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Biology subjects

Salazar-Petres, E.

Publications and source records attributed to Salazar-Petres, E..

3 recordsLinked to original sources

Fetal manipulation of maternal metabolism is a critical function of Igf2 imprinting

Maternal-offspring interactions in mammals are mainly characterised by cooperation, but also conflict. Over evolutionary time, the fetus has evolved to manipulate the mothers physiology to increase nutrient transfer through the placenta, but these mechanisms are poorly characterized. The imprinted Igf2 (insulin-like growth factor 2) gene is highly expressed in mouse placental cells with endocrine functions. Here, we show that in the mouse, deletion of Igf2 in these cells leads to impaired placental endocrine signalling to the mother, but remarkably does not result in changes in placental morphology, growth or size. Mechanistically, we find that Igf2 via defective production of hormones, including prolactins, is essential for the establishment of the insulin-resistance state during pregnancy, and the appropriate partitioning of nutrients to the developing fetus. Consequently, fetuses are growth restricted and hypoglycemic, due to impaired placental glucose transfer from the mother to the fetus. Furthermore, Igf2 loss from placental endocrine cells has long-lasting effects on offspring adiposity and glucose homeostasis in adult life. Our study provides long-sought compelling experimental evidence for an intrinsic fetal manipulation system, which operates in the placenta to modify maternal metabolism and resource allocation to the fetus, with consequences for offspring metabolic health in later life.

developmental biology↗

Maternal and intrauterine influences on feto-placental growth are accompanied by sexually dimorphic changes in placental mitochondrial respiration, and metabolic signalling pathways

Adverse maternal environments such as small size, malnutrition and metabolic conditions are known to influence fetal growth outcomes. Similarly, fetal growth and metabolic alterations may alter the intrauterine environment and affect all fetuses in multiple gestations/litter bearing species. The placenta is the site of convergence between signals derived from the mother and the developing fetus/es. Its functions are fuelled by energy generated by mitochondrial oxidative phosphorylation (OXPHOS). The aim of this study was to delineate the role of an altered maternal and/or fetal/intrauterine environment in feto-placental growth and placental mitochondrial energetic capacity. To address this, in mice we used disruptions of the gene encoding phosphoinositol 3-kinase (PI3K) p110, a growth and metabolic regulator to perturb the maternal and/or fetal/intrauterine environment and study the impact on wildtype conceptuses. We found that feto-placental growth was modified by a perturbed maternal and intrauterine environment, and effects were most evident for wildtype males compared to females. However, placental mitochondrial complex I+II OXPHOS and total electron transport system (ETS) capacity were similarly reduced for both fetal sexes, yet reserve capacity was additionally decreased in males in response to the maternal and intrauterine perturbations. These were also sex-dependant differences in the placental abundance of mitochondrial-related proteins (e.g. citrate synthase, ETS complexes), and activity of growth/metabolic signalling pathways (AKT and MAPK) with maternal and intrauterine alterations. Our findings thus identify that the mother and intrauterine environment provided by littermates, modulate feto-placental growth, and placental bioenergetics and metabolic signalling in a manner dependent on fetal sex. This may have relevance for understanding the pathways leading to reduced fetal growth, particularly in the context of suboptimal maternal environments and multiple gestations/litter bearing species.

developmental biology↗

Placental mitochondrial function, nutrient transporters, metabolic signalling and steroid metabolism relate to fetal size and sex in mice

Fetal growth depends on placental function, which requires energy from mitochondria. Here we investigated whether mitochondrial function in the placenta relates to growth of the lightest and heaviest fetuses of each sex within the litter of mice. Placentas from the lightest and heaviest fetuses were taken to evaluate placenta morphology (stereology), mitochondrial energetics (high-resolution respirometry), and mitochondrial regulators, nutrient transporters, hormone handling and signalling pathways (qPCR and western blotting). We found that mitochondrial complex I and II oxygen consumption rate was greater for placentas supporting the lightest female fetuses, although placental complex I abundance of the lightest females and complexes III and V of the lightest males were decreased compared to their heaviest counterparts. Expression of mitochondrial biogenesis (Nrf1) and fission (Drp1 and Fis1) genes was lower in the placenta from the lightest females, whilst biogenesis-related gene Tfam was greater in the placenta of the lightest male fetuses. Additionally, placental morphology and steroidogenic gene (Cyp17a1 and Cyp11a1) expression was aberrant for the lightest females, but glucose transporter (Glut1) expression was lower in only the lightest males versus their heaviest counterparts. Differences in intra-litter placental phenotype were related to sex-dependent changes in the expression of hormone responsive (androgen receptor) and metabolic signalling (AMPK, AKT, PPAR{gamma}) pathways. Thus, in normal mouse pregnancy, placental structure, function and mitochondrial phenotype are differentially responsive to growth of the female and the male fetus. This study may inform the design of sex- specific therapies for placental insufficiency and fetal growth abnormalities with life-long benefits for the offspring.

developmental biology↗