Prenatal caloric restriction adjusts the energy homeostasis and behavior in response to acute and chronic variations in food availability in adulthood
- PMID: 37831173
- DOI: 10.1007/s00360-023-01520-6
Prenatal caloric restriction adjusts the energy homeostasis and behavior in response to acute and chronic variations in food availability in adulthood
Abstract
Fetal metabolic programming produced by unfavorable prenatal nutritional conditions leads to the development of a disorder called "thrifty phenotype", which is associated with pathologies such as diabetes and obesity in adulthood. However, from an ecophysiological approach, few studies have addressed the development of thrifty phenotypes in terms of energy. This might represent an adaptive advantage against caloric deficiency conditions extending into adulthood. The objective of this study is to investigate the potential adaptive value of the thrifty phenotype expression through prenatal programming in a rodent model experiencing varying dietary conditions in different temporal contexts. To fill this gap, adult males of Mus musculus (BALB/C) from two maternal pregnancy groups were analyzed: control (ad libitum feeding) and caloric restriction from day 10 of gestation (70% restriction). Adult offspring of these groups were split further for two experiments: acute food deprivation and chronic caloric restriction at 60%. The acute food deprivation was performed for 24, 48 or 72 h while the caloric restriction regime was sustained for 20 days. For each experiment, morphological variables, such as body and organ mass, and gene expression related to lipid and carbohydrate metabolism from the liver and brain, were evaluated. In chronic caloric restriction, behavioral tests (open-field test and home-cage behavior) were performed. Our results indicate that under acute deprivation, the liver mass and triglyceride content remained unchanged in individuals subjected to prenatal restriction, in contrast to the reduction experienced by the control group. The latter is associated with the expression of the key genes involved in energy homeostasis (Pepck, Pparα/Pparγ), indicating a differential use of nutritional resources. In addition, thrifty animals, subjected to chronic caloric restriction, showed a severe reduction in locomotor and gluconeogenic activity, which is consistent with the regulatory role of Sirt1 and its downstream targets Mao and Pepck. Our results reveal that prenatal caloric restriction translates into a sparing metabolism in response to acute and chronic lack of food in adulthood.
Keywords: Food deprivation; Gluconeogenesis; Inanition; Perinatal feeding; Predictive adaptive hypothesis.
© 2023. The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature.
References
-
- Assalin HB, Gontijo JAR, Boer PA (2017) Maternal protein restriction and its effects on heart. In: Rajendram R, Preedy V, Patel V (eds) Diet, nutrition, and fetal programming. Nutrition and Health. Humana Press, Cham, pp 121–129. https://doi.org/10.1007/978-3-319-60289-9_10
-
- Bellinger L, Sculley DV, Langley-Evans SC (2006) Exposure to undernutrition in fetal life determines fat distribution, locomotor activity and food intake in ageing rats. Int J Obes 30(5):729–738 - DOI
-
- Bełzecki G, Miltko R, Kowalik B, Demiaszkiewicz AW, Lachowicz J, Gizejewski Z et al (2018) Seasonal variations of the digestive tract of the Eurasian beaver castor fiber. Mammal Res 63:21–31. https://doi.org/10.1007/s13364-017-0337-x - DOI
-
- Boily G, Seifert EL, Bevilacqua L, He XH, Sabourin G, Estey C et al (2008) SirT1 regulates energy metabolism and response to caloric restriction in mice. PLoS ONE 3:e1759. https://doi.org/10.1371/journal.pone.0001759 - DOI - PubMed - PMC
-
- Botden IP, Zillikens MC, De Rooij SR, Langendonk JG, Danser AJ, Sijbrands EJ et al (2012) Variants in the SIRT1 gene may affect diabetes risk in interaction with prenatal exposure to famine. Diabetes Care 35:424–426. https://doi.org/10.2337/dc11-1203 - DOI - PubMed - PMC
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