189
Views
0
CrossRef citations to date
0
Altmetric
Preliminary Communication

Maternal Intermittent Fasting Before Mating Alters Hepatic DNA Methylation in Offspring

ORCID Icon, ORCID Icon, , ORCID Icon & ORCID Icon
Pages 341-356 | Received 12 Nov 2020, Accepted 12 Jan 2021, Published online: 28 Jan 2021

References

  • Collier R . Intermittent fasting: the next big weight loss fad. CMAJ185(8), E321–E322 (2013).
  • Patterson RE , SearsDD. Metabolic effects of intermittent fasting. Annu. Rev. Nutr.37, 371–393 (2017).
  • Longo VD , PandaS. Fasting, circadian rhythms, and time-restricted feeding in healthy lifespan. Cell Metab.23(6), 1048–1059 (2016).
  • Longo VD , MattsonMP. Fasting: molecular mechanisms and clinical applications. Cell Metab.19(2), 181–192 (2014).
  • Byrne NM , SainsburyA , KingNA , HillsAP , WoodRE. Intermittent energy restriction improves weight loss efficiency in obese men: the MATADOR study. Int. J. Obes. (Lond.)42(2), 129–138 (2018).
  • Harvie M , WrightC , PegingtonMet al. The effect of intermittent energy and carbohydrate restriction v. daily energy restriction on weight loss and metabolic disease risk markers in overweight women. Br. J. Nutr.110(8), 1534–1547 (2013).
  • Hoddy KK , KroegerCM , TrepanowskiJF , BarnoskyAR , BhutaniS , VaradyKA. Safety of alternate day fasting and effect on disordered eating behaviors. Nutr. J.14, 44 (2015).
  • Osman F , HaldarS , HenryCJ. Effects of time-restricted feeding during Ramadan on dietary intake, body composition and metabolic outcomes. Nutrients12(8), 2478 (2020).
  • Hatchwell L , HarneyDJ , CieleshMet al. Multi-omics analysis of the intermittent fasting response in mice identifies an unexpected role for HNF4α. Cell Rep.30(10), 3566–3582e3564 (2020).
  • Li G , BrockerCN , YanTet al. Metabolic adaptation to intermittent fasting is independent of peroxisome proliferator-activated receptor alpha. Mol. Metab.7, 80–89 (2018).
  • Liu H , JavaheriA , GodarRJet al. Intermittent fasting preserves beta-cell mass in obesity-induced diabetes via the autophagy-lysosome pathway. Autophagy13(11), 1952–1968 (2017).
  • Li G , XieC , LuSet al. Intermittent fasting promotes white adipose browning and decreases obesity by shaping the gut microbiota. Cell Metab.26(5), 801 (2017).
  • Wadhwa PD , BussC , EntringerS , SwansonJM. Developmental origins of health and disease: brief history of the approach and current focus on epigenetic mechanisms. Semin. Reprod. Med.27(5), 358–368 (2009).
  • Reynolds CM , SegoviaSA , VickersMH. Experimental models of maternal obesity and neuroendocrine programming of metabolic disorders in offspring. Front. Endocrinol. (Lausanne)8, 245 (2017).
  • Ribaroff GA , WastnedgeE , DrakeAJ , SharpeRM , ChambersTJG. Animal models of maternal high fat diet exposure and effects on metabolism in offspring: a meta-regression analysis. Obes. Rev.18(6), 673–686 (2017).
  • Nemoto T , KakinumaY. Fetal malnutrition-induced catch-up failure is caused by elevated levels of miR-322 in rats. Sci. Rep.10(1), 1339 (2020).
  • Beauchamp B , HarperME. In utero undernutrition programs skeletal and cardiac muscle metabolism. Front. Physiol.6(6), 401 (2016).
  • Zhu ZQ , CaoF , LiXZ. Epigenetic programming and fetal metabolic programming. Front. Endocrinol. (Lausanne)10, 764 (2019).
  • Nowacka-Zawisza M , WisnikE. DNA methylation and histone modifications as epigenetic regulation in prostate cancer (Review). Oncol. Rep.38(5), 2587–2596 (2017).
  • Skjaerven KH , JaktLM , FernandesJMOet al. Parental micronutrient deficiency distorts liver DNA methylation and expression of lipid genes associated with a fatty-liver-like phenotype in offspring. Sci. Rep.8(1), 3055 (2018).
  • Parrillo L , SpinelliR , NicoloAet al. Nutritional factors, DNA methylation, and risk of type 2 diabetes and obesity: perspectives and challenges. Int. J. Mol. Sci.20(12), 2983 (2019).
  • Altmann S , MuraniE , SchwerinM , MetgesCC , WimmersK , PonsuksiliS. Maternal dietary protein restriction and excess affects offspring gene expression and methylation of non-SMC subunits of condensin I in liver and skeletal muscle. Epigenetics7(3), 239–252 (2012).
  • Volkov P , BacosK , OforiJKet al. Whole-genome bisulfite sequencing of human pancreatic islets reveals novel differentially methylated regions in Type 2 diabetes pathogenesis. Diabetes66(4), 1074–1085 (2017).
  • Xu G , LiY , AnWet al. Gastric mammalian target of rapamycin signaling regulates ghrelin production and food intake. Endocrinology150(8), 3637–3644 (2009).
  • Zhao F , WuW , WeiQet al. Exogenous adrenocorticotropic hormone affects genome-wide DNA methylation and transcriptome of corpus luteum in sows. FASEB J.33(3), 3264–3278 (2019).
  • Wang Z , WuX , WuZet al. Genome-wide DNA methylation comparison between Brassica napus genic male sterile line and restorer line. Int. J. Mol. Sci.19(9), 2689 (2018).
  • Lister R , MukamelEA , NeryJRet al. Global epigenomic reconfiguration during mammalian brain development. Science341(6146), 1237905 (2013).
  • Feng H , ConneelyKN , WuH. A Bayesian hierarchical model to detect differentially methylated loci from single nucleotide resolution sequencing data. Nucleic Acids Res.42(8), e69 (2014).
  • Wu H , XuT , FengHet al. Detection of differentially methylated regions from whole-genome bisulfite sequencing data without replicates. Nucleic Acids Res.43(21), e141 (2015).
  • Park Y , WuH. Differential methylation analysis for BS-seq data under general experimental design. Bioinformatics32(10), 1446–1453 (2016).
  • Young MD , WakefieldMJ , SmythGK , OshlackA. Gene ontology analysis for RNA-seq: accounting for selection bias. Genome Biol.11(2), R14 (2010).
  • Mao X , CaiT , OlyarchukJG , WeiL. Automated genome annotation and pathway identification using the KEGG Orthology (KO) as a controlled vocabulary. Bioinformatics21(19), 3787–3793 (2005).
  • Kim GD , NiJ , KelesogluN , RobertsRJ , PradhanS. Co-operation and communication between the human maintenance and de novo DNA (cytosine-5) methyltransferases. EMBO J.21(15), 4183–4195 (2002).
  • Li Y , ZhuJ , TianGet al. The DNA methylome of human peripheral blood mononuclear cells. PLoS Biol.8(11), e1000533 (2010).
  • Huang YZ , SunJJ , ZhangLZet al. Genome-wide DNA methylation profiles and their relationships with mRNA and the microRNA transcriptome in bovine muscle tissue (Bos taurine). Sci. Rep.4, 1–17 (2014).
  • Wang HF , WangJY , NingCet al. Genome-wide DNA methylation and transcriptome analyses reveal genes involved in immune responses of pig peripheral blood mononuclear cells to poly I:C. Sci. Rep.7(1), 9709 (2017).
  • Saad R . Effects of intermittent fasting on health, aging, and disease. N. Engl. J. Med.382(18), 1773 (2020).
  • Mattison JA , ColmanRJ , BeasleyTMet al. Caloric restriction improves health and survival of rhesus monkeys. Nat. Commun.8, 14063 (2017).
  • Martin CK , BhapkarM , PittasAGet al. Effect of calorie restriction on mood, quality of life, sleep, and sexual function in healthy nonobese adults: the CALERIE 2 randomized clinical trial. JAMA Intern. Med.176(6), 743–752 (2016).
  • Cho Y , HongN , KimKWet al. The effectiveness of intermittent fasting to reduce body mass index and glucose metabolism: a systematic review and meta-analysis. J. Clin. Med.8(10), 1645 (2019).
  • Sutton EF , BeylR , EarlyKS , CefaluWT , RavussinE , PetersonCM. Early time-restricted feeding improves insulin sensitivity, blood pressure, and oxidative stress even without weight loss in men with prediabetes. Cell Metab.27(6), 1212–1221e1213 (2018).
  • Heberle E , BardetAF. Sensitivity of transcription factors to DNA methylation. Essays Biochem.63(6), 727–741 (2019).
  • Nowacka-Woszuk J , GrzemskiA , SliwinskaM , ChmurzynskaA. Hepatic DNA methylation and expression profiles under prenatal restricted diet in three generations of female rat fetuses. PLoS ONE14(4), e0215471 (2019).
  • Lyko F . The DNA methyltransferase family: a versatile toolkit for epigenetic regulation. Nat. Rev. Genet.19(2), 81–92 (2018).
  • Dhe-Paganon S , SyedaF , ParkL. DNA methyl transferase 1: regulatory mechanisms and implications in health and disease. Int. J. Biochem. Mol. Biol.2(1), 58–66 (2011).
  • Li W , LiZ , LiS , WangX , WilsonJX , HuangG. Periconceptional folic acid supplementation benefit to development of early sensory-motor function through increase DNA methylation in rat offspring. Nutrients10(3), 292 (2018).
  • Pauwels S , GhoshM , DucaRCet al. Maternal intake of methyl-group donors affects DNA methylation of metabolic genes in infants. Clin. Epigenetics9, 16 (2017).
  • Glendining KA , FisherLC , JasoniCL. Maternal high fat diet alters offspring epigenetic regulators, amygdala glutamatergic profile and anxiety. Psychoneuroendocrinology96, 132–141 (2018).
  • Neri F , RapelliS , KrepelovaAet al. Intragenic DNA methylation prevents spurious transcription initiation. Nature543(7643), 72–77 (2017).
  • Takahashi M , KameiY , EharaTet al. Analysis of DNA methylation change induced by Dnmt3b in mouse hepatocytes. Biochem. Biophys. Res. Commun.434(4), 873–878 (2013).
  • Godfrey KM , BarkerDJ. Fetal programming and adult health. Public Health Nutr.4(2B), 611–624 (2001).
  • Lau C , RogersJM. Embryonic and fetal programming of physiological disorders in adulthood. Birth Defects Res. C. Embryo. Today72(4), 300–312 (2004).
  • Chuang TJ , ChenFC. DNA methylation is associated with an increased level of conservation at nondegenerate nucleotides in mammals. Mol. Biol. Evol.31(2), 387–396 (2014).
  • Richetto J , MassartR , Weber-StadlbauerU , SzyfM , RivaMA , MeyerU. Genome-wide DNA methylation changes in a mouse model of infection-mediated neurodevelopmental disorders. Biol. Psychiat.81(3), 265–276 (2017).
  • Ziller MJ , HansenKD , MeissnerA , AryeeMJ. Coverage recommendations for methylation analysis by whole-genome bisulfite sequencing. Nat. Methods12(3), 230–232 (2015).
  • Warrington NM , BeaumontRN , HorikoshiMet al. Maternal and fetal genetic effects on birth weight and their relevance to cardio-metabolic risk factors. Nat. Genet.51(5), 804–814 (2019).
  • Horikoshi M , BeaumontRN , DayFRet al. Genome-wide associations for birth weight and correlations with adult disease. Nature538(7624), 248–252 (2016).
  • Patterson RE , LaughlinGA , LacroixAZet al. Intermittent fasting and human metabolic health. J. Acad. Nutr. Diet115(8), 1203–1212 (2015).

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.