Salmonella Typhimurium vitamin B12-dependent methionine metabolism regulates Caenorhabditis elegans development and vitellogenesis

ABSTRACT Host-microbe interactions extend beyond infection, involving microbial metabolites, such as short-chain fatty acids, vitamins, and other bioactive compounds, that influence host physiology and development. Using Caenorhabditis elegans , an excellent model organism for host-microbe interactions, we demonstrate that Salmonella Typhimurium significantly accelerates C. elegans growth through a vitamin B12-dependent mechanism affecting methionine metabolism. We measured the reproductive maturity of C. elegans via embryo and oocyte production in response to various Salmonella virulence factor mutants and Salmonella strains deficient in cobalamin, folate, and methionine synthesis pathways. We found that the Salmonella cbiB and metH genes are essential for rapid development in C. elegans . Moreover, the C. elegans metr-1 mutant, which lacks functional methionine synthase, did not exhibit increased reproductive maturity when fed on S . Typhimurium or Escherichia coli OP50 supplemented with vitamin B12. However, methionine supplementation rescued this phenotype, indicating that C. elegans obtains vitamin B12 from S . Typhimurium, enhancing the methionine/S-adenosylmethionine (MET/SAM) cycle. We further observed that the C. elegans sams-1 mutant, deficient in SAM synthase, showed growth defects and reduced oocyte production when fed on Salmonella or OP50 supplemented with vitamin B12 or methionine, respectively. Thus, SAM emerges as a key link between bacterial vitamin B12 metabolism and host reproduction. Additionally, Salmonella increases vitellogenin-2 expression, reduces glutathione S-transferase activity, and decreases mitochondrial function. However, Δ cbiB and Δ metH reversed the beneficial effects of vitamin B12-dependent methionine on vitellogenesis and oxidative stress, suggesting that Salmonella promotes vitellogenesis and reduces oxidative stress through vitamin B12-dependent mitochondrial regulation, linking microbial metabolism to host development. IMPORTANCE Understanding the interactions between hosts and pathogens is essential for improving host health. Caenorhabditis elegans obtains micronutrients from diet, gut microbiota, and supplements, but the contribution of microbiota in nutrient absorption is not fully understood. Bacterial metabolism may influence micronutrient status and pathogenicity, resulting in both positive and adverse health effects on the host. This study demonstrates that pathogenic Salmonella can serve as a nutritional source for C. elegans when the two organisms coexist in the same environment. The findings suggest that, rather than being solely detrimental, Salmonella can alter the metabolism of C. elegans , highlighting a complex interaction between the pathogen and its host. This relationship may provide insights into the ecological dynamics of microbial communities and their influence on host physiology and development.

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Journal
Microbiology Spectrum
Published
2026-09-29
DOI
https://doi.org/10.1128/spectrum.00827-26
Primary Topic
Genetics, Aging, and Longevity in Model Organisms
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article
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article

Salmonella Typhimurium vitamin B12-dependent methionine metabolism regulates Caenorhabditis elegans development and vitellogenesis

Vidya Devi Negi, Chamjailiu Daimai
Microbiology Spectrum
Genetics, Aging, and Longevity in Model Organisms
article

Salmonella Typhimurium vitamin B12-dependent methionine metabolism regulates Caenorhabditis elegans development and vitellogenesis

Vidya Devi Negi, Chamjailiu Daimai
article en

Abstract

ABSTRACT Host-microbe interactions extend beyond infection, involving microbial metabolites, such as short-chain fatty acids, vitamins, and other bioactive compounds, that influence host physiology and development. Using Caenorhabditis elegans , an excellent model organism for host-microbe interactions, we demonstrate that Salmonella Typhimurium significantly accelerates C. elegans growth through a vitamin B12-dependent mechanism affecting methionine metabolism. We measured the reproductive maturity of C. elegans via embryo and oocyte production in response to various Salmonella virulence factor mutants and Salmonella strains deficient in cobalamin, folate, and methionine synthesis pathways. We found that the Salmonella cbiB and metH genes are essential for rapid development in C. elegans . Moreover, the C. elegans metr-1 mutant, which lacks functional methionine synthase, did not exhibit increased reproductive maturity when fed on S . Typhimurium or Escherichia coli OP50 supplemented with vitamin B12. However, methionine supplementation rescued this phenotype, indicating that C. elegans obtains vitamin B12 from S . Typhimurium, enhancing the methionine/S-adenosylmethionine (MET/SAM) cycle. We further observed that the C. elegans sams-1 mutant, deficient in SAM synthase, showed growth defects and reduced oocyte production when fed on Salmonella or OP50 supplemented with vitamin B12 or methionine, respectively. Thus, SAM emerges as a key link between bacterial vitamin B12 metabolism and host reproduction. Additionally, Salmonella increases vitellogenin-2 expression, reduces glutathione S-transferase activity, and decreases mitochondrial function. However, Δ cbiB and Δ metH reversed the beneficial effects of vitamin B12-dependent methionine on vitellogenesis and oxidative stress, suggesting that Salmonella promotes vitellogenesis and reduces oxidative stress through vitamin B12-dependent mitochondrial regulation, linking microbial metabolism to host development. IMPORTANCE Understanding the interactions between hosts and pathogens is essential for improving host health. Caenorhabditis elegans obtains micronutrients from diet, gut microbiota, and supplements, but the contribution of microbiota in nutrient absorption is not fully understood. Bacterial metabolism may influence micronutrient status and pathogenicity, resulting in both positive and adverse health effects on the host. This study demonstrates that pathogenic Salmonella can serve as a nutritional source for C. elegans when the two organisms coexist in the same environment. The findings suggest that, rather than being solely detrimental, Salmonella can alter the metabolism of C. elegans , highlighting a complex interaction between the pathogen and its host. This relationship may provide insights into the ecological dynamics of microbial communities and their influence on host physiology and development.

Microbiology Spectrum
Indian Institute of Science Education and Research Mohali (IN)
Openalex Percentile: Top 16%
Genetics, Aging, and Longevity in Model Organisms
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