加速育种:加速植物育种

Shreya, Vinay Kumar, Arjoo
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摘要

不断增长的人口,不断变化的生活方式和不断推进的气候变化,使得必须对现有的作物品种进行改造,以确保全球粮食和营养安全,并实现其他市场驱动的性状。尽管在生产高产和营养丰富的粮食和纤维作物品种方面已经做了大量值得注意的工作,但培育优良品种的步伐仍无法满足对这些作物的需求。在传统方法中,种子到种子的周期为10-12年,这是现代植物育种事业进展的关键瓶颈之一。快速育种的概念是这里的救星,它大大减少了品种开发、发布和商业化所需的时间,几乎减少了一半。这是一套涉及操纵作物生长环境条件的技术,旨在加速开花和结籽,并尽可能快地推进下一代育种。它包括昼/夜温度、可用光谱和强度、光周期持续时间、土壤湿度、pgr的使用、调整空气中的CO2和O2水平以及高密度种植,以缩短开花时间、加速胚胎发育和种子成熟。最近的研究表明,将使用CRISPR/Cas9的基因编辑、高通量表型和基因分型、基因组选择和MAS等新兴技术与SB结合起来,可以提高遗传增益。在发展中国家,限制快速育种技术部署的关键挑战很少,包括基础设施的高成本、所需的专业知识和技能以及为研究和开发提供持续的财政支持,以维持其可持续运作。然而,现有的限制可以通过进一步优化关键粮食作物的SB协议及其在植物育种管道中的有效整合来解决。需要有多学科团队参与的国际合作研究工作,以鼓励将合成生物学系统整合到基础研究和应用研究中。尽管如此,快速育种技术将成为本世纪的下一个突破,并成为现代育种手段的重要组成部分。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Speed Breeding : Accelerated Plant Breeding
Burgeoning population, ever changing lifestyles and advancing climate change has made it mandatory to revamp the currently available crop cultivars so as to secure food & nutritional security worldwide and accomplish other market driven traits. Although a lot of appreciable work has been done to produce high yielding and nutrient-rich strains of panoply of food and fiber crops, the pace of breeding superior varieties is yet to match the demand for the same. The duration of the seed-to-seed cycle, which is 10-12 years in case of conventional approaches, is one of the crucial bottlenecks in the progress of modern plant breeding ventures. The concept of Speed Breeding serves as a saviour here by drastically reducing the time required for cultivar development, release and commercialization to nearly half. It is a suite of techniques that involves the manipulation of environmental conditions under which crops are grown, aiming to accelerate flowering & seed set and advance to the next breeding generation as quickly as possible. It encompasses manipulation of day/night temperature, available light spectrum & intensity, photoperiod duration, soil moisture, use of PGRs, adjusting CO2 & O2 levels in air and high-density plantings in order to reduce time to floral initiation, hasten embryo development and seed maturity. Recent research has shown the power of combining emerging techniques, such as gene editing using CRISPR/Cas9, high-throughput phenotyping and genotyping, genomic selection, and MAS, with SB for boosting genetic gain. There are few key challenges limiting the deployment of speed breeding techniques in developing countries, including the high costs of infrastructure, required expertise & skill set and continuous financial support for research and development to maintain this as a sustainable operation. However, the existing constraints can be resolved by further optimization of the SB protocols for critical food crops and their efficient integration in plant breeding pipelines. Collaborative international research endeavours involving multi-disciplinary teams are needed to encourage the integration of SB systems in basic and applied research. Nonetheless the technique of Speed breeding will come out as the next breakthrough of the century and become the part and parcel of modern breeding manoeuvres.
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