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Updated: Feb 13, 2026

A Mouse Model for Pathogen-induced Chronic Inflammation at Local and Systemic Sites
Published on: August 8, 2014
Porphyromonas gingivalis hydrogen sulfide enhances methyl mercaptan-induced pathogenicity in mouse abscess formation
Suguru Nakamura1,2, Koki Shioya3, B Yukihiro Hiraoka4
1Department of Periodontology, Matsumoto Dental University, Shiojiri, Japan.
Abstract:
Porphyromonas gingivalis produces hydrogen sulfide (H2S) from l-cysteine. However, the role of H2S produced by P. gingivalis in periodontal inflammation is unclear. In this study, we identified the enzyme that catalyses H2S production from l-cysteine and analysed the role of H2S using a mouse abscess model. The enzyme identified was identical to methionine γ-lyase (PG0343), which produces methyl mercaptan (CH3SH) from l-methionine. Therefore, we analysed H2S and CH3SH production by P. gingivalis W83 and a PG0343-deletion mutant (ΔPG0343) with/without l-cysteine and/or l-methionine. The results indicated that CH3SH is produced constitutively irrespective of the presence of l-methionine, while H2S was greatly increased by both P. gingivalis W83 and ΔPG0343 in the presence of l-cysteine. In contrast, CH3SH production by ΔPG0343 was absent irrespective of the presence of l-methionine, and H2S production was eliminated in the absence of l-cysteine. Thus, CH3SH and H2S production involves different substrates, l-methionine or l-cysteine, respectively. Based on these characteristics, we analysed the roles of CH3SH and H2S in abscess formation in mice by P. gingivalis W83 and ΔPG0343. Abscess formation by P. gingivalis W83, but not ΔPG0343, differed significantly in the presence and absence of l-cysteine. In addition, the presence of l-methionine did not affect the size of abscesses generated by P. gingivalis W83 and ΔPG0343. Therefore, we conclude that H2S produced by P. gingivalis does not induce inflammation; however, H2S enhances inflammation caused by CH3SH. Thus, these results suggest the H2S produced by P. gingivalis plays a supportive role in inflammation caused by methionine γ-lyase.
Insights
Porphyromonas gingivalis produces hydrogen sulfide (H2S) and methyl mercaptan (CH3SH) via different pathways. While H2S does not directly cause inflammation, it enhances inflammation initiated by CH3SH, suggesting a supportive role in periodontal disease.
Area of Science:
- Microbiology
- Periodontal Disease Pathogenesis
- Host-Pathogen Interactions
Background:
- Porphyromonas gingivalis is implicated in periodontal inflammation.
- The role of hydrogen sulfide (H2S) produced by P. gingivalis in this process remains unclear.
- Methionine gamma-lyase (PG0343) is identified as the enzyme responsible for H2S production from L-cysteine.
Purpose of the Study:
- To identify the enzyme responsible for H2S production by P. gingivalis.
- To elucidate the distinct roles of H2S and methyl mercaptan (CH3SH) in P. gingivalis-induced inflammation.
- To investigate the contribution of these compounds to abscess formation in a mouse model.
Main Methods:
- Enzyme identification for H2S production from L-cysteine.
- Analysis of H2S and CH3SH production by wild-type P. gingivalis and a PG0343 deletion mutant.
- Utilizing a mouse abscess model to assess the role of H2S and CH3SH in inflammation.
Main Results:
- P. gingivalis produces CH3SH constitutively and H2S from L-cysteine.
- A PG0343 deletion mutant lacked CH3SH production but retained L-cysteine-dependent H2S production.
- Abscess formation was significantly influenced by L-cysteine presence, indicating H2S enhances CH3SH-driven inflammation.
Conclusions:
- H2S production by P. gingivalis is dependent on L-cysteine and catalyzed by methionine gamma-lyase (PG0343).
- H2S itself does not induce inflammation but potentiates inflammation caused by CH3SH.
- These findings suggest H2S plays a supportive role in P. gingivalis-associated periodontal inflammation.
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