在体映射 DEAD-box 解旋酶 Vasa 的功能区域。

In vivo mapping of the functional regions of the DEAD-box helicase Vasa.

机构信息

Department of Biology, McGill University, 3649 Promenade Sir William Osler, Montréal, QC H3G 0B1, Canada.

Department of Biology, McGill University, 3649 Promenade Sir William Osler, Montréal, QC H3G 0B1, Canada

出版信息

Biol Open. 2015 Mar 20;4(4):450-62. doi: 10.1242/bio.201410579.

Abstract

The maternally expressed Drosophila melanogaster DEAD-box helicase Vasa (Vas) is necessary for many cellular and developmental processes, including specification of primordial germ cells (pole cells), posterior patterning of the embryo, piRNA-mediated repression of transposon-encoded mRNAs, translational activation of gurken (grk) mRNA, and completion of oogenesis itself. Vas protein accumulates in the perinuclear nuage in nurse cells soon after their specification, and then at stage 10 Vas translocates to the posterior pole plasm of the oocyte. We produced a series of transgenic constructs encoding eGFP-Vas proteins carrying mutations affecting different regions of the protein, and analyzed in vivo which Vas functions each could support. We identified novel domains in the N- and C-terminal regions of the protein that are essential for localization, transposon repression, posterior patterning, and pole cell specification. One such functional region, the most C-terminal seven amino acids, is specific to Vas orthologues and is thus critical to distinguishing Vas from other closely related DEAD-box helicases. Surprisingly, we also found that many eGFP-Vas proteins carrying mutations that would be expected to abrogate DEAD-box helicase function localized to the nuage and posterior pole, and retained the capacity to support oogenesis, although they did not function in embryonic patterning, pole cell specification, grk activation, or transposon repression. We conclude from these experiments that Vas, a multifunctional protein, uses different domains and different molecular associations to carry out its various cellular and developmental roles.

摘要

果蝇母源表达的 DEAD-box 解旋酶 Vasa(Vas)对于许多细胞和发育过程是必需的,包括原始生殖细胞(极细胞)的特化、胚胎的后极模式形成、piRNA 介导的转座子编码 mRNA 的抑制、gurken(grk)mRNA 的翻译激活以及卵子发生本身的完成。Vas 蛋白在滋养细胞特化后不久就在核周质中积累,然后在第 10 阶段,Vas 转移到卵母细胞的后极质中。我们产生了一系列携带影响蛋白不同区域突变的转基因构建体,编码 eGFP-Vas 蛋白,并分析了每种蛋白在体内支持的 Vas 功能。我们鉴定了蛋白的 N 和 C 末端区域的新功能域,这些区域对于定位、转座子抑制、后极模式形成和极细胞特化是必需的。这样一个功能域,即最 C 末端的七个氨基酸,是 Vas 同源物特有的,因此对于区分 Vas 与其他密切相关的 DEAD-box 解旋酶至关重要。令人惊讶的是,我们还发现,许多携带突变的 eGFP-Vas 蛋白,预计会破坏 DEAD-box 解旋酶功能,定位于质和后极,并保留支持卵子发生的能力,尽管它们在胚胎模式形成、极细胞特化、grk 激活或转座子抑制中不起作用。我们从这些实验中得出结论,Vas 是一种多功能蛋白,它使用不同的结构域和不同的分子结合来执行其各种细胞和发育功能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/806d/4400588/42d4b7576f7c/bio-04-04-450-f01.jpg

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