A hypomorphic Cbx3 allele causes prenatal growth restriction and perinatal energy homeostasis defects
JOURNAL OF BIOSCIENCES
Authors: Aydin, Ebru; Kloos, Dick-Paul; Gay, Emmanuel; Jonker, Willem; Hu, Lijuan; Bullwinkel, Joern; Brown, Jeremy P.; Manukyan, Maria; Giera, Martin; Singh, Prim B.; Fundele, Reinald
Abstract
Mammals have three HP1 protein isotypes HP1 beta (CBX1), HPl gamma (CBX3) and HP1 alpha (CBX5) that are encoded by the corresponding genes Cbx1, Cbx3 and Cbx5. Recent work has shown that reduction of CBX3 protein in homozygotes for a hypomorphic allele (Cbx3(hypo)) causes a severe postnatal mortality with around 99% of the homozygotes dying before weaning. It is not known what the causes of the postnatal mortality are. Here we show that Cbx3(hypo/hypo) conceptuses are significantly reduced in size and the placentas exhibit a haplo-insufficiency. Late gestation Cbx3(hypo/hypo) placentas have reduced mRNA transcripts for genes involved in growth regulation, amino acid and glucose transport. Blood vessels within the Cbx3(hypo/hypo) placental labyrinth are narrower than wild-type. Newborn Cbx3(hypo/hypo) pups are hypoglycemic, the livers are depleted of glycogen reserves and there is almost complete loss of stored lipid in brown adipose tissue (BAT). There is a 10-fold reduction in expression of the BAT-specific Ucp1 gene, whose product is responsible for non-shivering themogenesis. We suggest that it is the small size of the ChX3(hypo/hypo) neonates, a likely consequence of placental growth and transport defects, combined with a possible inability to thermoregulate that causes the severe postnatal mortality.
Aurora kinase B-phosphorylated HP1 alpha functions in chromosomal instability
CELL CYCLE
Authors: Williams, Monique M.; Mathison, Angela J.; Christensen, Trent; Greipp, Patricia T.; Knutson, Darlene L.; Klee, Eric W.; Zimmermann, Michael T.; Iovanna, Juan; Lomberk, Gwen A.; Urrutia, Raul A.
Abstract
Heterochromatin Protein 1 alpha (HP1 alpha) associates with members of the chromosome passenger complex (CPC) during mitosis, at centromeres where it is required for full Aurora Kinase B (AURKB) activity. Conversely, recent reports have identified AURKB as the major kinase responsible for phosphorylation of HP1 alpha at Serine 92 (S92) during mitosis. Thus, the current study was designed to better understand the functional role of this posttranslationally modified form of HP1 alpha. We find that S92-phosphorylated HP1 alpha is generated in cells at early prophase, localizes to centromeres, and associates with regulators of chromosome stability, such as Inner Centromere Protein, INCENP. In mouse embryonic fibroblasts, HP1 alpha knockout alone or reconstituted with a non-phosphorylatable (S92A) HP1 alpha mutant results in mitotic chromosomal instability characterized by the formation of anaphase/telophase chromatin bridges and micronuclei. These effects are rescued by exogenous expression of wild type HP1 alpha or a phosphomimetic (S92D) variant. Thus, the results from the current study extend our knowledge of the role of HP1 alpha in chromosomal stability during mitosis.