CRISPR-Mediated Tagging of Endogenous Proteins with a Luminescent Peptide

Cas9 清脆的 生物 内生 基因 转染 基因组编辑 报告基因 细胞生物学 分子生物学 生物化学 基因表达
作者
Marie K. Schwinn,Thomas Machleidt,Kris Zimmerman,Christopher T. Eggers,Andrew S. Dixon,Robin Hurst,Mary P. Hall,Lance P. Encell,Brock F. Binkowski,Keith V. Wood
出处
期刊:ACS Chemical Biology [American Chemical Society]
卷期号:13 (2): 467-474 被引量:335
标识
DOI:10.1021/acschembio.7b00549
摘要

Intracellular signaling pathways are mediated by changes in protein abundance and post-translational modifications. A common approach for investigating signaling mechanisms and the effects induced by synthetic compounds is through overexpression of recombinant reporter genes. Genome editing with CRISPR/Cas9 offers a means to better preserve native biology by appending reporters directly onto the endogenous genes. An optimal reporter for this purpose would be small to negligibly influence intracellular processes, be readily linked to the endogenous genes with minimal experimental effort, and be sensitive enough to detect low expressing proteins. HiBiT is a 1.3 kDa peptide (11 amino acids) capable of producing bright and quantitative luminescence through high affinity complementation (KD = 700 pM) with an 18 kDa subunit derived from NanoLuc (LgBiT). Using CRISPR/Cas9, we demonstrate that HiBiT can be rapidly and efficiently integrated into the genome to serve as a reporter tag for endogenous proteins. Without requiring clonal isolation of the edited cells, we were able to quantify changes in abundance of the hypoxia inducible factor 1A (HIF1α) and several of its downstream transcriptional targets in response to various stimuli. In combination with fluorescent antibodies, we further used HiBiT to directly correlate HIF1α levels with the hydroxyproline modification that mediates its degradation. These results demonstrate the ability to efficiently tag endogenous proteins with a small luminescent peptide, allowing sensitive quantitation of the response dynamics in their regulated expression and covalent modifications.
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