Transformative Gene Editing Methods: Precision in Genetically Modified Crops through Trait Modification

Gangadhara Doggalli, Kavya, Oinam Bobochand Singh, Manojkumar H G, Mitali Srivastava, Chaya G B, Abhishek V Karadagi, Vinodh Kumar P N
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Abstract

Global climate change and adverse abiotic and biotic factors are significantly limiting agricultural productivity, presenting substantial challenges for crop scientists striving to meet the growing global food demand. The primary aim of plant biology research is to enhance food security by increasing crop yields, improving resistance to stresses, and boosting nutrient content. While traditional breeding has successfully produced high-yielding crop varieties, persistent challenges remain. Advanced biotechnological methods, including overexpression, RNA interference, and genome editing, offer promising solutions to these challenges. Innovations like next-generation sequencing, high-throughput genotyping, precision editing, and space technology have accelerated crop improvement programs. Site-specific nucleases such as TALENs and CRISPR/Cas systems have revolutionized biological research by enabling precise genome modifications essential for agriculture. These technologies facilitate targeted genome modifications, allowing for the development of traits crucial for food security and expediting trait development in key crops. The integration of cutting-edge tools and technologies has significantly advanced these strategies, driving the enhancement of crop species. CRISPR/Cas genome-wide screens open new opportunities for discovering and expanding traits vital for food security. This discussion explores the development and application of various site-specific nuclease systems in plant genome engineering, highlighting their potential to precisely enhance traits, thereby increasing crop productivity and resilience against climate change. Cutting-edge genome-editing technologies, particularly CRISPR/Cas systems, are poised to transform the agricultural landscape and play a pivotal role in ensuring future food security. These technologies offer a vision of a future where agriculture can adapt to changing environmental conditions and meet the growing global demand for food. Advances in genetic engineering, gene editing, and synthetic biology drive crop trait modifications, aiming to enhance productivity, improve nutritional quality, and provide resistance to pests, diseases, and environmental stresses. These innovations are essential for securing a sustainable agricultural future and ensuring the global population has access to sufficient, nutritious food.
变革性基因编辑方法:通过性状修饰实现转基因作物的精确性
全球气候变化以及不利的非生物和生物因素极大地限制了农业生产力,给努力满足日益增长的全球粮食需求的作物科学家带来了巨大挑战。植物生物学研究的主要目的是通过提高作物产量、增强抗逆性和提高营养成分含量来加强粮食安全。虽然传统育种已成功培育出高产作物品种,但持续存在的挑战依然存在。先进的生物技术方法,包括过表达、RNA 干扰和基因组编辑,为这些挑战提供了有希望的解决方案。下一代测序、高通量基因分型、精准编辑和太空技术等创新技术加快了作物改良计划的步伐。TALENs 和 CRISPR/Cas 系统等位点特异性核酸酶实现了对农业至关重要的精准基因组修饰,从而彻底改变了生物研究。这些技术促进了有针对性的基因组改造,使对粮食安全至关重要的性状得以开发,并加快了关键作物的性状开发。尖端工具和技术的整合极大地推进了这些战略,推动了作物物种的改良。CRISPR/Cas 全基因组筛选为发现和扩大对粮食安全至关重要的性状提供了新的机遇。本讨论探讨了植物基因组工程中各种位点特异性核酸酶系统的开发和应用,强调了它们在精确增强性状方面的潜力,从而提高作物生产力和抵御气候变化的能力。尖端基因组编辑技术,尤其是 CRISPR/Cas 系统,有望改变农业格局,并在确保未来粮食安全方面发挥关键作用。这些技术提供了一个未来愿景,即农业能够适应不断变化的环境条件,满足全球日益增长的粮食需求。基因工程、基因编辑和合成生物学的进步推动着作物性状的改变,目的是提高生产力、改善营养质量、抵抗病虫害和环境压力。这些创新对于确保未来农业的可持续发展和全球人口获得充足的营养食品至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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