Tiwari Jagesh Kumar, Singh Anand Kumar, Behera Tusar Kanti
Division of Vegetable Improvement, Indian Council of Agricultural Research-Indian Institute of Vegetable Research, Varanasi, Uttar Pradesh, India.
Division of Horticulture, Indian Council of Agricultural Research, Krishi Anusandhan Bhawan - II, Pusa, New Delhi, India.
Front Plant Sci. 2023 Feb 23;14:1121209. doi: 10.3389/fpls.2023.1121209. eCollection 2023.
The narrow genetic base of tomato poses serious challenges in breeding. Hence, with the advent of clustered regularly interspaced short palindromic repeat (CRISPR)-associated protein9 (CRISPR/Cas9) genome editing, fast and efficient breeding has become possible in tomato breeding. Many traits have been edited and functionally characterized using CRISPR/Cas9 in tomato such as plant architecture and flower characters (e.g. leaf, stem, flower, male sterility, fruit, parthenocarpy), fruit ripening, quality and nutrition (e.g., lycopene, carotenoid, GABA, TSS, anthocyanin, shelf-life), disease resistance (e.g. TYLCV, powdery mildew, late blight), abiotic stress tolerance (e.g. heat, drought, salinity), C-N metabolism, and herbicide resistance. CRISPR/Cas9 has been proven in introgression of domestication of elite traits from wild relatives to the cultivated tomato and vice versa. Innovations in CRISPR/Cas allow the use of online tools for single guide RNA design and multiplexing, cloning (e.g. Golden Gate cloning, GoldenBraid, and BioBrick technology), robust CRISPR/Cas constructs, efficient transformation protocols such as , and DNA-free protoplast method for Cas9-gRNAs ribonucleoproteins (RNPs) complex, Cas9 variants like PAM-free Cas12a, and Cas9-NG/XNG-Cas9, homologous recombination (HR)-based gene knock-in (HKI) by geminivirus replicon, and base/prime editing (Target-AID technology). This mini-review highlights the current research advances in CRISPR/Cas for fast and efficient breeding of tomato.
番茄狭窄的遗传基础给育种带来了严峻挑战。因此,随着成簇规律间隔短回文重复序列(CRISPR)相关蛋白9(CRISPR/Cas9)基因组编辑技术的出现,番茄育种中快速高效的育种成为可能。利用CRISPR/Cas9在番茄中已经对许多性状进行了编辑和功能表征,如植株形态和花的特征(如叶片、茎、花、雄性不育、果实、单性结实)、果实成熟、品质和营养(如番茄红素、类胡萝卜素、γ-氨基丁酸、总可溶性固形物、花青素、货架期)、抗病性(如番茄黄化曲叶病毒、白粉病、晚疫病)、非生物胁迫耐受性(如高温、干旱、盐胁迫)、碳氮代谢以及除草剂抗性。CRISPR/Cas9已被证明可用于将野生近缘种的优良性状导入栽培番茄以及反向导入,反之亦然。CRISPR/Cas的创新使得能够使用在线工具进行单向导RNA设计和多重化、克隆(如金门克隆、GoldenBraid和生物砖技术)、强大的CRISPR/Cas构建体、高效的转化方案(如)以及用于Cas9-gRNAs核糖核蛋白(RNPs)复合物的无DNA原生质体方法、PAM-free Cas12a等Cas9变体以及Cas9-NG/XNG-Cas9、通过双生病毒复制子进行基于同源重组(HR)的基因敲入(HKI)以及碱基/碱基编辑(Target-AID技术)。本综述重点介绍了CRISPR/Cas在番茄快速高效育种方面的当前研究进展。