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April 14, 2026G3 Genes Genomes Genetics0 citationsOpen Access

SIN-3 coregulator maintains adaptive capacity to different diets in Caehnorhabditis elegans through vitamin B12

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FPFrancesca PalladinoCBCécile Bedet

Key Points

  • This research aims to investigate the role of SIN-3 in the dietary adaptation of Caehnorhabditis elegans.
  • Examined survival of sin-3 mutant Caehnorhabditis elegans on different E. coli strains.
  • Compared effects of vitamin B12 supplementation on mutant worms fed with OP50.
  • Analyzed the impact of loss of metr-1 on lethality in mutant worms on HT115.
  • Sin-3 mutants showed lethality when shifted from OP50 to HT115 due to dietary vitamin B12 differences.
  • Supplementing OP50 with vitamin B12 reproduced lethality observed on HT115.
  • Loss of metr-1 reduced lethality in HT115, while complementing with metabolites increased lethality on OP50.

Abstract

Abstract Diet has profound effects on metabolism and health, requiring animals to adapt their physiology to varying food sources. Here we show that the conserved SIN3 transcriptional coregulator is required in Caehnorhabditis elegans for animals to adapt to different bacterial diets. Shifting sin-3 mutant animals from the commonly used E. coli OP50 strain to the E. coli HT115 strain used for RNAi knockdown experiments has a dramatic impact on survival, leading to the lethality of mutant animals at the young adult stage. A major difference between OP50 and HT115 is vitamin B12 content, which is lower in OP50 than HT115. Feeding sin-3 mutant animals on OP50 bacteria supplemented with vitamin B12 reproduced the lethality observed on HT115. Vitamin B12 functions in two metabolic pathways: the canonical propionate breakdown pathway and the methionine/S-adenosylmethionine (met/SAM) cycle. Loss of metr-1, encoding the methionine synthase enzyme that requires vitamin B12 as a cofactor in the met/SAM cycle repressed lethality on HT115. Conversely, complementation with metabolites of the met/SAM cycle enhanced lethality on OP50. These results show that SIN-3 is required for animals to adapt to dietary changes through B12-dependent metabolic pathways.

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Cite This Study

Palladino et al. (2026) studied this question.

synapsesocial.com/papers/69ddd938e195c95cdefd692ahttps://doi.org/10.1093/g3journal/jkag087
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