首页> 外文期刊>In Vitro Cellular and Developmental Biology. Animal: Journal of the Tissues Culture Association >Dome formation and tubule morphogenesis by Xenopus kidney A6 cell cultures exposed to microgravity simulated with a 3D-clinostat and to hypergravity.
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Dome formation and tubule morphogenesis by Xenopus kidney A6 cell cultures exposed to microgravity simulated with a 3D-clinostat and to hypergravity.

机译:非洲爪蟾肾脏A6细胞培养的圆顶形成和肾小管形态发生,暴露于用3D斜压仪模拟的超重力作用和超重力作用。

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摘要

Confluent high-density cell cultures of A6 cells derived from adult male Xenopus kidney exhibit spontaneous dome-formation at 1 g. To determine whether this morphogenetic property is altered by gravity, we used a three-dimensional (3D) clinostat to subject the cells to simulated microgravity, and a centrifuge to subject them to hypergravity. We used the generation orbit control method as the new rotation control system of the 3D-clinostat, not the random method. The growth of A6 cells was significantly enhanced by hypergravity, but significantly reduced by simulated microgravity. Dome formation by A6 cells at high confluence was inhibited under simulated microgravity conditions, whereas hypergravity promoted dome formation and induced tubule morphogenesis, compared to the control at 1 g. These results indicated that changes in gravity influence the morphogenetic properties of A6 cells, such as dome formation and tubule morphogenesis. When dome formation by A6 cells at high confluence was induced spontaneously in the control 1 g culture, the gene expression of the HGF family of pleiotropic factors, such as HGF-like protein (HLP) and growth factor-Livertine (GF-l.ivertine), an epithelial serine protease of channel activating protease 1 (CAP1), and Na+, K+-adenosine triphosphatase (ATPase), increased. Simulated microgravity increased the gene expression of activin A and reduced the gene expression of HLP, GF-Livertine, CAP1, and Na+, K+-ATPase. Hypergravity, on the other hand, decreased the gene expression of activin A and increased the gene expression of HLP, GF-Livertine, CAP1, and Na+, K+-ATPase. These results suggest that the effects of gravitational changes on expression of the HGF family member gene, CAP1, and Na+, K+-ATPase gene may be important for the cell growth, tubule morphogenesis, and dome formation of A6 cells in altered
机译:成年雄性非洲爪蟾肾脏的A6细胞的融合高密度细胞培养物在1 g时显示出自发的圆顶形成。为了确定这种形态发生特性是否因重力而改变,我们使用了三维(3D)斜变仪对细胞进行了模拟微重力处理,并使用了离心机对它们进行了超重力处理。我们将生成轨道控制方法用作3D倾斜控制器的新旋转控制系统,而不是随机方法。超重力显着增强了A6细胞的生长,但模拟微重力显着降低了A6细胞的生长。与1 g的对照组相比,在模拟微重力条件下,高融合度的A6细胞形成的圆顶受到抑制,而超重力则促进了圆顶的形成并诱导了小管形态发生。这些结果表明,重力的变化会影响A6细胞的形态发生特性,例如圆顶形成和肾小管形态发生。当在对照1 g培养物中自发诱导高融合度的A6细胞形成穹顶时,多效性因子HGF家族的基因表达,如HGF样蛋白(HLP)和生长因子-钙华(GF-1.ivertine) ),通道激活蛋白酶1(CAP1)的上皮丝氨酸蛋白酶和Na +,K +-腺苷三磷酸酶(ATPase)升高。模拟微重力增加了激活素A的基因表达,并降低了HLP,GF-Livertine,CAP1和Na +,K + -ATPase的基因表达。另一方面,超重力降低了激活素A的基因表达,并增加了HLP,GF-Livertine,CAP1和Na +,K + -ATPase的基因表达。这些结果表明,引力变化对HGF家族成员基因CAP1和Na +,K + -ATPase基因表达的影响可能对改变A6细胞的细胞生长,肾小管形态发生和圆顶形成具有重要作用。

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