A nuclease-dead Cas9-derived tool represses target gene expression

Author:

Wang Bowen12ORCID,Liu Xiaolin1ORCID,Li Zhenxiang3ORCID,Zeng Kang14ORCID,Guo Jiangyi15ORCID,Xin Tongxu1ORCID,Zhang Zhen6ORCID,Li Jian-Feng3ORCID,Yang Xueyong1ORCID

Affiliation:

1. State Key Laboratory of Vegetable Biobreeding, Institute of Vegetables and Flowers, Chinese Academy of Agricultural Sciences , Beijing 100081 , China

2. Shenzhen Branch, Guangdong Laboratory of Lingnan Modern Agriculture, Genome Analysis Laboratory of the Ministry of Agriculture and Rural Affairs, Agricultural Genomics Institute at Shenzhen, Chinese Academy of Agricultural Sciences , Shenzhen 518120 , China

3. Guangdong Provincial Key Laboratory of Plant Resources, State Key Laboratory of Biocontrol, School of Life Sciences, Sun Yat-sen University , Guangzhou 510275 , China

4. College of Horticulture, FAFU-UCR Joint Center for Horticultural Biology and Metabolomics, Fujian Agriculture and Forestry University , Fuzhou 350002 , China

5. Engineering Laboratory of Genetic Improvement of Horticultural Crops of Shandong Province, College of Horticulture, Qingdao Agricultural University , Qingdao 266109 , China

6. State Key Laboratory of Crop Stress Adaptation and Improvement, College of Agriculture, Henan University , Kaifeng 475004 , China

Abstract

Abstract Manipulation of gene expression is central to understanding gene function, engineering cell behavior, and altering biological traits according to production demands. Nuclease-dead Cas9 (dCas9), a variant of active Cas9, offers a versatile platform for the precise control of genome function without DNA cleavage. Notably, however, an effective and universal dCas9-based transcriptional repression system remains unavailable in plants. The noncanonical histone acetyltransferase TENDRIL-LESS (CsTEN) is responsible for chromatin loosening and histone modification in cucumber (Cucumis sativus). In this study, we engineered a gene regulation tool by fusing TEN and its truncated proteins with dCas9. The full-length dCas9-TEN protein substantially repressed gene expression, with the N-terminal domain identified as the core repression domain. We subsequently validated the specificity and efficacy of this system through both transient infection and genetic transformation in cucumber and Arabidopsis (Arabidopsis thaliana). The electrophoretic mobility shift assay (EMSA) revealed the ability of the N-terminal domain of TEN to bind to chromatin, which may promote target binding of the dCas9 complex and enhance the transcriptional repression effect. Our tool enriches the arsenal of genetic regulation tools available for precision breeding in crops.

Funder

National Natural Science Foundation of China

National Key R&D Program of China

Beijing Joint Research Program for Germplasm Innovation and New Variety Breeding

Chinese Academy of Agricultural Sciences Innovation Project

Science and Technology Program of Beijing

Science and Technology Innovation Program of the Chinese Academy of Agricultural Sciences

Publisher

Oxford University Press (OUP)

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