates in the diet. The Bacteroidetes comprise a dominant phylum in the human gut microbiota whose members thrive on dietary and endogenous glycans by employing a diversity of highly specific, multi-gene polysaccharide utilization loci (PUL), which encode a variety of carbohydrases, transporters, and sensor/regulators. PULs invariably also encode surface glycan-binding proteins (SGBPs) that play a central role in saccharide capture at the outer membrane. Here, we present combined biophysical, structural, and in vivo characterization of the two SGBPs encoded by the Bacteroides ovatus mixed-linkage ß-glucan utilization locus (MLGUL), thereby elucidating their key roles in the metabolism of this ubiquitous dietary cereal polysaccharide. In particular, molecular insight gained through several crystallographic complexes of SGBP-A and SGBP-B with oligosaccharides reveals that unique shape complementarity of binding platforms underpins specificity for the kinked MLG backbone vis-à-vis linear ß-glucans. Reverse-genetic analysis revealed that both the presence and binding ability of the SusD homolog BoSGBPMLG-A are essential for growth on MLG, whereas the divergent, multi-domain BoSGBPMLG-B is dispensable but may assist in oligosaccharide scavenging from the environment. The synthesis of these data illuminates the critical role SGBPs play in concert with other MLGUL components, reveals new structure-function relationships among SGBPs, and provides fundamental knowledge to inform future (meta)genomic, biochemical, and microbiological analyses of the human gut microbiota.


Subject(s)
Bacteroides/physiology , Edible Grain/metabolism , Gastrointestinal Tract/metabolism , Gastrointestinal Tract/microbiology , Membrane Proteins/physiology , Polysaccharides/metabolism , beta-Glucans/metabolism , Bacteroides/genetics , Bacteroides/metabolism , Carbohydrate Metabolism/physiology , Carbohydrate Sequence , Dietary Fiber/metabolism , Gastrointestinal Microbiome/physiology , Gene Expression Regulation, Bacterial , Genetic Loci , Glycoside Hydrolases/genetics , Glycoside Hydrolases/metabolism , Humans , Membrane Proteins/metabolism
2.
PLoS Pathog ; 14(12): e1007476, 2018 12.
Article in English | MEDLINE | ID: mdl-30513119

ABSTRACT

Intracellular pathogens must egress from the host cell to continue their infectious cycle. Apicomplexans are a phylum of intracellular protozoans that have evolved members of the membrane attack complex and perforin (MACPF) family of pore forming proteins to disrupt cellular membranes for traversing cells during tissue migration or egress from a replicative vacuole following intracellular reproduction. Previous work showed that the apicomplexan Toxoplasma gondii secretes a perforin-like protein (TgPLP1) that contains a C-terminal Domain (CTD) which is necessary for efficient parasite egress. However, the structural basis for CTD membrane binding and egress competency remained unknown. Here, we present evidence that TgPLP1 CTD prefers binding lipids that are abundant in the inner leaflet of the lipid bilayer. Additionally, solving the high-resolution crystal structure of the TgPLP1 APCß domain within the CTD reveals an unusual double-layered ß-prism fold that resembles only one other protein of known structure. Three direct repeat sequences comprise subdomains, with each constituting a wall of the ß-prism fold. One subdomain features a protruding hydrophobic loop with an exposed tryptophan at its tip. Spectrophotometric measurements of intrinsic tryptophan fluorescence are consistent with insertion of the hydrophobic loop into a target membrane. Using CRISPR/Cas9 gene editing we show that parasite strains bearing mutations in the hydrophobic loop, including alanine substitution of the tip tryptophan, are equally deficient in egress as a strain lacking TgPLP1 altogether. Taken together our findings suggest a crucial role for the hydrophobic loop in anchoring TgPLP1 to the membrane to support its cytolytic activity and egress function.


Subject(s)
Perforin/metabolism , Protozoan Proteins/metabolism , Toxoplasma/pathogenicity , Toxoplasmosis/metabolism , Cell Membrane/metabolism , Humans , Perforin/chemistry , Protein Conformation , Protozoan Proteins/chemistry , Toxoplasma/chemistry
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