Genome amplification and cellular senescence are hallmarks of human placenta development

Genome amplification and cellular senescence are commonly associated with pathological processes. While physiological roles for polyploidization and senescence have been described in mouse development, controversy exists over their significance in humans. Here, we describe tetraploidization and sene...

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Published inPLoS genetics Vol. 14; no. 10; p. e1007698
Main Authors Velicky, Philipp, Meinhardt, Gudrun, Plessl, Kerstin, Vondra, Sigrid, Weiss, Tamara, Haslinger, Peter, Lendl, Thomas, Aumayr, Karin, Mairhofer, Mario, Zhu, Xiaowei, Schütz, Birgit, Hannibal, Roberta L, Lindau, Robert, Weil, Beatrix, Ernerudh, Jan, Neesen, Jürgen, Egger, Gerda, Mikula, Mario, Röhrl, Clemens, Urban, Alexander E, Baker, Julie, Knöfler, Martin, Pollheimer, Jürgen
Format Journal Article
LanguageEnglish
Published United States Public Library of Science 01.10.2018
Public Library of Science (PLoS)
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Summary:Genome amplification and cellular senescence are commonly associated with pathological processes. While physiological roles for polyploidization and senescence have been described in mouse development, controversy exists over their significance in humans. Here, we describe tetraploidization and senescence as phenomena of normal human placenta development. During pregnancy, placental extravillous trophoblasts (EVTs) invade the pregnant endometrium, termed decidua, to establish an adapted microenvironment required for the developing embryo. This process is critically dependent on continuous cell proliferation and differentiation, which is thought to follow the classical model of cell cycle arrest prior to terminal differentiation. Strikingly, flow cytometry and DNAseq revealed that EVT formation is accompanied with a genome-wide polyploidization, independent of mitotic cycles. DNA replication in these cells was analysed by a fluorescent cell-cycle indicator reporter system, cell cycle marker expression and EdU incorporation. Upon invasion into the decidua, EVTs widely lose their replicative potential and enter a senescent state characterized by high senescence-associated (SA) β-galactosidase activity, induction of a SA secretory phenotype as well as typical metabolic alterations. Furthermore, we show that the shift from endocycle-dependent genome amplification to growth arrest is disturbed in androgenic complete hydatidiform moles (CHM), a hyperplastic pregnancy disorder associated with increased risk of developing choriocarinoma. Senescence is decreased in CHM-EVTs, accompanied by exacerbated endoreduplication and hyperploidy. We propose induction of cellular senescence as a ploidy-limiting mechanism during normal human placentation and unravel a link between excessive polyploidization and reduced senescence in CHM.
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Current address: Microbiology Department, Second Genome, South San Francisco, California, United States of America
Current address: University of Applied Sciences, FH Campus Vienna, Austria
Current address: Institute of Science and Technology Austria, Klosterneuburg, Austria
Current address: Division of Plastic and Reconstructive Surgery, Department of Surgery, Medical University of Vienna, Austria
The authors have declared that no competing interests exist.
Current address: University of Applied Sciences Upper Austria, Linz, Austria
ISSN:1553-7404
1553-7390
1553-7404
DOI:10.1371/journal.pgen.1007698