bioRxiv ScienceSearch

Biology subjects

Ridlon, J. M.

Publications and source records attributed to Ridlon, J. M..

5 recordsLinked to original sources

Diversity and distribution of sulfur metabolism in the human gut microbiome and its association with colorectal cancer

Microbial sulfidogenesis produces genotoxic hydrogen sulfide (H2S) in the human gut using inorganic (sulfate) and organic (taurine/cysteine/methionine) substrates, however the majority of studies have focused on sulfate reduction using dissimilatory sulfite reductases (Dsr). Recent evidence implicates microbial sulfidogenesis as a potential trigger of colorectal cancer (CRC), highlighting the need for comprehensive knowledge of sulfur metabolism within the human gut. Here we show that microbial sulfur metabolism is more abundant and diverse than previously studied and is statistically associated with CRC. Using ~17,000 bacterial genomes from publicly available stool metagenomes, we studied the diversity of sulfur metabolic genes in 667 participants across different health statuses: healthy, adenoma, and carcinoma. Sulfidogenic genes were harbored by 142 bacterial genera and both organic and inorganic sulfidogenic genes were associated with carcinoma. Significantly, anaerobic sulfite reductases were twice as abundant as dsr. We identified twelve potential pathways for reductive taurine metabolism including novel pathways, and prevalence of organic sulfur metabolic genes indicate these substrates may be the most abundant source of microbially derived H2S. Our findings significantly expand knowledge of microbial sulfur metabolism in the human gut, and highlight key gaps that limit understanding of its potential contributions to the pathogenesis of CRC.

microbiology

Fxr signaling and microbial metabolism of bile salts in the zebrafish intestine

Bile salt synthesis, secretion into the intestinal lumen, and resorption in the ileum occurs in all vertebrate classes. In mammals, bile salt composition is determined by host and microbial enzymes, affecting signaling through the bile salt-binding transcription factor Farnesoid X receptor (Fxr). However, these processes in other vertebrate classes remain poorly understood. We show that key components of hepatic bile salt synthesis and ileal transport pathways are conserved and under control of Fxr in zebrafish. Zebrafish bile salts consist primarily of a C27 bile alcohol and a C24 bile acid which undergo multiple microbial modifications including bile acid deconjugation that augments Fxr activity. Using single-cell RNA sequencing, we provide a cellular atlas of the zebrafish intestinal epithelium and uncover roles for Fxr in transcriptional and differentiation programs in ileal and other cell types. These results establish zebrafish as a non-mammalian vertebrate model for studying bile salt metabolism and Fxr signaling.

physiology

Identification and characterization of a gene encoding NADP(H)-dependent bile acid 12β-hydroxysteroid dehydrogenase from Clostridium paraputrificum ATCC 25780

Bile acids are detergent molecules that solubilize dietary lipids and lipid-soluble vitamins. Humans synthesize bile acids with -orientation hydroxyl groups which can be biotransformed by gut microbiota to toxic, hydrophobic bile acids, such as deoxycholic acid (DCA). Gut microbiota can also convert hydroxyl groups from the -orientation through an oxo-intermediate to the {beta}-orientation, resulting in more hydrophilic, less toxic bile acids. This interconversion is catalyzed by regio-(C-3 vs. C-7) and stereospecific ( vs. {beta}) hydroxysteroid dehydrogenases (HSDHs). So far, genes encoding the urso-(7-HSDH & 7{beta}-HSDH) and iso-(3-HSDH & 3{beta}-HSDH) bile acid pathways have been described. Recently, multiple human gut clostridia were reported to encode 12-HSDH, which interconverts DCA and 12-oxolithocholic acid (12-oxoLCA). 12{beta}-HSDH completes the epi-bile acid pathway by converting 12-oxoLCA to the 12{beta}-bile acid denoted epiDCA; however, gene(s) encoding this enzyme have yet to be identified. We confirmed 12{beta}-HSDH activity in cultures of Clostridium paraputrificum ATCC 25780. From six candidate C. paraputrificum ATCC 25780 oxidoreductase genes, we discovered the first gene (DR024_RS09610) encoding bile acid 12{beta}-HSDH. Phylogenetic analysis revealed unforeseen diversity for 12{beta}-HSDH, leading to validation of two additional bile acid 12{beta}-HSDHs through a synthetic biology approach. By comparison to a previous phylogenetic analysis of 12-HSDH, we identified the first potential C-12 epimerizing strains: Collinsella tanakaei YIT 12063 and Collinsella stercoris DSM 13279. A Hidden Markov Model search against human gut metagenomes located putative 12{beta}-HSDH genes in about 30% of subjects within the cohorts analyzed, indicating this gene is relevant in the human gut microbiome.

microbiology

Bacteria on steroids: the enzymatic mechanism of an NADH-dependent dehydrogenase that regulates the conversion of cortisol to androgen in the gut microbiome

Microorganisms extensively modify host steroids, but whether these reactions merely eliminate hormones or create signals with new biological identities is largely unknown. Gut bacteria have been known for more than four decades to reduce cortisol to 20-dihydrocortisol, yet the physiological consequence of this transformation remained unresolved. Here we show that microbial cortisol reduction creates a distinct host signalling molecule. A 2.0-[A] structure of the bacterial enzyme DesC, together with molecular dynamics, biochemical perturbation and hybrid quantum mechanics/molecular mechanics simulations, defines substrate recognition and an ordered hydride-transfer and proton-relay mechanism. In gnotobiotic mice, isogenic bacteria expressing active DesC--but not a catalytically inactive S47A variant produced 20-dihydrocortisol in the intestine and circulation and reprogrammed colonic transcription. In primary intestinal epithelial cells, 20-dihydrocortisol, but not cortisol, activated ERK-dependent inflammatory and growth-associated programmes. These responses required nuclear receptor subfamily 4 group A member 3 (NR4A3), whose purified ligand-binding domain bound 20-dihydrocortisol but showed no detectable binding to cortisol. A Chicago colonoscopy cohort linked chronic cortisol exposure, faecal desC, the microbial metabolite and colorectal phenotypes. Thus, bacterial metabolism can change receptor selectivity and biological activity rather than simply terminate host hormone action, expanding the endocrine chemistry of the host.

microbiology

Infection with novel Bacteroides phage BV01 alters host transcriptome and bile acid metabolism in a common human gut microbe

The bacterial genus Bacteroides is among the most abundant and common taxa in the human gut, yet little is known about the phages infecting the group. Bacteroides phage BV01 (BV01) was identified as a prophage integrated on the chromosome of its host, Bacteroides vulgatus ATCC 8482. Phage BV01 is actively produced, and infects susceptible B. vulgatus hosts in the mouse gut. Infection with BV01 causes a generalized repression of the B. vulgatus transcriptome, downregulating 103 transcripts and upregulating only 12. Integration of BV01 disrupts the promoter sequence of a downstream gene encoding a putative tryptophan-rich sensory protein (tspO). Deletion of tspO and subsequent RNAseq analysis revealed that more than half of the differentially-regulated transcripts are shared with the BV01 lysogen, suggesting the transcriptomic response to BV01 is linked to tspO. Among these differentially-regulated transcripts are two encoding bile salt hydrolases. Bile acid deconjugation assays show that BV01 represses its hosts ability to hydrolyze bile acids in a tspO-dependent manner. Analysis of 256 published healthy human gut metagenomes suggests that phage integration adjacent to B. vulgatus-like tspO genes is rare within an individual, but common among humans. Finally, this work proposes a novel phage family that includes BV01, the Salyersviridae, whose host range spans the Bacteroides and is detectable in human-associated samples. Together, these findings highlight the importance of phage-host interactions to our understanding of how gut microbes sense and interact with their environment. IMPORTANCEThe links between human disease and the gut microbiome are numerous. Most mechanisms by which most gut microbes and their activities change and impact human health remain elusive. Phages, viruses that infect bacteria, are hypothesized to play a central role in modulating both community dynamics and functional activities. Here we have characterized an active prophage, BV01, which infects a pervasive and abundant human gut-associated species. BV01 infection alters its hosts transcriptional profile including its metabolism of bile acids, molecules implicated in mediating health and disease states in the gut. This highlights that prophages and other components of the variable genome should not be overlooked in bacterial genomes because they may dramatically alter host phenotypes. Furthermore, BV01 represents a new family of phages infecting human gut symbionts, providing a foundation for future investigations of phage-host interactions in these clinically-relevant but underexplored hosts.

microbiology