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Tomato ( Solanum lycopersicum ) SlIPT4 , encoding an isopentenyltransferase, is involved in leaf senescence and lycopene biosynthesis during fruit ripening

机译:番茄(Solanum lycopersicum)SlIPT4,编码异戊烯基转移酶,参与果实成熟过程中的叶片衰老和番茄红素的生物合成

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Lycopene is an important carotenoid pigment in red fruits and vegetables, especially in tomato. Although lycopene biosynthesis and catabolism have been found to be regulated by multiple factors including phytohormones, little is known about their regulatory mechanism. Cytokinins are crucial to various aspects of plant growth. Isopentenyltransferases (IPTs) catalyze the initial rate-limiting step of cytokinins biosynthesis, however, their roles in fruit ripening remain unclear. Here, the functions of SlIPT4, encoding an isopentenyltransferase, were characterized via RNAi-mediated gene silencing in tomato. As we expected, silencing of SlIPT4 expression resulted in accelerated leaf senescence. However, down-expression of SlIPT4 generated never-red orange fruits, corresponding with a dramatic reduction of lycopene. Among lycopene biosynthesis-related genes, the fact of remarkable decrease of ZISO transcript and upregulation of other genes, revealed that SlIPT4 regulates positively lycopene biosynthesis via directly affecting ZISO expression, and also supported the existence of regulatory loops in lycopene biosynthesis pathway. Meanwhile, the accumulation of abscisic acid (ABA) was reduced and the transcripts PSY1 were increased in SlIPT4-RNAi fruits, supporting the feedback regulation between ABA and lycopene biosynthesis. The study revealed the crucial roles of SlIPT4 in leaf senescence and the regulatory network of lycopene biosynthesis in tomato, providing a new light on the lycopene biosynthesis and fruit ripening.
机译:番茄红素是红色水果和蔬菜,尤其是番茄中重要的类胡萝卜素色素。尽管已发现番茄红素的生物合成和分解代谢受多种因素(包括植物激素)的调控,但对其调控机制知之甚少。细胞分裂素对于植物生长的各个方面至关重要。异戊烯基转移酶(IPTs)催化细胞分裂素生物合成的初始限速步骤,但是,其在果实成熟中的作用仍不清楚。在此,通过RNAi介导的番茄基因沉默来表征编码异戊烯基转移酶的SlIPT4的功能。如我们所料,SIPPT4表达的沉默导致叶片衰老加速。但是,SlIPT4的下表达产生了永不红色的橙色水果,与番茄红素的显着减少相对应。在番茄红素生物合成相关基因中,ZISO转录显着下降和其他基因上调的事实表明,SlIPT4通过直接影响ZISO表达来积极调控番茄红素生物合成,也支持番茄红素生物合成途径中存在调控环。同时,SlIPT4-RNAi果实中脱落酸(ABA)的积累减少,转录物PSY1增加,支持ABA与番茄红素生物合成之间的反馈调节。该研究揭示了SlIPT4在番茄叶片衰老和番茄红素生物合成的调控网络中的关键作用,为番茄红素生物合成和果实成熟提供了新的思路。

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