Integrated Transcriptomic, Proteomic, and Metabolomic Analyses Reveal Mechanisms Underlying Day-Night Differences in Carbohydrate Metabolism between Diploid and Tetraploid Rice.

IF 4.8 1区 农林科学 Q1 AGRONOMY
Rice Pub Date : 2025-07-16 DOI:10.1186/s12284-025-00826-z
Weilong Meng, Yuchen Liu, Changjiang Zhang, Xiaohong Zhan, Yingkai Wang, Xinfang Yu, Chunying Zhang, Ningning Wang, Jian Ma
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Abstract

Polyploidy plays a crucial role in plant evolution, as polyploid plants possess larger genomes compared to their diploid counterparts. This genomic expansion leads to changes in gene redundancy and interactions, which alter the physiological metabolism of polyploids. Carbohydrate metabolism is a crucial energy metabolism pathway in plants, significantly impacting plant growth and development. In this study, we employed multi-omics analysis to investigate the differences in carbohydrate metabolism between diploid and tetraploid flag leaves during both day and night periods at the grain-filling stage. Our results revealed significant differences in carbohydrate metabolism between diploid (GFD-2X) and autopolyploid (GFD-4X) rice during both day and night periods. Chromosome doubling resulted in GFD-4X exhibiting reduced sucrose catabolism during the daytime, while starch synthesis and catabolism were stronger in GFD-4X compared to GFD-2X during both daytime and nighttime. Additionally, the phosphorylation of monosaccharides was enhanced in GFD-4X, suggesting that changes in chromosome ploidy altered carbohydrate metabolism, thereby benefiting the regulation and redistribution of carbohydrates in tetraploid rice. Furthermore, analysis of respiration-related pathways indicated that tetraploid rice may have more vigorous respiratory activity. Specifically, GFD-4X exhibited enhanced glycolysis and TCA cycle activity at night, resulting in more efficient energy production, which in turn influenced growth and the developmental process. This study examined the regulatory networks of genes, proteins, and metabolites involved in carbohydrate metabolism in diploid and tetraploid rice during both day and night periods. Our findings offer insights into how chromosome ploidy affects carbohydrate metabolism and reveal the distinct growth and developmental mechanisms of tetraploid rice.

综合转录组学、蛋白质组学和代谢组学分析揭示了二倍体和四倍体水稻碳水化合物代谢昼夜差异的机制。
多倍体在植物进化中起着至关重要的作用,因为多倍体植物比二倍体植物拥有更大的基因组。这种基因组扩展导致基因冗余和相互作用的变化,从而改变多倍体的生理代谢。碳水化合物代谢是植物体内重要的能量代谢途径,对植物的生长发育有重要影响。本研究采用多组学分析方法,研究了灌浆期二倍体和四倍体旗叶白天和夜间碳水化合物代谢的差异。研究结果显示,二倍体(GFD-2X)和自多倍体(GFD-4X)水稻在白天和夜间的碳水化合物代谢均存在显著差异。染色体加倍导致GFD-4X在白天的蔗糖分解代谢减少,而在白天和夜间,GFD-4X的淀粉合成和分解代谢都比GFD-2X强。此外,单糖磷酸化在GFD-4X中增强,表明染色体倍性的改变改变了碳水化合物代谢,从而有利于四倍体水稻碳水化合物的调节和再分配。此外,对呼吸相关途径的分析表明,四倍体水稻可能具有更强烈的呼吸活动。具体而言,GFD-4X在夜间表现出增强的糖酵解和TCA循环活性,从而产生更有效的能量,从而影响生长和发育过程。本研究研究了二倍体和四倍体水稻白天和夜间碳水化合物代谢的基因、蛋白质和代谢物的调控网络。本研究揭示了染色体倍性如何影响碳水化合物代谢,揭示了四倍体水稻独特的生长发育机制。
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来源期刊
Rice
Rice AGRONOMY-
CiteScore
10.10
自引率
3.60%
发文量
60
审稿时长
>12 weeks
期刊介绍: Rice aims to fill a glaring void in basic and applied plant science journal publishing. This journal is the world''s only high-quality serial publication for reporting current advances in rice genetics, structural and functional genomics, comparative genomics, molecular biology and physiology, molecular breeding and comparative biology. Rice welcomes review articles and original papers in all of the aforementioned areas and serves as the primary source of newly published information for researchers and students in rice and related research.
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