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一种可扩展的 FLP-ON::TIR1 系统,用于在秀丽隐杆线虫中精确的时空蛋白质降解。

An expandable FLP-ON::TIR1 system for precise spatiotemporal protein degradation in Caenorhabditis elegans.

机构信息

Department of Biochemistry and Cell Biology, Stony Brook University, Stony Brook, NY 11794, USA.

Howard Hughes Medical Institute, Department of Biology, Stanford University, Stanford, CA 94305, USA.

出版信息

Genetics. 2023 Apr 6;223(4). doi: 10.1093/genetics/iyad013.

Abstract

The auxin-inducible degradation system has been widely adopted in the Caenorhabditis elegans research community for its ability to empirically control the spatiotemporal expression of target proteins. This system can efficiently degrade auxin-inducible degron (AID)-tagged proteins via the expression of a ligand-activatable AtTIR1 protein derived from A. thaliana that adapts target proteins to the endogenous C. elegans proteasome. While broad expression of AtTIR1 using strong, ubiquitous promoters can lead to rapid degradation of AID-tagged proteins, cell type-specific expression of AtTIR1 using spatially restricted promoters often results in less efficient target protein degradation. To circumvent this limitation, we have developed an FLP/FRT3-based system that functions to reanimate a dormant, high-powered promoter that can drive sufficient AtTIR1 expression in a cell type-specific manner. We benchmark the utility of this system by generating a number of tissue-specific FLP-ON::TIR1 drivers to reveal genetically separable cell type-specific phenotypes for several target proteins. We also demonstrate that the FLP-ON::TIR1 system is compatible with enhanced degron epitopes. Finally, we provide an expandable toolkit utilizing the basic FLP-ON::TIR1 system that can be adapted to drive optimized AtTIR1 expression in any tissue or cell type of interest.

摘要

生长素诱导降解系统已被广泛应用于秀丽隐杆线虫研究领域,因为它能够经验性地控制靶蛋白的时空表达。该系统可通过表达来自拟南芥的配体激活型 AtTIR1 蛋白来有效降解生长素诱导的降解结构域(AID)标记蛋白,AtTIR1 蛋白使靶蛋白适应内源性秀丽隐杆线虫蛋白酶体。虽然使用强、普遍的启动子广泛表达 AtTIR1 可能导致 AID 标记蛋白的快速降解,但使用空间限制启动子在细胞类型特异性表达 AtTIR1 通常会导致靶蛋白降解效率降低。为了克服这一限制,我们开发了一种基于 FLP/FRT3 的系统,该系统可重新激活休眠的、高功率的启动子,以在细胞类型特异性的方式驱动足够的 AtTIR1 表达。我们通过生成多种组织特异性的 FLP-ON::TIR1 驱动子来评估该系统的效用,以揭示几个靶蛋白的遗传上可分离的细胞类型特异性表型。我们还证明了 FLP-ON::TIR1 系统与增强的降解结构域表位兼容。最后,我们提供了一个可扩展的工具包,利用基本的 FLP-ON::TIR1 系统,可以在任何感兴趣的组织或细胞类型中驱动优化的 AtTIR1 表达。

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