Sugar import mediated by sugar transporters and cell wall invertases for seed development in Camellia oleifera

IF 8.7 1区 农林科学 Q1 Agricultural and Biological Sciences
Bingshuai Du, Yibo Cao, Jing Zhou, Yuqing Chen, Zhihua Ye, Yiming Huang, Xinyan Zhao, Xinhui Zou, Lingyun Zhang
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Abstract

Seed development and yield depend on the transport and supply of sugar. However, an insufficient supply of nutrients from maternal tissues to embryos results in seed abortion and yield reduction in Camellia oleifera. In this study, we systematically examined the route and regulatory mechanisms of sugar import into developing C. oleifera seeds using a combination of histological observations, transcriptome profiling and functional analysis. Labelling with the tracer carboxyfluorescein revealed a symplasmic route in the integument and an apoplasmic route for post-phloem transport at the maternal-filial interface. Enzymatic activity and histological observation showed that at early stages (180-220 DAP) of embryo differentiation, the high hexose/sucrose ratio was primarily mediated by acid invertases and the micropylar endosperm/suspensor provides a channel for sugar import. Through Camellia genomic profiling, we identified three plasma membrane-localized proteins including CoSWEET1b, CoSWEET15 and CoSUT2 and one tonoplast-localized protein CoSWEET2a in seeds and verified their ability to transport various sugars via transformation in yeast mutants and calli. In situ hybridization and profiling of glycometabolism-related enzymes further demonstrated that CoSWEET15 functions as a micropylar endosperm-specific gene, together with the cell wall acid invertase CoCWIN9, to support early embryo development, while CoSWEET1b, CoSWEET2a and CoSUT2 function at transfer cells and chalazal nucellus coupled with CoCWIN9 and CoCWIN11 responsible for sugar entry in bulk into the filial tissue. Collectively, our findings provide the first comprehensive evidence of the molecular regulation of sugar import into and within C. oleifera seeds and provide a new target for manipulating seed development.
由糖转运体和细胞壁转化酶介导的糖输入促进油茶籽的发育
种子的发育和产量取决于糖分的运输和供应。然而,从母体组织到胚胎的营养供应不足会导致油茶种子流产和减产。在这项研究中,我们采用组织学观察、转录组分析和功能分析相结合的方法,系统地研究了油茶种子糖分输入的途径和调控机制。用示踪剂羧基荧光素标记显示了在种皮中的交质运输路线和在母体-韧皮部界面的韧皮部后运输路线。酶活性和组织学观察表明,在胚胎分化的早期阶段(180-220 DAP),高己糖/蔗糖比主要由酸转化酶介导,而小胚乳/悬丝为糖的输入提供了通道。通过山茶花基因组图谱分析,我们在种子中发现了三个质膜定位蛋白,包括CoSWEET1b、CoSWEET15和CoSUT2,以及一个色质体定位蛋白CoSWEET2a,并通过转化酵母突变体和胼胝体验证了它们转运各种糖类的能力。糖代谢相关酶的原位杂交和图谱分析进一步证明,CoSWEET15 作为胚乳小柱特异基因与细胞壁酸转化酶 CoCWIN9 一起支持早期胚的发育,而 CoSWEET1b、CoSWEET2a 和 CoSUT2 则在转移细胞和卡拉扎核起作用,与 CoCWIN9 和 CoCWIN11 一起负责糖大量进入孝子组织。总之,我们的研究结果首次提供了油橄榄种子内部糖分输入分子调控的全面证据,并为操纵种子发育提供了一个新的靶标。
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来源期刊
Horticulture Research
Horticulture Research Biochemistry, Genetics and Molecular Biology-Biochemistry
CiteScore
11.20
自引率
6.90%
发文量
367
审稿时长
20 weeks
期刊介绍: Horticulture Research, an open access journal affiliated with Nanjing Agricultural University, has achieved the prestigious ranking of number one in the Horticulture category of the Journal Citation Reports ™ from Clarivate, 2022. As a leading publication in the field, the journal is dedicated to disseminating original research articles, comprehensive reviews, insightful perspectives, thought-provoking comments, and valuable correspondence articles and letters to the editor. Its scope encompasses all vital aspects of horticultural plants and disciplines, such as biotechnology, breeding, cellular and molecular biology, evolution, genetics, inter-species interactions, physiology, and the origination and domestication of crops.
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