Microbial bile salt hydrolases mediate the efficacy of faecal microbiota transplant in the treatment of recurrent Clostridioides difficile infection
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Author(s)
Type
Journal Article
Abstract
Objective Faecal microbiota transplant (FMT) effectively treats recurrent Clostridioides difficile infection (rCDI), but its mechanisms of action remain poorly defined. Certain bile acids affect C. difficile germination or vegetative growth. We hypothesised that loss of gut microbiota-derived bile salt hydrolases (BSHs) predisposes to CDI by perturbing gut bile metabolism, and that BSH restitution is a key mediator of FMT’s efficacy in treating the condition.
Design Using stool collected from patients and donors pre-FMT/post-FMT for rCDI, we performed 16S rRNA gene sequencing, ultra performance liquid chromatography mass spectrometry (UPLC-MS) bile acid profiling, BSH activity measurement, and qPCR of bsh/baiCD genes involved in bile metabolism. Human data were validated in C. difficile batch cultures and a C57BL/6 mouse model of rCDI.
Results From metataxonomics, pre-FMT stool demonstrated a reduced proportion of BSH-producing bacterial species compared with donors/post-FMT. Pre-FMT stool was enriched in taurocholic acid (TCA, a potent C. difficile germinant); TCA levels negatively correlated with key bacterial genera containing BSH-producing organisms. Post-FMT samples demonstrated recovered BSH activity and bsh/baiCD gene copy number compared with pretreatment (p<0.05). In batch cultures, supernatant from engineered bsh-expressing E. coli and naturally BSH-producing organisms (Bacteroides ovatus, Collinsella aerofaciens, Bacteroides vulgatus and Blautia obeum) reduced TCA-mediated C. difficile germination relative to culture supernatant of wild-type (BSH-negative) E. coli. C. difficile total viable counts were ~70% reduced in an rCDI mouse model after administration of E. coli expressing highly active BSH relative to mice administered BSH-negative E. coli (p<0.05).
Conclusion Restoration of gut BSH functionality contributes to the efficacy of FMT in treating rCDI.
Design Using stool collected from patients and donors pre-FMT/post-FMT for rCDI, we performed 16S rRNA gene sequencing, ultra performance liquid chromatography mass spectrometry (UPLC-MS) bile acid profiling, BSH activity measurement, and qPCR of bsh/baiCD genes involved in bile metabolism. Human data were validated in C. difficile batch cultures and a C57BL/6 mouse model of rCDI.
Results From metataxonomics, pre-FMT stool demonstrated a reduced proportion of BSH-producing bacterial species compared with donors/post-FMT. Pre-FMT stool was enriched in taurocholic acid (TCA, a potent C. difficile germinant); TCA levels negatively correlated with key bacterial genera containing BSH-producing organisms. Post-FMT samples demonstrated recovered BSH activity and bsh/baiCD gene copy number compared with pretreatment (p<0.05). In batch cultures, supernatant from engineered bsh-expressing E. coli and naturally BSH-producing organisms (Bacteroides ovatus, Collinsella aerofaciens, Bacteroides vulgatus and Blautia obeum) reduced TCA-mediated C. difficile germination relative to culture supernatant of wild-type (BSH-negative) E. coli. C. difficile total viable counts were ~70% reduced in an rCDI mouse model after administration of E. coli expressing highly active BSH relative to mice administered BSH-negative E. coli (p<0.05).
Conclusion Restoration of gut BSH functionality contributes to the efficacy of FMT in treating rCDI.
Date Issued
2019-09-06
Date Acceptance
2019-01-15
Citation
Gut, 2019, 68, pp.1791-1800
ISSN
0017-5749
Publisher
BMJ Publishing Group
Start Page
1791
End Page
1800
Journal / Book Title
Gut
Volume
68
Copyright Statement
© Author(s) (or their employer(s)) 2019. Re-use permitted under CC BY. Published by BMJ. This is an open access article distributed in accordance with the Creative Commons Attribution 4.0 Unported (CC BY 4.0) license, which permits others to copy, redistribute, remix, transform and build upon this work for any purpose, provided the original work is properly cited, a link to the licence is given, and indication of whether changes were made. See: https://creativecommons.org/licenses/by/4.0/.
Sponsor
Medical Research Council
Medical Research Council (MRC)
Imperial College London Joint Translational Fund
Imperial College Healthcare NHS Trust- BRC Funding
Imperial College Healthcare NHS Trust- BRC Funding
Wellcome Trust
Medical Research Council (MRC)
Imperial College Healthcare NHS Trust: Research Capability Funding (RCF)
Identifier
https://gut.bmj.com/content/68/10/1791
Grant Number
MR/R00875/1
MR/R000875/1
RDA02
RDA27
107660/Z/15/Z
MR/P028225/1
RDF04
Subjects
Science & Technology
Life Sciences & Biomedicine
Gastroenterology & Hepatology
SPORE GERMINATION
ACID
COLONOSCOPY
METABOLISM
SCINDENS
STRAINS
bile acids
bile salt hydrolase
clostridioides difficile
gut microbiota
metabonome
Amidohydrolases
Animals
Clostridioides difficile
Clostridium Infections
DNA, Bacterial
Disease Models, Animal
Fecal Microbiota Transplantation
Female
Gastrointestinal Microbiome
Glycocholic Acid
Humans
Mice
Mice, Inbred C57BL
Recurrence
Tandem Mass Spectrometry
Animals
Mice, Inbred C57BL
Humans
Mice
Clostridium Infections
Disease Models, Animal
Recurrence
Glycocholic Acid
Amidohydrolases
DNA, Bacterial
Female
Tandem Mass Spectrometry
Gastrointestinal Microbiome
Fecal Microbiota Transplantation
Clostridioides difficile
Gastroenterology & Hepatology
1103 Clinical Sciences
1114 Paediatrics and Reproductive Medicine
Publication Status
Published
Date Publish Online
2019-02-11