Related Experiment Video
Updated: Jan 20, 2026

Application of Flow Vermimetry for Quantification and Analysis of the Caenorhabditis elegans Gut Microbiome
Published on: March 31, 2023
Mouse Gut Microbiome-Encoded β-Glucuronidases Identified Using Metagenome Analysis Guided by Protein Structure
Benjamin C Creekmore1, Josh H Gray1, William G Walton1
1Department of Chemistry, University of North Carolina at Chapel Hill, Chapel Hill, North Carolina, USA.
Abstract:
Gut microbial β-glucuronidase (GUS) enzymes play important roles in drug efficacy and toxicity, intestinal carcinogenesis, and mammalian-microbial symbiosis. Recently, the first catalog of human gut GUS proteins was provided for the Human Microbiome Project stool sample database and revealed 279 unique GUS enzymes organized into six categories based on active-site structural features. Because mice represent a model biomedical research organism, here we provide an analogous catalog of mouse intestinal microbial GUS proteins-a mouse gut GUSome. Using metagenome analysis guided by protein structure, we examined 2.5 million unique proteins from a comprehensive mouse gut metagenome created from several mouse strains, providers, housing conditions, and diets. We identified 444 unique GUS proteins and organized them into six categories based on active-site features, similarly to the human GUSome analysis. GUS enzymes were encoded by the major gut microbial phyla, including Firmicutes (60%) and Bacteroidetes (21%), and there were nearly 20% for which taxonomy could not be assigned. No differences in gut microbial gus gene composition were observed for mice based on sex. However, mice exhibited gus differences based on active-site features associated with provider, location, strain, and diet. Furthermore, diet yielded the largest differences in gus composition. Biochemical analysis of two low-fat-associated GUS enzymes revealed that they are variable with respect to their efficacy of processing both sulfated and nonsulfated heparan nonasaccharides containing terminal glucuronides.IMPORTANCE Mice are commonly employed as model organisms of mammalian disease; as such, our understanding of the compositions of their gut microbiomes is critical to appreciating how the mouse and human gastrointestinal tracts mirror one another. GUS enzymes, with importance in normal physiology and disease, are an attractive set of proteins to use for such analyses. Here we show that while the specific GUS enzymes differ at the sequence level, a core GUSome functionality appears conserved between mouse and human gastrointestinal bacteria. Mouse strain, provider, housing location, and diet exhibit distinct GUSomes and gus gene compositions, but sex seems not to affect the GUSome. These data provide a basis for understanding the gut microbial GUS enzymes present in commonly used laboratory mice. Further, they demonstrate the utility of metagenome analysis guided by protein structure to provide specific sets of functionally related proteins from whole-genome metagenome sequencing data.
Insights
Researchers cataloged mouse gut microbial beta-glucuronidase (GUS) enzymes, finding 444 unique proteins. Diet and housing conditions significantly impacted GUS composition, unlike sex, highlighting conserved GUSome functionality between mice and humans.
Area of Science:
- Microbiome Research
- Enzymology
- Bioinformatics
Background:
- Gut microbial beta-glucuronidase (GUS) enzymes are crucial for drug metabolism, carcinogenesis, and host-microbe interactions.
- Previous studies cataloged human gut GUS proteins, establishing a baseline for comparison.
- Mice are vital model organisms, making their gut microbial GUSome analysis critical for translational research.
Purpose of the Study:
- To create the first comprehensive catalog of mouse intestinal microbial GUS proteins (mouse gut GUSome).
- To compare the mouse gut GUSome with the human gut GUSome.
- To investigate the influence of host factors (strain, diet, housing) on mouse gut microbial GUS composition.
Main Methods:
- Metagenome analysis of 2.5 million unique proteins from diverse mouse gut microbiomes.
- Protein structure-guided analysis to identify and categorize GUS enzymes.
- Biochemical assays to assess the enzymatic activity of selected GUS proteins.
Main Results:
- Identified 444 unique mouse gut microbial GUS proteins, categorized into six functional groups.
- GUS enzymes were primarily encoded by Firmicutes (60%) and Bacteroidetes (21%).
- Mouse gut GUSome composition varied significantly with provider, location, strain, and diet, but not sex.
- Diet exhibited the most substantial impact on GUS gene composition.
- Biochemical analysis revealed variable efficacy in processing heparan oligosaccharides by low-fat-associated GUS enzymes.
Conclusions:
- A conserved core GUSome functionality exists between mouse and human gut bacteria, despite sequence-level differences.
- Mouse strain, provider, housing, and diet shape distinct gut microbial GUSomes.
- This study provides a foundational catalog of mouse gut microbial GUS enzymes, crucial for interpreting mouse model studies.
Related Concept Videos
Protein and Protein Structure
A protein's shape is critical to its function. For example, an enzyme...
Structural Protein Function
Collagen, the most abundant protein in mammals, is found throughout the body. In connective tissue, such as skin, ligaments, and tendons, it provides tensile strength and elasticity. In bones and teeth, it mineralizes to...
Structural Protein Function
Protein and Protein Structures
Encoding
Automatic processing involves the encoding of details like time, space, frequency, and the meaning of words, usually done without conscious...
Multi-pass Transmembrane Proteins and β-barrels
α-Helix containing multi-pass transmembrane proteins
Multi-pass transmembrane proteins such as...

