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A Purification and In Vitro Activity Assay for a pppGpp Synthetase from Clostridium difficile
Published on: November 3, 2018
Bioinformatics-driven discovery of novel Clostridioides difficile lysins and experimental comparison with highly
Jacob M Furlon1, Spencer J Mitchell2, Chris Bailey-Kellogg2,3
1Thayer School of Engineering, Dartmouth, Hanover, New Hampshire, USA.
Abstract:
Clostridioides difficile is the single most deadly bacterial pathogen in the United States, and its global prevalence and outsized health impacts underscore the need for more effective therapeutic options. Towards this goal, a novel group of modified peptidoglycan hydrolases with significant in vitro bactericidal activity have emerged as potential candidates for treating C. difficile infections (CDI). To date, discovery and development efforts directed at these CDI-specific lysins have been limited, and in particular there has been no systematic comparison of known or newly discovered lysin candidates. Here, we detail bioinformatics-driven discovery of six new anti-C. difficile lysins belonging to the amidase-3 family of enzymes, and we describe experimental comparison of their respective catalytic domains (CATs) with highly active CATs from the literature. Our quantitative analyses include metrics for expression level, inherent antibacterial activity, breadth of strain selectivity, killing of germinating spores, and structural and functional measures of thermal stability. Importantly, prior studies have not examined stability as a performance metric, and our results show that the panel of eight enzymes possess widely variable thermal denaturation temperatures and resistance to heat inactivation, including some enzymes that exhibit marginal stability at body temperature. Ultimately, no single enzyme dominated with respect to all performance measures, suggesting the need for a balanced assessment of lysin properties during efforts to find, engineer, and develop candidates with true clinical potential.
Insights
Researchers discovered new lysins to combat Clostridioides difficile infections. These enzymes show varied effectiveness and stability, highlighting the need for careful selection in developing new treatments for this deadly bacterial pathogen.
Area of Science:
- Microbiology
- Biochemistry
- Drug Discovery
Background:
- Clostridioides difficile is a leading cause of bacterial infections, necessitating novel therapeutic strategies.
- Modified peptidoglycan hydrolases (lysins) show promise for treating C. difficile infections (CDI).
- Systematic comparisons of existing and novel lysin candidates are lacking.
Purpose of the Study:
- To discover and characterize new anti-C. difficile lysins.
- To experimentally compare the performance of novel lysins with known ones.
- To assess thermal stability as a critical performance metric for lysin development.
Main Methods:
- Bioinformatics-driven discovery of amidase-3 family lysins.
- Experimental characterization of catalytic domains (CATs).
- Quantitative analysis of expression, antibacterial activity, strain selectivity, spore killing, and thermal stability.
Main Results:
- Six new anti-C. difficile lysins were identified.
- A panel of eight lysins exhibited significant variability in antibacterial activity and thermal stability.
- Some lysins demonstrated marginal stability at body temperature, a previously unexamined metric.
- No single lysin excelled across all evaluated performance measures.
Conclusions:
- The discovery of new lysins offers potential for CDI treatment.
- Enzyme stability is a crucial, yet often overlooked, factor in lysin development.
- A balanced assessment of multiple performance metrics is essential for selecting optimal lysin candidates for clinical development.

