CBL1/CIPK23 phosphorylates tonoplast sugar transporter TST2 to enhance sugar accumulation in sweet orange (Citrus sinensis)

IF 9.3 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Mengdi Li, Zuolin Mao, Zeqi Zhao, Siyang Gao, Yanrou Luo, Ziyan Liu, Xiawei Sheng, Xiawan Zhai, Ji-Hong Liu, Chunlong Li
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引用次数: 0

Abstract

Fruit taste quality is greatly influenced by the content of soluble sugars, which are predominantly stored in the vacuolar lumen. However, the accumulation and regulation mechanisms of sugars in most fruits remain unclear. Recently, we established the citrus fruit vacuole proteome and discovered the major transporters localized in the vacuole membrane. Here, we demonstrated that the expression of tonoplast sugar transporter 2 (CsTST2) is closely associated with sugar accumulation during sweet orange (Citrus sinensis) ripening. It was further demonstrated that CsTST2 had the function of transporting hexose and sucrose into the vacuole. Overexpression of CsTST2 resulted in an elevation of sugar content in citrus juice sac, calli, and tomato fruit, whereas the downregulation of its expression led to the reduction in sugar levels. CsTST2 was identified as interacting with CsCIPK23, which binds to the upstream calcium signal sensor protein CsCBL1. The phosphorylation of the three serine residues (Ser277, Ser337, and Ser354) in the loop region of CsTST2 by CsCIPK23 is crucial for maintaining the sugar transport activity of CsTST2. Additionally, the expression of CsCIPK23 is positively correlated with sugar content. Genetic evidence further confirmed that calcium and CsCIPK23-mediated increase in sugar accumulation depends on CsTST2 and its phosphorylation level. These findings not only unveil the functional mechanism of CsTST2 in sugar accumulation, but also explore a vital calcium signal regulation module of CsCBL1/CIPK23 for citrus sweetness quality.

Abstract Image

CBL1/CIPK23磷酸化糖质体转运蛋白TST2,促进甜橙的糖积累。
可溶性糖的含量对果实的口感质量有很大的影响,可溶性糖主要储存在空泡腔中。然而,大多数水果中糖的积累和调节机制尚不清楚。最近,我们建立了柑橘果实液泡蛋白质组,发现了定位于液泡膜的主要转运蛋白。在这里,我们证明了糖质体糖转运蛋白2 (CsTST2)的表达与甜橙(Citrus sinensis)成熟过程中的糖积累密切相关。进一步证明CsTST2具有将己糖和蔗糖转运到液泡中的功能。CsTST2过表达导致柑橘汁囊、愈伤组织和番茄果实含糖量升高,表达下调导致含糖量降低。CsTST2与CsCIPK23相互作用,CsCIPK23结合上游钙信号传感器蛋白CsCBL1。CsCIPK23磷酸化CsTST2环区的三个丝氨酸残基(Ser277、Ser337和Ser354)对于维持CsTST2的糖转运活性至关重要。此外,CsCIPK23的表达与糖含量呈正相关。遗传证据进一步证实,钙和cscipk23介导的糖积累增加取决于CsTST2及其磷酸化水平。这些发现不仅揭示了CsTST2在糖积累中的作用机制,也探索了CsCBL1/CIPK23对柑橘甜度至关重要的钙信号调控模块。
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来源期刊
Journal of Integrative Plant Biology
Journal of Integrative Plant Biology 生物-生化与分子生物学
CiteScore
18.00
自引率
5.30%
发文量
220
审稿时长
3 months
期刊介绍: Journal of Integrative Plant Biology is a leading academic journal reporting on the latest discoveries in plant biology.Enjoy the latest news and developments in the field, understand new and improved methods and research tools, and explore basic biological questions through reproducible experimental design, using genetic, biochemical, cell and molecular biological methods, and statistical analyses.
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