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用于在秀丽隐杆线虫中进行时空蛋白质降解和转录组分析的扩展 FLP 工具包。

Expanded FLP toolbox for spatiotemporal protein degradation and transcriptomic profiling in Caenorhabditis elegans.

机构信息

Andalusian Centre for Developmental Biology, Consejo Superior de Investigaciones Científicas (CSIC), Universidad Pablo de Olavide, Junta de Andalucía, 41013 Sevilla, Spain.

EMBL GeneCore, 69117 Heidelberg, Germany.

出版信息

Genetics. 2023 Jan 12;223(1). doi: 10.1093/genetics/iyac166.

Abstract

Control of gene expression in specific tissues and/or at certain stages of development allows the study and manipulation of gene function with high precision. Site-specific genome recombination by the flippase (FLP) and cyclization recombination (Cre) enzymes has proved particularly relevant. Joint efforts of many research groups have led to the creation of efficient FLP and Cre drivers to regulate gene expression in a variety of tissues in Caenorhabditis elegans. Here, we extend this toolkit by the addition of FLP lines that drive recombination specifically in distal tip cells, the somatic gonad, coelomocytes, and the epithelial P lineage. In some cases, recombination-mediated gene knockouts do not completely deplete protein levels due to persistence of long-lived proteins. To overcome this, we developed a spatiotemporally regulated degradation system for green fluorescent fusion proteins based on FLP-mediated recombination. Using 2 stable nuclear pore proteins, MEL-28/ELYS and NPP-2/NUP85 as examples, we report the benefit of combining tissue-specific gene knockout and protein degradation to achieve complete protein depletion. We also demonstrate that FLP-mediated recombination can be utilized to identify transcriptomes in a C. elegans tissue of interest. We have adapted RNA polymerase DamID for the FLP toolbox and by focusing on a well-characterized tissue, the hypodermis, we show that the vast majority of genes identified by RNA polymerase DamID are known to be expressed in this tissue. These tools allow combining FLP activity for simultaneous gene inactivation and transcriptomic profiling, thus enabling the inquiry of gene function in various complex biological processes.

摘要

在特定组织和/或发育阶段控制基因表达可以高精度地研究和操纵基因功能。翻转酶 (FLP) 和环化重组 (Cre) 酶的定点基因组重组被证明特别相关。许多研究小组的共同努力导致了高效的 FLP 和 Cre 驱动子的创建,以调节秀丽隐杆线虫中各种组织中的基因表达。在这里,我们通过添加专门在远端尖端细胞、体性腺、体腔细胞和上皮 P 谱系中驱动重组的 FLP 系来扩展这个工具包。在某些情况下,由于长寿命蛋白的存在,重组介导的基因敲除不会完全耗尽蛋白水平。为了克服这个问题,我们开发了一种基于 FLP 介导的重组的绿色荧光融合蛋白的时空调节降解系统。我们使用 2 个稳定的核孔蛋白 MEL-28/ELYS 和 NPP-2/NUP85 作为例子,报告了结合组织特异性基因敲除和蛋白降解以实现完全蛋白耗尽的好处。我们还证明了 FLP 介导的重组可用于鉴定感兴趣的秀丽隐杆线虫组织中的转录组。我们已经将 RNA 聚合酶 DamID 适应于 FLP 工具包,并且通过关注一个特征良好的组织,即真皮,我们表明 RNA 聚合酶 DamID 鉴定的绝大多数基因已知在该组织中表达。这些工具允许结合 FLP 活性进行同时的基因失活和转录组分析,从而能够在各种复杂的生物学过程中探究基因功能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/93e0/9836023/a9727715a395/iyac166f1.jpg

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