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CRISPR/Cas9 和 FLP-FRT 介导的果蝇 BX-C 的调控细分。

CRISPR/Cas9 and FLP-FRT mediated regulatory dissection of the BX-C of Drosophila melanogaster.

机构信息

CSIR - Centre for Cellular and Molecular Biology, Hyderabad, India.

Department of Anatomy and Neurobiology, University of Maryland, Baltimore, USA.

出版信息

Chromosome Res. 2023 Jan 31;31(1):7. doi: 10.1007/s10577-023-09716-w.

Abstract

The homeotic genes or Hox define the anterior-posterior (AP) body axis formation in bilaterians and are often present on the chromosome in an order collinear to their function across the AP axis. However, there are many cases wherein the Hox are not collinear, but their expression pattern is conserved across the AP axis. The expression pattern of Hox is attributed to the cis-regulatory modules (CRMs) consisting of enhancers, initiators, or repressor elements that regulate the genes in a segment-specific manner. In the Drosophila melanogaster Hox complex, the bithorax complex (BX-C) and even the CRMs are organized in an order that is collinear to their function in the thoracic and abdominal segments. In the present study, the regulatorily inert regions were targeted using CRISPR/Cas9 to generate a series of transgenic lines with the insertion of FRT sequences. These FRT lines are repurposed to shuffle the CRMs associated with Abd-B to generate modular deletion, duplication, or inversion of multiple CRMs. The rearrangements yielded entirely novel phenotypes in the fly suggesting the requirement of such complex manipulations to address the significance of higher order arrangement of the CRMs. The functional map and the transgenic flies generated in this study are important resources to decipher the collective ability of multiple regulatory elements in the eukaryotic genome to function as complex modules.

摘要

同源异型基因或 Hox 定义了两侧对称动物的前后(AP)体轴形成,并且通常在染色体上按照其在 AP 轴上的功能顺序排列。然而,有许多情况下 Hox 并不呈线性排列,但它们的表达模式在 AP 轴上是保守的。Hox 的表达模式归因于顺式调控模块(CRMs),包括增强子、起始子或阻遏子元件,它们以节段特异性的方式调节基因。在果蝇的 Hox 复合物中,双胸复合物(BX-C)甚至 CRMs 都是按照它们在胸节和腹节中的功能呈线性排列的。在本研究中,使用 CRISPR/Cas9 靶向调节无效区域,生成一系列带有 FRT 序列插入的转基因系。这些 FRT 系被重新用于打乱与 Abd-B 相关的 CRMs,以产生多个 CRM 的模块化缺失、重复或倒置。这些重排产生了全新的表型,这表明需要进行这种复杂的操作来解决 CRMs 高阶排列的重要性。本研究中生成的功能图谱和转基因果蝇是破译真核基因组中多个调控元件作为复杂模块发挥功能的重要资源。

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