重新设计果蝇组蛋白基因簇:组蛋白功能时空操作的改良遗传平台

IF 3.3 3区 生物学 Q2 GENETICS & HEREDITY
Genetics Pub Date : 2024-09-04 DOI:10.1093/genetics/iyae117
Aaron T Crain, Markus Nevil, Mary P Leatham-Jensen, Katherine B Reeves, A Gregory Matera, Daniel J McKay, Robert J Duronio
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引用次数: 0

摘要

突变复制依赖性(RD)组蛋白基因是了解基于染色质的表观遗传调控的重要工具。在后生动物中部署这一工具尤其具有挑战性,因为这些生物体中的 RD 组蛋白通常由许多基因编码,而且往往位于多个基因位点。这种基因排列方式使得通过位点特异性基因编辑产生同源组蛋白突变基因型变得相当困难。黑腹果蝇为这一问题提供了一个解决方案,因为RD组蛋白基因被组织成一个单一的大型串联阵列,可以用含有突变组蛋白基因的转基因进行删除和替换。在过去的 15 年中,利用这种简单的策略开发出了几种不同的 RD 组蛋白基因替换平台。然而,每个平台都存在一些缺陷,使果蝇研究人员无法充分利用其强大的发育遗传能力。在这里,我们描述了一个新设计平台的开发过程,它纠正了许多这些缺陷。我们使用 CRISPR 精确地删除了 RD 组蛋白基因阵列(HisC),取而代之的是一个多功能盒,它允许使用可选择标记定点插入一个或两个合成基因阵列。我们设计的这种基因盒能够利用位点特异性重组酶在特定组织中选择性地删除每个整合基因阵列。我们还介绍了一种利用金门克隆技术快速合成任何基因型组蛋白基因阵列的方法。这些改进有助于在果蝇发育的不同阶段,在不同组织中产生组蛋白突变细胞,并为应用前向遗传策略研究染色质结构和基因调控提供了机会。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Redesigning the Drosophila histone gene cluster: an improved genetic platform for spatiotemporal manipulation of histone function.

Mutating replication-dependent (RD) histone genes is an important tool for understanding chromatin-based epigenetic regulation. Deploying this tool in metazoans is particularly challenging because RD histones in these organisms are typically encoded by many genes, often located at multiple loci. Such gene arrangements make the ability to generate homogenous histone mutant genotypes by site-specific gene editing quite difficult. Drosophila melanogaster provides a solution to this problem because the RD histone genes are organized into a single large tandem array that can be deleted and replaced with transgenes containing mutant histone genes. In the last ∼15 years several different RD histone gene replacement platforms were developed using this simple strategy. However, each platform contains weaknesses that preclude full use of the powerful developmental genetic capabilities available to Drosophila researchers. Here we describe the development of a newly engineered platform that rectifies many of these weaknesses. We used CRISPR to precisely delete the RD histone gene array (HisC), replacing it with a multifunctional cassette that permits site-specific insertion of either one or two synthetic gene arrays using selectable markers. We designed this cassette with the ability to selectively delete each of the integrated gene arrays in specific tissues using site-specific recombinases. We also present a method for rapidly synthesizing histone gene arrays of any genotype using Golden Gate cloning technologies. These improvements facilitate the generation of histone mutant cells in various tissues at different stages of Drosophila development and provide an opportunity to apply forward genetic strategies to interrogate chromatin structure and gene regulation.

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来源期刊
Genetics
Genetics GENETICS & HEREDITY-
CiteScore
6.90
自引率
6.10%
发文量
177
审稿时长
1.5 months
期刊介绍: GENETICS is published by the Genetics Society of America, a scholarly society that seeks to deepen our understanding of the living world by advancing our understanding of genetics. Since 1916, GENETICS has published high-quality, original research presenting novel findings bearing on genetics and genomics. The journal publishes empirical studies of organisms ranging from microbes to humans, as well as theoretical work. While it has an illustrious history, GENETICS has changed along with the communities it serves: it is not your mentor''s journal. The editors make decisions quickly – in around 30 days – without sacrificing the excellence and scholarship for which the journal has long been known. GENETICS is a peer reviewed, peer-edited journal, with an international reach and increasing visibility and impact. All editorial decisions are made through collaboration of at least two editors who are practicing scientists. GENETICS is constantly innovating: expanded types of content include Reviews, Commentary (current issues of interest to geneticists), Perspectives (historical), Primers (to introduce primary literature into the classroom), Toolbox Reviews, plus YeastBook, FlyBook, and WormBook (coming spring 2016). For particularly time-sensitive results, we publish Communications. As part of our mission to serve our communities, we''ve published thematic collections, including Genomic Selection, Multiparental Populations, Mouse Collaborative Cross, and the Genetics of Sex.
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