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Fundamental Differences in Endoreplication in Mammals and Drosophila Revealed by Analysis of Endocycling and Endomitotic Cells

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Specialty Science
Date 2013 Apr 25
PMID 23613587
Citations 43
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Abstract

Throughout the plant and animal kingdoms specific cell types become polyploid, increasing their DNA content to attain a large cell size. In mammals, megakaryocytes (MKs) become polyploid before fragmenting into platelets. The mammalian trophoblast giant cells (TGCs) exploit their size to form a barrier between the maternal and embryonic tissues. The mechanism of polyploidization has been investigated extensively in Drosophila, in which a modified cell cycle--the endocycle, consisting solely of alternating S and gap phases--produces polyploid tissues. During S phase in the Drosophila endocycle, heterochromatin and specific euchromatic regions are underreplicated and reduced in copy number. Here we investigate the properties of polyploidization in murine MKs and TGCs. We induced differentiation of primary MKs and directly microdissected TGCs from embryonic day 9.5 implantation sites. The copy number across the genome was analyzed by array-based comparative genome hybridization. In striking contrast to Drosophila, the genome was uniformly and integrally duplicated in both MKs and TGCs. This was true even for heterochromatic regions analyzed by quantitative PCR. Underreplication of specific regions in polyploid cells is proposed to be due to a slower S phase, resulting from low expression of S-phase genes, causing failure to duplicate late replicating genomic intervals. We defined the transcriptome of TGCs and found robust expression of S-phase genes. Similarly, S-phase gene expression is not repressed in MKs, providing an explanation for the distinct endoreplication parameters compared with Drosophila. Consistent with TGCs endocycling rather than undergoing endomitosis, they have low expression of M-phase genes.

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References
1.
Kim J, Nordman J, Xie F, Kashevsky H, Eng T, Li S . Integrative analysis of gene amplification in Drosophila follicle cells: parameters of origin activation and repression. Genes Dev. 2011; 25(13):1384-98. PMC: 3134082. DOI: 10.1101/gad.2043111. View

2.
Sarkar S, Dey B, Dutta A . MiR-322/424 and -503 are induced during muscle differentiation and promote cell cycle quiescence and differentiation by down-regulation of Cdc25A. Mol Biol Cell. 2010; 21(13):2138-49. PMC: 2893979. DOI: 10.1091/mbc.e10-01-0062. View

3.
Mignotte V, Deveaux S, Filipe A . Transcriptional regulation in megakaryocytes: the thrombopoietin receptor gene as a model. Stem Cells. 1996; 14 Suppl 1:232-9. DOI: 10.1002/stem.5530140730. View

4.
Smith C, Shu S, Mungall C, Karpen G . The Release 5.1 annotation of Drosophila melanogaster heterochromatin. Science. 2007; 316(5831):1586-91. PMC: 2819280. DOI: 10.1126/science.1139815. View

5.
Nagata Y, Muro Y, Todokoro K . Thrombopoietin-induced polyploidization of bone marrow megakaryocytes is due to a unique regulatory mechanism in late mitosis. J Cell Biol. 1997; 139(2):449-57. PMC: 2139799. DOI: 10.1083/jcb.139.2.449. View