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LsFUL-LsSMU2 模块在高温下正向调控生菜(Lactuca sativa L.)抽薹时间。

LsFUL-LsSMU2 module positively controls bolting time in leaf lettuce (Lactuca sativa L.) under high temperature.

机构信息

Department of Plant Science and Technology, Beijing Key Laboratory of New Technology in Agricultural Application, National Demonstration Center for Experimental Plant Production Education, Beijing University of Agriculture, Beijing 102206, China.

出版信息

Plant Sci. 2024 Oct;347:112195. doi: 10.1016/j.plantsci.2024.112195. Epub 2024 Jul 26.

Abstract

High temperature (HT) is an environmental factor that considerably affects plant physiology, development, crop yield, and economic value. HT can cause diseases and early bolting of leaf lettuce, thereby reducing the yield and quality of leaf lettuce. Herein, we used two leaf lettuce (Lactuca sativa L.) cultivars (bolting-resistant 'S24' and bolting-sensitive 'S39') to investigate the key factors and molecular mechanism impacting bolting. We found that 14 MADS-box genes implicated in bolting and flowering, LsMADS54 (also referred to as L. sativa FRUITFULL, LsFUL), was significantly up-regulated 1000 times after 5-d HT treatment and that HT-induced up-regulation of LsFUL was higher in bolting-sensitive than in resistant cultivars. The overexpression lines of LsFUL exhibited an earlier bolting time than that in the non-transformed 'S39'(CK). However, the RNA interference, and CRISPR-Cas9-mediated knockout lines of LsFUL exhibited a later bolting time than that in CK. In addition, we found that L. sativa SUPPRESSORS OF MEC-8 AND UNC-52 PROTEIN 2 (LsSMU2) and L. sativa CONSTANS-LIKE PROTEIN 5 (LsCOL5) interact with LsFUL, and these interactions could stimulate or prevent bolting. We observed that elevated temperature stimulated the abundance of LsSMU2 in the stem, which collaborated with LsFUL to accelerate bolting. Conversely, room temperature (RT) condition led to relatively more stable LsCOL5, which worked with LsFUL to postpone bolting. In summary, our findings demonstrate a molecular regulatory module of LsSMU2-LsFUL associated with HT-induced premature bolting, which serves as a reference for understanding HT-induced premature bolting phenomenon in leaf lettuce.

摘要

高温(HT)是一种对植物生理、发育、作物产量和经济价值有重大影响的环境因素。HT 会导致生菜叶片生病和早期抽薹,从而降低生菜的产量和质量。在这里,我们使用了两个生菜(Lactuca sativa L.)品种(抗抽薹的“S24”和感抽薹的“S39”)来研究影响抽薹的关键因素和分子机制。我们发现,14 个与抽薹和开花有关的 MADS 框基因,LsMADS54(也称为 L. sativa FRUITFULL,LsFUL),在 HT 处理 5 天后显著上调了 1000 倍,并且 HT 诱导的 LsFUL 上调在感抽薹品种中比在抗抽薹品种中更高。LsFUL 的过表达系比非转化的“S39”(CK)更早抽薹。然而,LsFUL 的 RNA 干扰和 CRISPR-Cas9 介导的敲除系比 CK 晚抽薹。此外,我们发现 L. sativa SUPPRESSORS OF MEC-8 AND UNC-52 PROTEIN 2(LsSMU2)和 L. sativa CONSTANS-LIKE PROTEIN 5(LsCOL5)与 LsFUL 相互作用,这些相互作用可以刺激或阻止抽薹。我们观察到高温刺激茎中 LsSMU2 的丰度增加,与 LsFUL 一起加速抽薹。相反,室温(RT)条件导致相对更多稳定的 LsCOL5,与 LsFUL 一起延迟抽薹。总之,我们的研究结果表明,LsSMU2-LsFUL 与 HT 诱导的过早抽薹有关的分子调控模块,可以作为理解生菜中 HT 诱导的过早抽薹现象的参考。

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