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Maternal low-calorie sweetener consumption rewires hypothalamic melanocortin circuits via a gut microbial co-metabolite pathway
Soyoung Park, Amine M. Belfoul, Marialetizia Rastelli, Alice Jang, Magali Monnoye, Hosung Bae, Anna Kamitakahara, Patrick Giavalisco, Shan Sun, Pierre-Yves Barelle, Jasmine Plows, Cholsoon Jang, Anthony Fodor, Michael I. Goran, Sebastien G. Bouret
Soyoung Park, Amine M. Belfoul, Marialetizia Rastelli, Alice Jang, Magali Monnoye, Hosung Bae, Anna Kamitakahara, Patrick Giavalisco, Shan Sun, Pierre-Yves Barelle, Jasmine Plows, Cholsoon Jang, Anthony Fodor, Michael I. Goran, Sebastien G. Bouret
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Research Article Metabolism Neuroscience

Maternal low-calorie sweetener consumption rewires hypothalamic melanocortin circuits via a gut microbial co-metabolite pathway

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Abstract

The prevalence of obesity and type 2 diabetes is growing at an alarming rate, including among pregnant women. Low-calorie sweeteners (LCSs) have increasingly been used as an alternative to sugar to deliver a sweet taste without the excessive caloric load. However, there is little evidence regarding their biological effects, particularly during development. Here, we used a mouse model of maternal LCS consumption to explore the impact of perinatal LCS exposure on the development of neural systems involved in metabolic regulation. We report that adult male, but not female, offspring from both aspartame- and rebaudioside A–exposed dams displayed increased adiposity and developed glucose intolerance. Moreover, maternal LCS consumption reorganized hypothalamic melanocortin circuits and disrupted parasympathetic innervation of pancreatic islets in male offspring. We then identified phenylacetylglycine (PAG) as a unique metabolite that was upregulated in the milk of LCS-fed dams and the serum of their pups. Furthermore, maternal PAG treatment recapitulated some of the key metabolic and neurodevelopmental abnormalities associated with maternal LCS consumption. Together, our data indicate that maternal LCS consumption has enduring consequences on the offspring’s metabolism and neural development and that these effects are likely to be mediated through the gut microbial co-metabolite PAG.

Authors

Soyoung Park, Amine M. Belfoul, Marialetizia Rastelli, Alice Jang, Magali Monnoye, Hosung Bae, Anna Kamitakahara, Patrick Giavalisco, Shan Sun, Pierre-Yves Barelle, Jasmine Plows, Cholsoon Jang, Anthony Fodor, Michael I. Goran, Sebastien G. Bouret

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Figure 2

Maternal LCS consumption alters body composition and causes glucose intolerance in the male offspring.

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Maternal LCS consumption alters body composition and causes glucose into...
(A) Litter size of dams consuming a water (control), rebaudioside A, or aspartame solution (n = 4–7 dams per group). (B) Body weight curves of male mice born to dams consuming a water (control), rebaudioside A, or aspartame solution (n = 9–10 animals per group). (C) Fat and (D) lean mass of 14-week-old male mice born to dams consuming a water (control), rebaudioside A, or aspartame solution (n = 6–10 per group). (E) Glucose tolerance tests and (F) areas under the curve of 11- to 12-week-old male mice born to dams consuming a water (control), rebaudioside A, or aspartame solution (n = 7–9 animals per group). (G and H) Serum leptin and (I and J) insulin levels in (G and I) P14 and (H and J) 14-week-old male mice born to dams consuming a water (control), rebaudioside A, or aspartame solution (n = 6–15 animals per group). (K) Food intake, (L) water intake, (M) locomotive activity, (N) respiratory exchange ratio (RER), and (O) energy expenditure in 14-week-old male mice born to dams consuming a water (control), rebaudioside A, or aspartame solution (n = 6–13 animals per group). Data are presented as mean ± SEM. Statistical significance between groups was determined by 2-way ANOVA followed by Bonferroni’s multiple-comparison test (B, E, and N) or 1-way ANOVA followed by Tukey’s multiple-comparison test (A, C, D, F–M, and O). *P ≤ 0.05, **P ≤ 0.01, ***P ≤ 0.001, ****P ≤ 0.0001.

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