Related Experiment Video
Updated: Jul 5, 2026

Studying Oxidative Stress Caused by the Mitis Group Streptococci in Caenorhabditis elegans
Published on: March 23, 2019
Characterization of a Helicobacter hepaticus putA mutant strain in host colonization and oxidative stress
Navasona Krishnan1, Alan R Doster, Gerald E Duhamel
1Department of Biochemistry, University of Nebraska, Lincoln, NE 68588, USA.
Abstract:
Helicobacter hepaticus is a gram-negative, spiral-shaped microaerophilic bacterium associated with chronic intestinal infection leading to hepatitis and colonic and hepatic carcinomas in susceptible strains of mice. In the closely related human pathogen Helicobacter pylori, L-proline is a preferred respiratory substrate and is found at significantly high levels in the gastric juice of infected patients. A previous study of the proline catabolic PutA flavoenzymes from H. pylori and H. hepaticus revealed that Helicobacter PutA generates reactive oxygen species during proline oxidation by transferring electrons from reduced flavin to molecular oxygen. We further explored the preference for proline as a respiratory substrate and the potential impact of proline metabolism on the redox environment in Helicobacter species during host infection by disrupting the putA gene in H. hepaticus. The resulting putA knockout mutant strain was characterized by oxidative stress analysis and mouse infection studies. The putA mutant strain of H. hepaticus exhibited increased proline levels and resistance to oxidative stress relative to that of the wild-type strain, consistent with proline's role as an antioxidant. The significant increase in stress resistance was attributed to higher proline content, as no upregulation of antioxidant genes was observed for the putA mutant strain. The wild-type and putA mutant H. hepaticus strains displayed similar levels of infection in mice, but in mice challenged with the putA mutant strain, significantly reduced inflammation was observed, suggesting a role for proline metabolism in H. hepaticus pathogenicity in vivo.
Insights
Helicobacter hepaticus uses L-proline as an antioxidant, increasing its resistance to oxidative stress. Disrupting the putA gene reduced inflammation during infection, suggesting proline metabolism impacts bacterial pathogenicity.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Oxidative Stress
Background:
- Helicobacter hepaticus causes chronic intestinal infections, leading to liver and colon cancer in mice.
- L-proline is a key respiratory substrate for Helicobacter species, with high levels found in infected patients.
- Helicobacter PutA enzymes generate reactive oxygen species during proline oxidation.
Purpose of the Study:
- To investigate the role of L-proline as a respiratory substrate in Helicobacter hepaticus.
- To explore the impact of proline metabolism on the bacterial redox environment during host infection.
- To determine the effect of disrupting the putA gene on H. hepaticus pathogenicity.
Main Methods:
- Generation of a putA knockout mutant strain of H. hepaticus.
- Oxidative stress analysis of the wild-type and mutant strains.
- Mouse infection studies to assess pathogenicity and inflammation.
Main Results:
- The putA mutant strain showed increased proline levels and enhanced resistance to oxidative stress compared to the wild-type.
- Increased stress resistance in the mutant was attributed to higher proline content, not antioxidant gene upregulation.
- Similar infection levels were observed, but the putA mutant induced significantly less inflammation in mice.
Conclusions:
- L-proline acts as an antioxidant in Helicobacter hepaticus, contributing to stress resistance.
- Proline metabolism plays a role in the pathogenicity of H. hepaticus in vivo, specifically in modulating inflammation.
- Targeting proline metabolism could be a potential strategy for controlling H. hepaticus infections.
