CRISPR/Cas-Mediated Genome Engineering in Plants: Application and Prospectives

Author:

Mishra Swetaleena1,Nayak Subhendu2,Tuteja Narendra3,Poosapati Sowmya4ORCID,Swain Durga Madhab5ORCID,Sahoo Ranjan Kumar1ORCID

Affiliation:

1. Department of Biotechnology, Centurion University of Technology and Management, Bhubaneswar 752050, India

2. Vidya USA Corporation, Otis Stone Hunter Road, Bunnell, FL 32100, USA

3. Plant Molecular Biology Group, International Centre for Genetic Engineering and Biotechnology (ICGEB), New Delhi 110067, India

4. Plant Biology Laboratory, Salk Institute for Biological Studies, San Diego, CA 92037, USA

5. MU Bond Life Sciences Center, University of Missouri, Columbia, MO 65211, USA

Abstract

Genetic engineering has become an essential element in developing climate-resilient crops and environmentally sustainable solutions to respond to the increasing need for global food security. Genome editing using CRISPR/Cas [Clustered regulatory interspaced short palindromic repeat (CRISPR)-associated protein (Cas)] technology is being applied to a variety of organisms, including plants. This technique has become popular because of its high specificity, effectiveness, and low production cost. Therefore, this technology has the potential to revolutionize agriculture and contribute to global food security. Over the past few years, increasing efforts have been seen in its application in developing higher-yielding, nutrition-rich, disease-resistant, and stress-tolerant “crops”, fruits, and vegetables. Cas proteins such as Cas9, Cas12, Cas13, and Cas14, among others, have distinct architectures and have been used to create new genetic tools that improve features that are important for agriculture. The versatility of Cas has accelerated genomic analysis and facilitated the use of CRISPR/Cas to manipulate and alter nucleic acid sequences in cells of different organisms. This review provides the evolution of CRISPR technology exploring its mechanisms and contrasting it with traditional breeding and transgenic approaches to improve different aspects of stress tolerance. We have also discussed the CRISPR/Cas system and explored three Cas proteins that are currently known to exist: Cas12, Cas13, and Cas14 and their potential to generate foreign-DNA-free or non-transgenic crops that could be easily regulated for commercialization in most countries.

Publisher

MDPI AG

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