Li Mengyao, He Qi, Huang Ying, Luo Ya, Zhang Yong, Chen Qing, Wang Yan, Lin Yuanxiu, Zhang Yunting, Liu Zejing, Wang Xiao-Rong, Tang Haoru
College of Horticulture, Sichuan Agricultural University, Chengdu, China.
College of Agriculture and Forestry Science, Linyi University, Linyi, China.
PeerJ. 2021 Mar 9;9:e10878. doi: 10.7717/peerj.10878. eCollection 2021.
Sucrose synthase (SUS) plays an important role in sucrose metabolism and plant development. The SUS gene family has been identified in many plants, however, there is no definitive study of SUS gene in . In this study, 14 SUS family genes were identified and comprehensively analyzed using bioinformatics tools. The analyzed parameters included their family member characteristics, chromosomal locations, gene structures and phylogenetic as well as transcript expression profiles. Phylogenetic analysis revealed that the 14 members could be allocated into three groups: SUS I, SUS II and SUS III. Comparisons of the exon/intron structure of the mustard SUS gene indicated that its structure is highly conserved. The conserved structure is attributed to purification selection during evolution. Expansion of the SUS gene family is associated with fragment and tandem duplications of the mustard SUS gene family. Collinearity analysis among species revealed that the SUS gene family could be lost or mutated to varying degrees after the genome was doubled, or when and hybridized to form . The expression patterns of vary among different stages of mustard stem swelling. Transcriptomics revealed that the expression levels were the most elevated. It has been hypothesized that they play an important role in sucrose metabolism during stem development. The expression levels of some were significantly up-regulated when they were treated with plant hormones. However, when subjected to abiotic stress factors, their expression levels were suppressed. This study establishes SUS gene functions during mustard stem development and stress.
蔗糖合酶(SUS)在蔗糖代谢和植物发育中起重要作用。许多植物中已鉴定出SUS基因家族,然而,关于[具体植物名称缺失]中SUS基因尚无定论性研究。在本研究中,利用生物信息学工具鉴定并综合分析了14个SUS家族基因。分析参数包括其家族成员特征、染色体定位、基因结构、系统发育以及转录表达谱。系统发育分析表明,14个成员可分为三组:SUS I、SUS II和SUS III。芥菜SUS基因的外显子/内含子结构比较表明其结构高度保守。这种保守结构归因于进化过程中的纯化选择。SUS基因家族的扩张与芥菜SUS基因家族的片段和串联重复有关。物种间的共线性分析表明,基因组加倍后,或者当[相关物种名称缺失]杂交形成[具体杂交产物名称缺失]时,SUS基因家族可能会不同程度地丢失或突变。芥菜茎膨大不同阶段[相关基因名称缺失]的表达模式各不相同。转录组学显示[相关基因名称缺失]的表达水平最高。据推测,它们在茎发育过程中的蔗糖代谢中起重要作用。一些[相关基因名称缺失]在用植物激素处理时表达水平显著上调。然而,在受到非生物胁迫因素时,它们的表达水平受到抑制。本研究确定了芥菜茎发育和胁迫过程中SUS基因的功能。