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Cefoperazone-treated Mouse Model of Clinically-relevant Clostridium difficile Strain R20291
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Clostridioides difficile exploits xanthine and uric acid as nutrients by utilizing a selenium-dependent catabolic
Michael A Johnstone1, William T Self1
1Burnett School of Biomedical Sciences, College of Medicine, University of Central Florida, Orlando, Florida, USA.
Microbiology Spectrum
|August 21, 2024
Summary
This study identifies YqeB as crucial for selenium-dependent purine breakdown in Clostridioides difficile. The research elucidates a key pathway for selenium utilization in bacteria, impacting purine metabolism.
Area of Science:
- Microbiology
- Biochemistry
- Trace Element Metabolism
Background:
- Selenium is vital for redox biology, incorporated as selenocysteine or as a cofactor in selenium-dependent molybdenum hydroxylases (SDMHs).
- SDMHs in purinolytic clostridia degrade purines like hypoxanthine, xanthine, and uric acid for carbon and nitrogen.
- The genes governing selenium cofactor insertion and maturation in SDMHs are largely uncharacterized.
Purpose of the Study:
- To characterize the selenium utilization pathway in Clostridioides difficile, a model organism.
- To investigate the role of this pathway in the catabolism of host-derived purines.
- To identify genes involved in selenium cofactor maturation for SDMHs.
Main Methods:
- Utilized Clostridioides difficile as a genetic model.
- Assessed bacterial growth in minimal medium with and without purines (hypoxanthine, xanthine, uric acid).
- Generated and analyzed selD (selenophosphate synthetase) and yqeB/yqeC deletion mutants using CRISPR-Cas9 technology.
Main Results:
- Clostridioides difficile utilizes hypoxanthine, xanthine, and uric acid for growth.
- selD mutants showed impaired growth on xanthine and uric acid, indicating a selenium-dependent process.
- ΔyqeB mutants exhibited growth defects similar to selD mutants, while ΔyqeC mutants showed no significant phenotype.
- YqeB is implicated in selenium-dependent purine catabolism.
Conclusions:
- YqeB plays a significant role in the selenium-dependent purine catabolism pathway.
- Clostridioides difficile serves as a suitable model for studying biological selenium utilization.
- This research provides a genetic basis for understanding selenium cofactor insertion and its role in purine metabolism.
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