Open Access
| Issue |
Med Sci (Paris)
Volume 42, Number 1, Janvier 2026
Les microbes, l’Anthropocène et nous
|
|
|---|---|---|
| Page(s) | 65 - 70 | |
| Section | M/S Revues | |
| DOI | https://doi.org/10.1051/medsci/2025253 | |
| Published online | 23 January 2026 | |
- GBD 2017 Diet Collaborators. Health effects of dietary risks in 195 countries, 1990-2017: a systematic analysis for the Global Burden of Disease Study 2017. Lancet 2019 ; 393 : 1958–72. [CrossRef] [PubMed] [Google Scholar]
- Arnone D, Chabot C, Heba A-C, et al. Sugars and gastrointestinal health. Clin Gastroenterol Hepatol 2022 ; 20 : 1912–24.e7. [Google Scholar]
- Mukhopadhya I, Louis P. Gut microbiota-derived short-chain fatty acids and their role in human health and disease. Nat Rev Microbiol 2025 ; 23 : 635–51. [Google Scholar]
- Grant ET, De Franco H, Desai MS. Non-SCFA microbial metabolites associated with fiber fermentation and host health. Trends Endocrinol Metab 2025 ; 36 : 70–82. [Google Scholar]
- Armstrong HK, Bording-Jorgensen M, Santer DM et al. Unfermented beta-fructan fibers fuel inflammation in select inflammatory bowel disease Patients. Gastroenterol 2023 ; 164 : 228–40. [Google Scholar]
- Grant ET, Parrish A, Boudaud M, et al. Dietary fibers boost gut microbiota-produced B vitamin pool and alter host immune landscape. Microbiome 2024 ; 12 : 179. [Google Scholar]
- Lluch A, Maillot M, Gazan R, et al. Individual diet modeling shows how to balance the diet of french adults with or without excessive free sugar intakes. Nutrients 2017 ; 9 : 162. [Google Scholar]
- Desai MS, Seekatz AM, Koropatkin NM, et al. A dietary fiber-deprived gut microbiota degrades the colonic mucus barrier and enhances pathogen susceptibility. Cell 2016 ; 167 : 1339–53.e21. [Google Scholar]
- Pereira GV, Boudaud M, Wolter M, et al. Opposing diet, microbiome, and metabolite mechanisms regulate inflammatory bowel disease in a genetically susceptible host. Cell Host Microbe 2024 ; 32 : 527–42.e9. [Google Scholar]
- Apport en graisses totales pour la prévention de la prise de poids excessive chez l’adulte et l’enfant : résumé de la ligne directrice de l’OMS 1st ed. Geneva : World Health Organization, 2024. https://www.who.int/fr/publications/i/item/9789240083592 [Google Scholar]
- Devkota S, Wang Y, Musch MW, et al. Dietary-fat-induced taurocholic acid promotes pathobiont expansion and colitis in Il10−/− mice. Nature 2012 ; 487 : 104–8. [Google Scholar]
- Du W, Zou Z-P, Ye B-C, et al. Gut microbiota and associated metabolites: key players in high-fat diet-induced chronic diseases. Gut Microbes ; 17 : 2494703. [Google Scholar]
- Zou B, Zhao D, Zhou S, et al. Insight into the effects of Omega-3 fatty acids on gut microbiota: impact of a balanced tissue Omega-6/Omega-3 ratio. Front Nutr 2025 ; 12 : 1575323. [Google Scholar]
- Wolter M, Grant ET, Boudaud M, et al. Leveraging diet to engineer the gut microbiome. Nat Rev Gastroenterol Hepatol 2021 ; 18 : 885–902. [Google Scholar]
- Laurans L, Taleb S. Métabolisme du tryptophane et interactions avec le microbiote intestinal. Cahiers de Nutrition et de Diététique 2021 ; 56 : 154–61. [Google Scholar]
- Llewellyn SR, Britton GJ, Contijoch EJ, et al. Interactions between diet and the intestinal microbiota alter intestinal permeability and colitis severity in mice. Gastroenterol 2018 ; 154 : 1037–46.e2. [Google Scholar]
- Étude de santé sur l’environnement, la biosurveillance, l’activité physique et la nutrition (Esteban 2014-2016). Volet Nutrition. Chapitre dosages biologiques : vitamines et minéraux n.d. [Google Scholar]
- Allès B, Baudry J, Méjean C, et al. Comparison of sociodemographic and nutritional characteristics between self-reported vegetarians, vegans, and meat-eaters from the NutriNet-Santé study. Nutrients 2017 ; 9 : 1023. [Google Scholar]
- Tarracchini C, Lordan C, Milani C, et al. Vitamin biosynthesis in the gut: interplay between mammalian host and its resident microbiota. Microbiol Mol Biol Rev 2025 ; e00184–23. [Google Scholar]
- Magnúsdóttir S, Ravcheev D, De Crécy-Lagard V, et al. Systematic genome assessment of B-vitamin biosynthesis suggests co-operation among gut microbes. Front Genet 2015 ; 6 : 148. [Google Scholar]
- Pham VT, Dold S, Rehman A, et al. Vitamins, the gut microbiome and gastrointestinal health in humans. Nutr Res 2021 ; 95 : 35–53. [Google Scholar]
- Waterhouse M, Hope B, Krause L, et al. Vitamin D and the gut microbiome: a systematic review of in vivo studies. Eur J Nutr 2019 ; 58 : 2895–910. [Google Scholar]
- Guetterman HM, Huey SL, Knight R, et al. Vitamin B-12 and the gastrointestinal microbiome: a systematic review. Adv Nutr 2022 ; 13 : 530–58. [Google Scholar]
- Bielik V, Kolisek M. Bioaccessibility and bioavailability of minerals in relation to a healthy gut microbiome. Int J Mol Sci 2021 ; 22 : 6803. [Google Scholar]
- Trinidad T, Wolever T, Thompson L. Effect of acetate and propionate on calcium absorption from the rectum and distal colon of humans. Am J Clin Nutr 1996 ; 63 : 574–8. [Google Scholar]
- Yang Q, Liang Q, Balakrishnan B, et al. Role of dietary nutrients in the modulation of gut microbiota: a narrative review. Nutrients 2020 ; 12 : 381. [Google Scholar]
- Monteiro CA, Cannon G, Levy RB, et al. Ultra-processed foods: what they are and how to identify them. Public Health Nutr 2019 ; 22 : 936–41. [Google Scholar]
- Monteiro CA. Nutrition and health. The issue is not food, nor nutrients, so much as processing. Public Health Nutr 2009 ; 12 : 729–31. [Google Scholar]
- Martínez Steele E, Baraldi LG, Louzada ML da C, et al. Ultra-processed foods and added sugars in the US diet: evidence from a nationally representative cross-sectional study. BMJ Open 2016 ; 6 : e009892. [Google Scholar]
- Julia C, Martinez L, Allès B, et al. Contribution of ultra-processed foods in the diet of adults from the French NutriNet-Santé study. Public Health Nutr 2018 ; 21 : 27–37. [Google Scholar]
- Diallo A, Deschasaux M, Latino-Martel P, et al. Red and processed meat intake and cancer risk: results from the prospective NutriNet-Santé cohort study. Int J Cancer 2018 ; 142 : 230–7. [Google Scholar]
- Baudry J, Lelong H, Adriouch S, et al. Association between organic food consumption and metabolic syndrome: cross-sectional results from the NutriNet-Santé study. Eur J Nutr 2018 ; 57 : 2477–88. [Google Scholar]
- Lelong H, Blacher J, Baudry J, et al. Individual and combined effects of dietary factors on risk of incident hypertension: prospective analysis from the NutriNet-Santé cohort. Hypertension 2017 ; 70 : 712–20. [Google Scholar]
- Buscail C, Sabate J-M, Bouchoucha M, et al. Western dietary pattern is associated with irritable bowel syndrome in the french NutriNet cohort. Nutrients 2017 ; 9 : 986. [Google Scholar]
- Buscail C, Sabate J-M, Bouchoucha M, et al. Association between self-reported vegetarian diet and the irritable bowel syndrome in the French NutriNet cohort. PLoS One 2017 ; 12 : e0183039. [Google Scholar]
- Suez J, Korem T, Zeevi D, et al. Artificial sweeteners induce glucose intolerance by altering the gut microbiota. Nature 2014 ; 514 : 181–6. [Google Scholar]
- Serrano J, Smith KR, Crouch AL, et al. High-dose saccharin supplementation does not induce gut microbiota changes or glucose intolerance in healthy humans and mice. Microbiome 2021 ; 9 : 11. [Google Scholar]
- Chassaing B, Koren O, Goodrich JK, et al. Dietary emulsifiers impact the mouse gut microbiota promoting colitis and metabolic syndrome. Nature 2015 ; 519 : 92–6. [CrossRef] [PubMed] [Google Scholar]
- Zahran SA, Mansour SM, Ali AE, et al. Sunset Yellow dye effects on gut microbiota, intestinal integrity, and the induction of inflammasomopathy with pyroptotic signaling in male Wistar rats. Food Chem Toxicol 2024 ; 187 : 114585. [Google Scholar]
- Kwon YH, Banskota S, Wang H, et al. Chronic exposure to synthetic food colorant Allura Red AC promotes susceptibility to experimental colitis via intestinal serotonin in mice. Nat Commun 2022 ; 13 : 7617. [Google Scholar]
- Rinninella E, Cintoni M, Raoul P, et al. Impact of food additive titanium dioxide on gut microbiota composition, microbiota-associated functions, and gut barrier: a systematic review of in vivo animal studies. IJERPH 2021 ; 18 : 2008. [Google Scholar]
- Issa M, Michaudel C, Guinot M, et al. Long-term exposure from perinatal life to food-grade TiO2 alters intestinal homeostasis and predisposes to food allergy in young mice. Allergy 2024 ; 79 : 471–84. [Google Scholar]
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