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多能性因子在棘皮动物再生中的表达。

Expression of pluripotency factors in echinoderm regeneration.

作者信息

Mashanov Vladimir S, Zueva Olga R, García-Arrarás José E

机构信息

Department of Biology, University of Puerto Rico, PO Box 70377, San Juan, PR, 00936-8377, USA.

出版信息

Cell Tissue Res. 2015 Feb;359(2):521-536. doi: 10.1007/s00441-014-2040-4. Epub 2014 Dec 3.

Abstract

Cell dedifferentiation is an integral component of post-traumatic regeneration in echinoderms. As dedifferentiated cells become multipotent, we asked if this spontaneous broadening of developmental potential is associated with the action of the same pluripotency factors (known as Yamanaka factors) that were used to induce pluripotency in specialized mammalian cells. In this study, we investigate the expression of orthologs of the four Yamanaka factors in regeneration of two different organs, the radial nerve cord and the digestive tube, in the sea cucumber Holothuria glaberrima. All four pluripotency factors are expressed in uninjured animals, although their expression domains do not always overlap. In regeneration, the expression levels of the four genes were not regulated in a coordinated way, but instead showed different dynamics for individual genes and also were different between the radial nerve and the gut. SoxB1, the ortholog of the mammalian Sox2, was drastically downregulated in the regenerating intestine, suggesting that this factor is not required for dedifferentiation/regeneration in this organ. On the other hand, during the early post-injury stage, Myc, the sea cucumber ortholog of c-Myc, was significantly upregulated in both the intestine and the radial nerve cord and is therefore hypothesized to play a central role in dedifferentiation/regeneration of various tissue types.

摘要

细胞去分化是棘皮动物创伤后再生的一个重要组成部分。由于去分化细胞变得具有多能性,我们不禁要问,这种发育潜能的自发拓宽是否与用于诱导特化哺乳动物细胞多能性的相同多能性因子(即山中因子)的作用有关。在本研究中,我们调查了光滑海参中四种山中因子的直系同源物在两种不同器官——放射神经索和消化道——再生过程中的表达情况。所有这四种多能性因子在未受伤的动物中均有表达,尽管它们的表达域并不总是重叠。在再生过程中,这四个基因的表达水平并非协同调节,而是单个基因呈现出不同的动态变化,并且在放射神经和肠道之间也存在差异。哺乳动物Sox2的直系同源物SoxB1在再生肠道中显著下调,这表明该因子在该器官的去分化/再生过程中并非必需。另一方面,在损伤后的早期阶段,海参c-Myc的直系同源物Myc在肠道和放射神经索中均显著上调,因此推测其在各种组织类型的去分化/再生过程中发挥核心作用。

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