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海鞘肌调节因子(Ciona myogenic regulatory factor)作为一个典型的肌调节因子(MRF)发挥作用,但它具有一个新颖的 N 端,对其活性是必需的。

The Ciona myogenic regulatory factor functions as a typical MRF but possesses a novel N-terminus that is essential for activity.

机构信息

Department of Biology, Rhode Island College, 600 Mt. Pleasant Ave., Providence, RI 02908, USA.

出版信息

Dev Biol. 2019 Apr 15;448(2):210-225. doi: 10.1016/j.ydbio.2018.10.010. Epub 2018 Oct 23.

Abstract

Electroporation-based assays were used to test whether the myogenic regulatory factor (MRF) of Ciona intestinalis (CiMRF) interferes with endogenous developmental programs, and to evaluate the importance of its unusual N-terminus for muscle development. We found that CiMRF suppresses both notochord and endoderm development when it is expressed in these tissues by a mechanism that may involve activation of muscle-specific microRNAs. Because these results add to a large body of evidence demonstrating the exceptionally high degree of functional conservation among MRFs, we were surprised to discover that non-ascidian MRFs were not myogenic in Ciona unless they formed part of a chimeric protein containing the CiMRF N-terminus. Equally surprising, we found that despite their widely differing primary sequences, the N-termini of MRFs of other ascidian species could form chimeric MRFs that were also myogenic in Ciona. This domain did not rescue the activity of a Brachyury protein whose transcriptional activation domain had been deleted, and so does not appear to constitute such a domain. Our results indicate that ascidians have previously unrecognized and potentially novel requirements for MRF-directed myogenesis. Moreover, they provide the first example of a domain that is essential to the core function of an important family of gene regulatory proteins, one that, to date, has been found in only a single branch of the family.

摘要

电穿孔法检测表明,海鞘肌调节因子(CiMRF)可通过肌肉特异性 microRNA 的激活机制干扰内源发育程序,并评估其不寻常的 N 端在肌肉发育中的重要性。我们发现 CiMRF 在这些组织中表达时,可通过一种可能涉及肌肉特异性 microRNA 激活的机制抑制脊索和内胚层的发育。由于这些结果增加了大量功能高度保守的 MRF 证据,因此我们惊讶地发现,非海鞘 MRF 除非形成含有 CiMRF N 端的嵌合蛋白的一部分,否则在海鞘中没有肌肉形成。同样令人惊讶的是,尽管它们的一级序列有很大差异,但其他海鞘物种的 MRF 的 N 端可以形成嵌合 MRF,在海鞘中也具有肌肉形成能力。该结构域不能拯救转录激活结构域已缺失的 Brachyury 蛋白的活性,因此似乎不构成这样的结构域。我们的结果表明,海鞘具有以前未被识别且可能是新的 MRF 指导肌肉形成的要求。此外,它们提供了第一个核心功能必需的结构域的实例,该结构域是一个重要的基因调控蛋白家族的核心功能必需的结构域,迄今为止,仅在该家族的一个分支中发现了该结构域。

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