Raising Climate-Resilient Crops: Journey From the Conventional Breeding to New Breeding Approaches.

IF 1.8 4区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Yashika Gaba, Ashwani Pareek, Sneh Lata Singla-Pareek
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引用次数: 0

Abstract

Background: In order to meet the demands of the ever-increasing human population, it has become necessary to raise climate-resilient crops. Plant breeding, which involves crossing and selecting superior gene pools, has contributed tremendously towards achieving this goal during the past few decades. The relatively newer methods of crop improvement based on genetic engineering are relatively simple, and targets can be achieved in an expeditious manner. More recently emerged genome editing technique using CRISPR has raised strong hopes among plant scientists for precise integration of valuable traits and removal of undesirable ones.

Conclusion: Genome editing using Site-Specific Nucleases (SSNs) is a good alternative to the plant breeding and genetic engineering approaches as it can modify the genomes specifically and precisely at the target site in the host genome. Another added advantage of the genome editing approach is the simpler biosafety regulations that have been adopted by many countries for commercialization of the products thus generated. This review provides a critical assessment of the available methods for improving the stress tolerance in crop plants. Special emphasis has been given on genome editing approach in light of the diversity of tools, which are being discovered on an everyday basis and the practical applications of the same. This information will serve as a beginner's guide to initiate the crop improvement programs as well as giving technical insight to the expert to plan the research strategically to tackle even multigenic traits in crop plants.

培育气候适应性作物:从传统育种到新育种方法的历程
背景为了满足不断增长的人口的需求,种植具有气候适应性的作物已经成为必要。植物育种涉及杂交和选择优良基因库,在过去几十年中为实现这一目标做出了巨大贡献。基于基因工程的相对较新的作物改良方法相对简单,可以迅速实现目标。最近出现的使用CRISPR的基因组编辑技术在植物科学家中引发了对有价值性状的精确整合和去除不良性状的强烈希望。结论利用位点特异性核酸酶(SSNs)进行基因组编辑是一种很好的替代植物育种和基因工程方法的方法,因为它可以在宿主基因组的靶位点特异性和精确地修饰基因组。基因组编辑方法的另一个额外优势是许多国家为将由此产生的产品商业化而采用的更简单的生物安全法规。这篇综述对提高作物抗逆性的可用方法进行了重要评估。鉴于日常发现的工具的多样性及其实际应用,特别强调了基因组编辑方法。这些信息将作为启动作物改良计划的初学者指南,并为专家提供技术见解,以战略性地规划研究,甚至解决作物中的多基因特征。
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来源期刊
Current Genomics
Current Genomics 生物-生化与分子生物学
CiteScore
5.20
自引率
0.00%
发文量
29
审稿时长
>0 weeks
期刊介绍: Current Genomics is a peer-reviewed journal that provides essential reading about the latest and most important developments in genome science and related fields of research. Systems biology, systems modeling, machine learning, network inference, bioinformatics, computational biology, epigenetics, single cell genomics, extracellular vesicles, quantitative biology, and synthetic biology for the study of evolution, development, maintenance, aging and that of human health, human diseases, clinical genomics and precision medicine are topics of particular interest. The journal covers plant genomics. The journal will not consider articles dealing with breeding and livestock. Current Genomics publishes three types of articles including: i) Research papers from internationally-recognized experts reporting on new and original data generated at the genome scale level. Position papers dealing with new or challenging methodological approaches, whether experimental or mathematical, are greatly welcome in this section. ii) Authoritative and comprehensive full-length or mini reviews from widely recognized experts, covering the latest developments in genome science and related fields of research such as systems biology, statistics and machine learning, quantitative biology, and precision medicine. Proposals for mini-hot topics (2-3 review papers) and full hot topics (6-8 review papers) guest edited by internationally-recognized experts are welcome in this section. Hot topic proposals should not contain original data and they should contain articles originating from at least 2 different countries. iii) Opinion papers from internationally recognized experts addressing contemporary questions and issues in the field of genome science and systems biology and basic and clinical research practices.
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