Dm Ime4耗竭影响果蝇精子发生的通透性屏障和Chic功能

IF 2.6 Q2 Medicine Mechanisms of Development Pub Date : 2020-12-01 DOI:10.1016/j.mod.2020.103650
Antonio L. Rockwell, Cintia F. Hongay
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引用次数: 3

摘要

信使RNA N6位点(m6A)的腺苷甲基化是一种非编辑修饰,可以影响mRNA代谢的几个方面。Dm Ime4,在其他生物中也被称为METTL3, MTA和MTA-70,是甲基转移酶复合体的催化亚基,可以添加这种修饰。dmme4在进化上是保守的,对后生动物和植物的发育至关重要。由于其多效性,很难确定植物、小鼠和斑马鱼发生胚胎停止的主要原因。利用在果蝇睾丸体细胞囊肿细胞中特异性地消耗Dm Ime4而不影响发育中的基本功能的策略,我们的实验室发现Dm Ime4可能潜在地调节profilin (chic) mRNA的剪合,这是一种重要的、进化上保守的蛋白质的信息,主要以其在肌动蛋白聚合中的功能而著名。其中一个鲜为人知的作用是它在果蝇精子发生过程中需要建立和维持体细胞囊细胞通透性屏障。在整个精子发生过程中,Chic和Dm Ime4在体细胞囊肿细胞中共定位并大量存在。在选择性消耗Dm Ime4后,我们观察到Chic蛋白水平显著降低和通透性屏障功能障碍。我们发现chic mRNA含有内含子Dm Ime4结合位点,可以形成被甲基转移酶复合体识别所需的发夹结构。我们的数据表明,在Dm ime4体细胞囊肿细胞敲低中观察到的Chic蛋白水平降低可能是其mRNA异常剪接的结果。反过来,低水平的Chic已知会影响体细胞渗透性屏障的功能,导致生殖系死亡和在Dm ime4敲低的雄性中观察到的生育能力降低。我们认为Dm Ime4可能在其他发育环境和其他生物(包括小鼠和人类)中调节chic。Chic是一种重要的进化保守蛋白,细胞屏障和结构域的建立和维持是后生动物发育的重要策略。综上所述,我们的研究结果定义了一个框架来研究多细胞生物中Dm Ime4及其同源物在早期发育阶段绕过其多效性需求的特定功能。
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Dm Ime4 depletion affects permeability barrier and Chic function in Drosophila spermatogenesis

Adenosine methylation of messenger RNA at the N6 position (m6A) is a non-editing modification that can affect several aspects of mRNA metabolism. Dm Ime4, also known as METTL3, MTA, and MTA-70 in other organisms, is the catalytic subunit of the methyltransferase complex that adds this modification. Dm ime4 is evolutionarily conserved and essential for development in metazoans and plants. Because of its pleiotropic effects, it has been difficult to establish the main reason why embryonic arrest occurs in plants, mice, and zebrafish. Using a strategy that depletes Dm Ime4 specifically in the somatic cyst cells of Drosophila testes without affecting essential functions in development, our lab has found that Dm Ime4 may potentially regulate splicing of profilin (chic) mRNA, the message for an essential and evolutionarily conserved protein mainly known for its function in actin polymerization. One of the lesser known roles for Chic is its requirement for establishment and maintenance of the somatic cyst-cell permeability barrier in Drosophila spermatogenesis. Chic and Dm Ime4 colocalize and are abundant in somatic cyst cells throughout spermatogenesis. Upon selective depletion of Dm Ime4, we observe significant reduction of Chic protein levels and malfunction of the permeability barrier. We have found that chic mRNA contains intronic Dm Ime4 binding sites that can form the hairpin structures required for recognition by the methyltransferase complex. Our data show that the reduced levels of Chic protein observed in Dm ime4 somatic cyst-cell knockdowns could be the result of aberrant splicing of its mRNA. In turn, low levels of Chic are known to affect the function of the somatic permeability barrier, leading to germline death and the reduced fertility observed in Dm ime4 knockdown males. We propose that Dm Ime4 may regulate chic in other developmental contexts and in other organisms, including mice and humans. Chic is an essential protein that is evolutionarily conserved, and establishment and maintenance of cell barriers and domains are important strategies used in metazoan development. Taken together, our findings define a framework to investigate specific functions of Dm Ime4 and its homologs in multicellular organisms by bypassing its pleiotropic requirement in early developmental stages.

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来源期刊
Mechanisms of Development
Mechanisms of Development 生物-发育生物学
CiteScore
3.60
自引率
0.00%
发文量
0
审稿时长
12.4 weeks
期刊介绍: Mechanisms of Development is an international journal covering the areas of cell biology and developmental biology. In addition to publishing work at the interphase of these two disciplines, we also publish work that is purely cell biology as well as classical developmental biology. Mechanisms of Development will consider papers in any area of cell biology or developmental biology, in any model system like animals and plants, using a variety of approaches, such as cellular, biomechanical, molecular, quantitative, computational and theoretical biology. Areas of particular interest include: Cell and tissue morphogenesis Cell adhesion and migration Cell shape and polarity Biomechanics Theoretical modelling of cell and developmental biology Quantitative biology Stem cell biology Cell differentiation Cell proliferation and cell death Evo-Devo Membrane traffic Metabolic regulation Organ and organoid development Regeneration Mechanisms of Development does not publish descriptive studies of gene expression patterns and molecular screens; for submission of such studies see Gene Expression Patterns.
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Editorial Board Publisher's note Outside Front Cover Regulatory functions of gga-miR-218 in spermatogonial stem cells meiosis by targeting Stra8 Improved early development potence of in vitro fertilization embryos by treatment with tubacin increasing acetylated tubulin of matured porcine oocytes
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