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Open AccessJournal ArticleDOI

Demonstration of CRISPR/Cas9/sgRNA-mediated targeted gene modification in Arabidopsis, tobacco, sorghum and rice

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TLDR
Adaptations of the type II CRISPR/Cas system leading to successful expression of the Cas9/sgRNA system in model plant and crop species bodes well for its near-term use as a facile and powerful means of plant genetic engineering for scientific and agricultural applications.
Abstract
The type II CRISPR/Cas system from Streptococcus pyogenes and its simplified derivative, the Cas9/single guide RNA (sgRNA) system, have emerged as potent new tools for targeted gene knockout in bacteria, yeast, fruit fly, zebrafish and human cells. Here, we describe adaptations of these systems leading to successful expression of the Cas9/sgRNA system in two dicot plant species, Arabidopsis and tobacco, and two monocot crop species, rice and sorghum. Agrobacterium tumefaciens was used for delivery of genes encoding Cas9, sgRNA and a non-fuctional, mutant green fluorescence protein (GFP) to Arabidopsis and tobacco. The mutant GFP gene contained target sites in its 5' coding regions that were successfully cleaved by a CAS9/sgRNA complex that, along with error-prone DNA repair, resulted in creation of functional GFP genes. DNA sequencing confirmed Cas9/sgRNA-mediated mutagenesis at the target site. Rice protoplast cells transformed with Cas9/sgRNA constructs targeting the promoter region of the bacterial blight susceptibility genes, OsSWEET14 and OsSWEET11, were confirmed by DNA sequencing to contain mutated DNA sequences at the target sites. Successful demonstration of the Cas9/sgRNA system in model plant and crop species bodes well for its near-term use as a facile and powerful means of plant genetic engineering for scientific and agricultural applications.

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Posted ContentDOI

Homology-directed repair using transient CRISPR/Cpf1-geminiviral replicon in tomato

TL;DR: In this article, a transient geminiviral replicon system equipped with CRISPR-LbCpf1 was used for homology-directed repair (HDR) in tomato.
Book ChapterDOI

CRISPR-Cas9-Mediated Genome Editing of Rice Towards Better Grain Quality.

TL;DR: This chapter presents a method for utilizing CRISPR-Cas9 for improving grain quality traits in rice; this should enable molecular breeders to quickly and efficiently produce high yielding rice varieties tailored to meet specific cultural and regional requirements for grain quality.
Journal ArticleDOI

Current Progress and Future Prospects for the Clustered Regularly Interspaced Short Palindromic Repeats (CRISPR) Genome Editing Technology in Fruit Tree Breeding

TL;DR: The most widely used CRISPR systems developed in other plant species that may be adopted for fruit Trees are reviewed and three genetic transformation methods used for fruit trees that have potential application value for different CRISpr systems are described.
Posted ContentDOI

Rice breeding in the new era: comparison of useful agronomic traits

TL;DR: The review includes specific trait-related genes involved in domestication, stress, herbicide tolerance, pathogen resistance, grain number, quality, weight, plant structure, nitrogen use, and others that can be targeted by different mutation techniques in the breeding of crops.

Untersuchungen zur Gentechnologie und DNA-Reparatur in Pflanzen mithilfe der Cas9 Nickase

Simon Schiml
TL;DR: Deep Sequencing und Quantifizierung homologer Rekombination zeigten hocheffiziente Induktion von Einzel- und Doppelstrangbruchen zur Analyse komplexer Genomveranderungen eingesetzt.
References
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Journal ArticleDOI

A programmable dual-RNA-guided DNA endonuclease in adaptive bacterial immunity.

TL;DR: This study reveals a family of endonucleases that use dual-RNAs for site-specific DNA cleavage and highlights the potential to exploit the system for RNA-programmable genome editing.
Journal ArticleDOI

Multiplex Genome Engineering Using CRISPR/Cas Systems

TL;DR: The type II prokaryotic CRISPR (clustered regularly interspaced short palindromic repeats)/Cas adaptive immune system has been shown to facilitate RNA-guided site-specific DNA cleavage as discussed by the authors.

Multiplex Genome Engineering Using CRISPR/Cas Systems

TL;DR: Two different type II CRISPR/Cas systems are engineered and it is demonstrated that Cas9 nucleases can be directed by short RNAs to induce precise cleavage at endogenous genomic loci in human and mouse cells, demonstrating easy programmability and wide applicability of the RNA-guided nuclease technology.
Journal ArticleDOI

RNA-Guided Human Genome Engineering via Cas9

TL;DR: The type II bacterial CRISPR system is engineer to function with custom guide RNA (gRNA) in human cells to establish an RNA-guided editing tool for facile, robust, and multiplexable human genome engineering.
Journal ArticleDOI

Repurposing CRISPR as an RNA-guided platform for sequence-specific control of gene expression.

TL;DR: This RNA-guided DNA recognition platform provides a simple approach for selectively perturbing gene expression on a genome-wide scale and can efficiently repress expression of targeted genes in Escherichia coli, with no detectable off-target effects.
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