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

Author:

Xiao Yutong1,Yee Callista2,Zhao Chris Z1,Martinez Michael A Q1,Zhang Wan1,Shen Kang2,Matus David Q1,Hammell Christopher3

Affiliation:

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

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

3. Cold Spring Harbor Laboratory , Cold Spring Harbor, NY 11724 , USA

Abstract

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.

Funder

National Institutes of Health

Cold Spring Harbor Laboratory

National Science Foundation

Human Frontiers Science Program

Howard Hughes Medical Institute Investigator

Publisher

Oxford University Press (OUP)

Subject

Genetics

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