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Zinselmeier, M.

Publications and source records attributed to Zinselmeier, M..

2 recordsLinked to original sources

Efficient gene activation in plants by the MoonTag programmable transcriptional activator

CRISPR/Cas-based transcriptional activators have been developed to induce gene expression in eukaryotic and prokaryotic organisms. The main advantages of CRISPR-Cas based systems is that they can achieve high levels of transcriptional activation and are very easy to program via pairing between the guide RNA and the DNA target strand. SunTag is a second-generation system that activates transcription by recruiting multiple copies of an activation domain (AD) to its target promoters. SunTag is a strong activator; however, in some species it is difficult to stably express. To overcome this problem, we designed MoonTag, a new activator that worked on the same basic principle as SunTag, but whose components are better tolerated when stably expressed in transgenic plants. We demonstrate that MoonTag is capable of inducing high levels of transcription in all plants tested. In Setaria, MoonTag is capable of inducing high levels of transcription of reporter genes as well as of endogenous genes. More important, MoonTag components are expressed in transgenic plants to high levels without any deleterious effects. MoonTag is also able to efficiently activate genes in eudicotyledonous species such as Arabidopsis and tomato. Finally, we show that MoonTag activation is functional across a range of temperatures, which is promising for potential field applications.

bioengineering↗

Optimized dCas9 Transcription Activators for Plants

Understanding how gene expression impacts plant development and physiology is important for rationally engineering improved crops. Programmable Transcriptional Activators (PTAs), including CRISPR-Cas activators, have traditionally relied on a limited number of transcriptional activation domains. Usually the VP64 domain, derived from human herpes simplex virus, is fused to a DNA-binding domain to activate target gene expression. We reasoned there was considerable space for PTA improvement by replacing VP64 with a plant-derived activation domain. To address this, we designed, built, and tested a PTA library of 38 putative plant transcriptional activation domains. Domains from HSFA6b, AvrXa10, DOF1, DREB1, and DREB2 genes function as strong activators in Setaria viridis and Arabidopsis thaliana in protoplast assays and in transgenic plants. Overexpression of multiple endogenous genes (FT, PAP1, WUS) reached levels similar to the highly expressed housekeeping gene, PP2A, regardless of basal expression level. Further, these domains were effective in different PTA architectures, including the dCas9-SunTag, dCas9-Moontag, and TALE-SunTag systems. Lastly, we demonstrate the ability of these improved PTAs to map enhancer regions that promote gene expression in plants. This work demonstrates the effective and flexible nature of PTAs to activate target genes in plants, providing tools that can be used to improve agronomically relevant traits of interest.

plant biology↗