bioRxiv Science⌕ Search

Biology subjects

Scagliotti, V.

Publications and source records attributed to Scagliotti, V..

2 recordsLinked to original sources

Placental insufficiency causes fetal growth restriction in mice lacking Delta-like homologue 1

Fetal growth restriction (FGR) affects between 3-7% of pregnancies, is associated with increased perinatal morbidity and mortality, and linked to failure of placental function. The placenta is the key transient organ in pregnancy that directs nutrient transfer, intermediary metabolism and the production of hormones that drive maternal metabolic adaptations essential for pregnancy and lactation. The exchange surface of the placenta is formed in early development by the interaction between trophoblast cells that enclose the maternal blood and extraembryonic mesodermal cells that comprise the fetal vasculature. Despite recent insights into trophoblast development derived from novel in-vitro approaches, the processes driving extraembryonic mesoderm development are not well explored. This is due to a dearth of studies employing unbiased approaches to interrogate extraembryonic mesoderm cell populations. Here we use genetic labelling techniques to separate molecular events occurring in the trophoblast from those in the mesodermal layers of the placenta. In combination with conditional targeting, we show that the imprinted gene Dlk1 is a key player in providing nutrients to the embryo by controlling the placental surface area available for nutrient exchange, and by modulating the production of placental hormones that promote maternal nutrient provision in pregnancy.

developmental biology↗

Imprinted Dlk1 dosage as a size determinant of the mammalian pituitary gland

Co-regulated genes of the Imprinted Gene Network are involved in the control of growth and body size, and imprinted gene dysfunction underlies human paediatric disorders involving the endocrine system. Imprinted genes are highly expressed in the pituitary gland, among them, Dlk1, a paternally expressed gene whose membrane-bound and secreted protein products can regulate proliferation and differentiation of multiple stem cell populations. Dosage of circulating DLK1 has been previously implicated in the control of growth through unknown molecular mechanisms. Here we generate a series of mouse genetic models to modify levels of Dlk1 expression in the pituitary gland and demonstrate that the dosage of DLK1 modulates the process of stem cell commitment with lifelong impact on pituitary gland size. We establish that stem cells are a critical source of DLK1, where embryonic disruption alters proliferation in the anterior pituitary, leading to long-lasting consequences on growth hormone secretion later in life.

developmental biology↗