一个多通道计算机驱动系统,在可选择的缺氧条件下培养水生胚胎。

Hypoxia (Auckland, N.Z.) Pub Date : 2018-01-12 eCollection Date: 2018-01-01 DOI:10.2147/HP.S151536
Sanjeeva Metikala, Herbert Neuhaus, Thomas Hollemann
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引用次数: 2

摘要

功能心血管系统的形成是早期脊椎动物胚胎发育的重要步骤。然而,关于缺氧对生物发育过程的影响的研究却很少。特别是,脊椎动物胚胎依赖于功能性胎盘进行正常发育,由于明显的局限性,尚未在这方面进行研究。我们建立了一种水生胚胎培养方案,使我们能够在四个缺氧室中同时培养大量爪蟾胚胎,直到蝌蚪期,采用计算机化系统。总的来说,我们的研究结果表明,缺氧会导致发育延迟,特别是,我们可以表明,在非洲爪蟾胚胎发育的原肠胚形成和器官发生(早期尾芽)阶段,氧气供应是最重要的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A multichannel computer-driven system to raise aquatic embryos under selectable hypoxic conditions.

A multichannel computer-driven system to raise aquatic embryos under selectable hypoxic conditions.

A multichannel computer-driven system to raise aquatic embryos under selectable hypoxic conditions.

A multichannel computer-driven system to raise aquatic embryos under selectable hypoxic conditions.

The formation of a functional cardiovascular system is an essential step in the early vertebrate embryo. Nevertheless, the effect of hypoxia on the developmental program of organisms was studied rarely. In particular, this holds true for vertebrate embryos that depend on a functional placenta for proper development and had not been studied in this respect due to the obvious limitation. We established a protocol to culture aquatic embryos, which enabled us to culture a high number of Xenopus embryos until tadpole stage under defined hypoxic conditions in four hypoxia chambers simultaneously, employing a computerized system. In general, our results show that hypoxia results in delayed development and, in particular, we could show that oxygen availability was most crucial during gastrulation and organogenesis (early tailbud) phases during embryonic development of Xenopus laevis.

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