The Effect of Dietary Protein Imbalance during Pregnancy on the Growth, Metabolism and Circulatory Metabolome of Neonatal and Weaned Juvenile Porcine Offspring.
Acetylcarnitine
/ blood
Animals
Animals, Newborn
/ growth & development
Carnitine
/ blood
Dietary Carbohydrates
/ administration & dosage
Dietary Proteins
/ administration & dosage
Female
Glucose
/ metabolism
Glucose Tolerance Test
Male
Maternal Nutritional Physiological Phenomena
Metabolome
Pregnancy
Prenatal Exposure Delayed Effects
/ metabolism
Protein Deficiency
/ metabolism
Swine
/ growth & development
Triglycerides
/ blood
Urea
/ blood
body weight
carbohydrate and urea metabolism
maternal protein restriction
metabolomics
offspring
porcine model
Journal
Nutrients
ISSN: 2072-6643
Titre abrégé: Nutrients
Pays: Switzerland
ID NLM: 101521595
Informations de publication
Date de publication:
20 Sep 2021
20 Sep 2021
Historique:
received:
24
07
2021
revised:
12
09
2021
accepted:
16
09
2021
entrez:
28
9
2021
pubmed:
29
9
2021
medline:
19
11
2021
Statut:
epublish
Résumé
Protein imbalance during pregnancy affects women in underdeveloped and developing countries and is associated with compromised offspring growth and an increased risk of metabolic diseases in later life. We studied in a porcine model the glucose and urea metabolism, and circulatory hormone and metabolite profile of offspring exposed during gestation, to maternal isoenergetic low-high (LP-HC), high-low (HP-LC) or adequate (AP) protein-carbohydrate ratio diets. At birth, LP-HC were lighter and the plasma acetylcarnitine to free carnitine ratios at 1 day of life was lower compared to AP offspring. Plasma urea concentrations were lower in 1 day old LP-HC offspring than HP-LC. In the juvenile period, increased insulin concentrations were observed in LP-HC and HP-LC offspring compared to AP, as was body weight from HP-LC compared to LP-HC. Plasma triglyceride concentrations were lower in 80 than 1 day old HP-LC offspring, and glucagon concentrations lower in 80 than 1 day old AP and HP-LC offspring. Plasma urea and the ratio of glucagon to insulin were lower in all 80 than 1 day old offspring. Aminoacyl-tRNA, arginine and phenylalanine, tyrosine and tryptophan metabolism, histidine and beta-alanine metabolism differed between 1 and 80 day old AP and HP-LC offspring. Maternal protein imbalance throughout pregnancy did not result in significant consequences in offspring metabolism compared to AP, indicating enormous plasticity by the placenta and developing offspring.
Identifiants
pubmed: 34579160
pii: nu13093286
doi: 10.3390/nu13093286
pmc: PMC8471113
pii:
doi:
Substances chimiques
Dietary Carbohydrates
0
Dietary Proteins
0
Triglycerides
0
Acetylcarnitine
6DH1W9VH8Q
Urea
8W8T17847W
Glucose
IY9XDZ35W2
Carnitine
S7UI8SM58A
Types de publication
Journal Article
Langues
eng
Sous-ensembles de citation
IM
Subventions
Organisme : Deutsche Forschungsgemeinschaft
ID : DFG PAK 24 ME 1420/8-1
Organisme : Bundesministerium für Bildung und Forschung
ID : FUGATOplus 0315132A
Références
J Nutr. 1993 Nov;123(11):1818-25
pubmed: 8229296
Am J Physiol Regul Integr Comp Physiol. 2005 Feb;288(2):R368-73
pubmed: 15514105
J Anim Sci. 2015 Dec;93(12):5681-93
pubmed: 26641177
J Dairy Sci. 2021 Jun;104(6):7295-7314
pubmed: 33715856
J Proteome Res. 2018 Jan 5;17(1):203-211
pubmed: 29064256
J Anim Sci. 2014 Jul;92(7):2931-41
pubmed: 24802036
PLoS One. 2012;7(12):e52748
pubmed: 23300759
Matern Child Nutr. 2013 Jan;9 Suppl 1:105-19
pubmed: 23167588
Br J Nutr. 2012 Mar;107(6):791-9
pubmed: 21880174
BMC Genomics. 2012 Mar 16;13:93
pubmed: 22424151
Sci Rep. 2019 Aug 29;9(1):12527
pubmed: 31467335
Int J Epidemiol. 2002 Dec;31(6):1235-9
pubmed: 12540728
Food Nutr Bull. 2016 Mar;37 Suppl 1:S14-21
pubmed: 27005491
Cochrane Database Syst Rev. 2003;(1):CD000148
pubmed: 12535390
Front Genet. 2018 Dec 11;9:642
pubmed: 30619467
Animal. 2016 Oct;10(10):1741-8
pubmed: 27055632
Mol Biol Rep. 2012 Jun;39(6):7095-104
pubmed: 22311036
J Anim Sci Biotechnol. 2018 Mar 7;9:23
pubmed: 29527304
Physiol Rev. 2005 Apr;85(2):571-633
pubmed: 15788706
Endocrinology. 2016 May;157(5):1799-812
pubmed: 27007071
Nutr Res Rev. 2016 Jun;29(1):60-90
pubmed: 27176552
Am J Physiol Regul Integr Comp Physiol. 2006 Oct;291(4):R1025-30
pubmed: 16675628
PLoS One. 2012;7(4):e34519
pubmed: 22496824
Animal. 2008 Jul;2(7):1045-54
pubmed: 22443705
Eur J Nutr. 2016 Apr;55(3):917-30
pubmed: 25903260
J Anim Sci. 2011 Feb;89(2):329-41
pubmed: 20889684
Int J Environ Res Public Health. 2016 Jun 14;13(6):
pubmed: 27314367
J Anim Sci. 2012 Jan;90(1):184-96
pubmed: 21890499
J Anim Sci. 2013 Jun;91(6):2680-92
pubmed: 23482575
Mol Nutr Food Res. 2013 Feb;57(2):277-90
pubmed: 23197441
J Nutr. 2014 Feb;144(2):155-63
pubmed: 24353346
FASEB J. 2019 Jan;33(1):770-781
pubmed: 30067379
Endocrinology. 2010 Apr;151(4):1570-80
pubmed: 20160133
Br J Nutr. 2003 Aug;90(2):345-52
pubmed: 12908895
J Microbiol. 2019 Sep;57(9):748-758
pubmed: 31187413
Animal. 2011 Feb;5(2):268-77
pubmed: 22440771
Br J Nutr. 2012 Dec 28;108(12):2176-89
pubmed: 22456348
Annu Rev Anim Biosci. 2020 Feb 15;8:321-354
pubmed: 32069436
Eur J Nutr. 2012 Mar;51(2):151-65
pubmed: 21559991
PLoS One. 2011;6(7):e21691
pubmed: 21789176
Nutrients. 2017 Feb 27;9(3):
pubmed: 28264458
Curr Opin Clin Nutr Metab Care. 2008 Sep;11(5):601-6
pubmed: 18685456
J Biomed Sci. 2010 Aug 24;17 Suppl 1:S38
pubmed: 20804614
Am J Physiol. 1997 May;272(5 Pt 1):E877-84
pubmed: 9176189
Pediatr Res. 2010 Jul;68(1):16-22
pubmed: 20386490
Physiol Genomics. 2012 Aug 17;44(16):811-8
pubmed: 22759919
Reproduction. 2020 Dec;160(6):R129-R143
pubmed: 33112767
Sci Total Environ. 2021 Feb 10;755(Pt 2):143198
pubmed: 33162136
Br J Nutr. 2004 Oct;92(4):549-55
pubmed: 15522124
J Anim Sci. 2010 May;88(5):1626-41
pubmed: 20081074
Curr Protoc Bioinformatics. 2019 Dec;68(1):e86
pubmed: 31756036
PLoS One. 2012;7(2):e31390
pubmed: 22328932