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Developmental Changes in the Ploidy of Mouse Implanting Trophoblast Cells in Vitro

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Publisher Springer
Date 2003 Mar 22
PMID 12649733
Citations 4
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Abstract

Shortly after the onset of implantation, polar mouse trophoblast cells proliferate and give rise to the ectoplacental cone, constituted by two distinct cell populations: undifferentiated, diploid cells and giant cells. Giant cells characteristically exhibit exaggerated dimensions and polyploid nuclei. In this study, we employ ectoplacental cones as a dynamic source of trophoblast giant cells to analyze cell proliferation, cell death, and ploidy under in vitro conditions. Our results show that DNA synthesis and the increase in the cell number are relevant only during the first 24 h of culture. Subsequently, DNA synthesis still occurs, mainly in the giant cell compartment, while the number of cells gradually decreases. Cell death by injury and apoptosis was also observed in the non-giant cell compartment of the ectoplacental cone. These findings suggest that the first 24 h of culture are crucial to the mitotic activity of the ectoplacental cone cells that gradually ceases, favoring the endoreduplication process. The DNA synthesis index during the subsequent experimental intervals emphasizes accumulation of DNA for the polyploidization. There was clear correlation between DNA content and nuclear dimension. The ploidy values for the trophoblast giant cells varied from 2C up to 368C in the giant cells, but were not as expressive as those known from in vivo conditions, probably due to the absence of regulatory factors specific to the embryonic-maternal interface. In situ hybridization and histochemistry for the nucleolus-organizing region showed that trophoblast nuclei have only two marker signals, indicative of a typical polytenic process. This present study elucidates important aspects of trophoblast behavior and provides new information on trophoblast physiology in vivo and in vitro.

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References
1.
Gosseye S, Fox H . An immunohistological comparison of the secretory capacity of villous and extravillous trophoblast in the human placenta. Placenta. 1984; 5(4):329-47. DOI: 10.1016/s0143-4004(84)80014-4. View

2.
Hamlin G, Lu X, Roby K, Soares M . Recapitulation of the pathway for trophoblast giant cell differentiation in vitro: stage-specific expression of members of the prolactin gene family. Endocrinology. 1994; 134(6):2390-6. DOI: 10.1210/endo.134.6.8194465. View

3.
Ilgren E . Review article: control of trophoblastic growth. Placenta. 1983; 4(3):307-28. DOI: 10.1016/s0143-4004(83)80010-1. View

4.
Howell W, Black D . Controlled silver-staining of nucleolus organizer regions with a protective colloidal developer: a 1-step method. Experientia. 1980; 36(8):1014-5. DOI: 10.1007/BF01953855. View

5.
Sarto G, Stubblefield P, Lurain J, THERMAN E . Mechanisms of growth in hydatidiform moles. Am J Obstet Gynecol. 1984; 148(7):1014-23. DOI: 10.1016/0002-9378(84)90545-3. View