Departamento de Biologia Vegetal, Universidade Federal de Viçosa, Viçosa, MG, 36570-900, Brazil.
Max Planck Institute of Molecular Plant Physiology, Am Mühlenberg 1, 14476, Potsdam-Golm, Germany.
Plant Cell Rep. 2021 Aug;40(8):1377-1393. doi: 10.1007/s00299-020-02623-y. Epub 2020 Oct 19.
The tomato mutant Never ripe (Nr), a loss-of-function for the ethylene receptor SlETR3, shows enhanced growth, associated with increased carbon assimilation and a rewiring of the central metabolism. Compelling evidence has demonstrated the importance of ethylene during tomato fruit development, yet its role on leaf central metabolism and plant growth remains elusive. Here, we performed a detailed characterization of Never ripe (Nr) tomato, a loss-of-function mutant for the ethylene receptor SlETR3, known for its fruits which never ripe. However, besides fruits, the Nr gene is also constitutively expressed in vegetative tissues. Nr mutant showed a growth enhancement during both the vegetative and reproductive stage, without an earlier onset of leaf senescence, with Nr plants exhibiting a higher number of leaves and an increased dry weight of leaves, stems, roots, and fruits. At metabolic level, Nr also plays a significant role with the mutant showing changes in carbon assimilation, carbohydrates turnover, and an exquisite reprogramming of a large number of metabolite levels. Notably, the expression of genes related to ethylene signaling and biosynthesis are not altered in Nr. We assess our results in the context of those previously published for tomato fruits and of current models of ethylene signal transduction, and conclude that ethylene insensitivity mediated by Nr impacts the whole central metabolism at vegetative stage, leading to increased growth rates.
番茄突变体 Never ripe(Nr)是乙烯受体 SlETR3 的功能丧失突变体,表现出增强的生长,与增强的碳同化和中心代谢的重布线相关。令人信服的证据表明乙烯在番茄果实发育过程中的重要性,但它在叶片中心代谢和植物生长中的作用仍然难以捉摸。在这里,我们对 Nr 番茄进行了详细表征,Nr 是乙烯受体 SlETR3 的功能丧失突变体,以其果实永不成熟而闻名。然而,除了果实,Nr 基因在营养组织中也持续表达。Nr 突变体在营养和生殖阶段都表现出生长增强,而没有更早的叶片衰老开始,Nr 植株具有更多的叶片和增加的叶片、茎、根和果实的干重。在代谢水平上,Nr 也起着重要的作用,突变体显示出碳同化、碳水化合物周转和大量代谢物水平的精巧重编程的变化。值得注意的是,Nr 中与乙烯信号转导和生物合成相关的基因的表达没有改变。我们根据之前发表的关于番茄果实的结果和当前的乙烯信号转导模型来评估我们的结果,并得出结论,由 Nr 介导的乙烯不敏感性在营养阶段影响整个中心代谢,导致生长速率增加。