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Kusinski, L. C.

Publications and source records attributed to Kusinski, L. C..

2 recordsLinked to original sources

Exposure to maternal obesity per se programs sex-differences in pancreatic islets of the offspring

Maternal obesity increases type 2 diabetes (T2D) risk in the offspring. Given that nearly half of women of child-bearing age in many populations are currently overweight/obese, it is key that we improve our understanding of the impact of the in utero/early life environment on offspring islet function. Using a well-established mouse model of diet-induced obesity, we examined offspring islets before the onset of metabolic dysfunction. This allowed us to determine inherent changes, in males and females, which are distinct from the response of islets to an existing obesogenic, insulin resistant milieu hence identifying islet dysregulation reflecting very early manifestation of the disease before the onset of disrupted glucose homeostasis. Female offspring of obese dams displayed higher glucose-stimulated insulin secretion and mitochondrial respiration, increased expression of estrogen receptor and decreased cleaved-caspase 3 and Bax:Bcl-2 reflecting reduced susceptibility to apoptosis. In contrast, male offspring of obese dams displayed compromised mitochondrial respiration characterised by decreased ATP synthesis-driven respiration and increased \"uncoupled\" respiration and reduced docked insulin granules in {beta}-cells. Thus, maternal obesity \"programs\" sex-differences in offspring islet function. Islets of female but not male offspring appear primed to cope with a nutritionally-rich postnatal environment, which may reflect differences in future T2D risk.

physiology

Fetal and trophoblast PI3Kp110α have distinct roles in regulating resource supply to the growing fetus

Previous studies suggest that the placental supply of nutrients to the fetus adapts according to fetal demand. However, the signaling events underlying placental adaptations remain largely unknown. Earlier work in mice has revealed that loss of the phosphoinositide 3-kinase p110 impairs feto-placental growth but placental nutrient supply is adaptively increased. Here we explore the role of p110 in the epiblast-derived (fetal) and trophoblast lineages of the conceptus in relation to feto-placental growth and placental development and transfer function. Using conditional gene manipulations to knock-down p110 either by [~]50% or [~]100% in the fetal lineages and/or trophoblast, this study shows that p110 in the fetus is essential for prenatal development and a major regulator of placental phenotype in mice. Complete loss of fetal p110 caused embryonic death, whilst heterozygous loss resulted in fetal growth restriction and impaired placental formation and nutrient transport. Loss of trophoblast p110 also resulted in abnormal placental development, although fetuses were viable. However, in response to complete loss of trophoblast p110, the placenta failed to transport sufficient amino acid to match fetal demands for growth. Using RNA-seq, we identified several genes downstream of p110 in the trophoblast that are important in adapting placental phenotype to support fetal growth. Further work using CRISPR/Cas9 genome targeting showed that loss of p110 differentially affects the expression of genes in trophoblast and embryonic stem cells. Our findings thus reveal important, but distinct roles for p110 signaling in the different compartments of the conceptus, which control fetal resource acquisition and ultimately affect healthy growth.\n\nOne Sentence SummaryFetal and trophoblast p110 modify resource allocation

developmental biology