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通过基因组编辑将番茄转化为富含γ-氨基丁酸的功能性食品:一种现代生物技术方法。

Transforming tomatoes into GABA-rich functional foods through genome editing: A modern biotechnological approach.

作者信息

Sakthivel Kausalya, Balasubramanian Rajagopal, Sampathrajan Vellaikumar, Veerasamy Ravichandran, Appachi Sathiyamurthy V, K K Kumar

机构信息

Department of Plant Biotechnology, Tamilnadu Agricultural University, 641003, Coimbatore, India.

Department of Crop Physiology, Tamilnadu Agricultural University, 641003, Coimbatore, India.

出版信息

Funct Integr Genomics. 2025 Jan 27;25(1):27. doi: 10.1007/s10142-025-01538-9.

Abstract

Gamma-aminobutyric acid (GABA) functions as an inhibitory neurotransmitter which blocks the impulses between nerve cells in the brain. Due to the increasing awareness about the health promoting benefits associated with GABA, it is also artificially synthesized and consumed as a nutritional supplement by people in some regions of the world. Though among the fresh vegetables, tomato fruits do contain a comparatively higher amount of GABA (0.07 to 2.01 mg g FW), it needs to be further enhanced to fully impart its potential health benefits. Achieving this feat through classical breeding approaches is time and resource consuming, and is also associated with linkage drag. On the other hand, precise targeting of specific sites in the genome with less off- target effects is mediated by CRISPR/Cas9 genome editing tool and is widely used to overcome the barriers associated with traditional breeding approaches. Combining genome editing with speed breeding techniques can enable the rapid development of GABA-rich tomato cultivars, paving a way to unlock a new era of functional foods, where every bite contributes to cognitive well-being and holistic health. This review highlights the significance of GABA boosted functional foods and explores the potential of CRISPR/Cas9 technology for developing GABA enriched tomatoes.

摘要

γ-氨基丁酸(GABA)作为一种抑制性神经递质,可阻断大脑中神经细胞之间的冲动。由于人们越来越意识到GABA对健康有益,在世界上一些地区,它也被人工合成并作为营养补充剂食用。虽然在新鲜蔬菜中,番茄果实确实含有相对较高含量的GABA(0.07至2.01毫克/克鲜重),但需要进一步提高其含量,以充分发挥其潜在的健康益处。通过传统育种方法实现这一目标既耗时又耗资源,而且还存在连锁累赘问题。另一方面,CRISPR/Cas9基因组编辑工具可介导对基因组中特定位点的精确靶向,且脱靶效应较小,该工具被广泛用于克服与传统育种方法相关的障碍。将基因组编辑与快速育种技术相结合,可以快速培育出富含GABA的番茄品种,为开启功能性食品的新时代铺平道路,在这个时代,每一口食物都有助于促进认知健康和整体健康。这篇综述强调了富含GABA的功能性食品的重要性,并探讨了CRISPR/Cas9技术在培育富含GABA的番茄方面的潜力。

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