Zhang Zaibao, Xiong Tao, Li Kejia, Huang Kexin, Liao Chunxia, Liu Guangqu
School of Life and Health Science, Huzhou College, Huzhou, Zhejiang, China.
College of Life Science, Xinyang Normal University, Xinyang, Henan, China.
BMC Genomics. 2025 Mar 19;26(1):273. doi: 10.1186/s12864-025-11475-3.
Trehalose-6-phosphate synthase (TPS) is an essential enzyme involved in the production of trehalose, and the genes associated with TPS are crucial for various processes such as growth, development, defense mechanisms, and resistance to stress. However, there has been no documentation regarding the evolution and functional roles of the TPS gene family within Theaceae.
Here, we uncovered the lineage-specific evolution of TPS genes in Theaceae. A total of 102 TPS genes were discovered across ten Theaceae species with sequenced genomes. Consistent with the previous classification, our phylogenetic analysis indicated that the TPS genes in Theaceae can be categorized into two primary subfamilies and six distinct clades (I, II-1, II-2, II-3, II-4, II-5), with clade I containing a greater number of introns compared to those found in clade II. Segmental duplication served as the main catalyst for the evolution of TPS genes within Theaceae, and numerous TPS genes exhibited inter-species synteny among various Theaceae species. Most of the TPS genes were ubiquitously expressed, and expression divergence of TPS paralogous pairs was observed. The cis-acting elements found in TPS genes indicated their involvement in responses to phytohormones and stress.
This research enhanced our understanding of the lineage-specific evolution of the TPS gene family in Theaceae and offered important insights for future functional analyses.
海藻糖-6-磷酸合酶(TPS)是参与海藻糖生产的一种关键酶,与TPS相关的基因对于生长、发育、防御机制和抗逆性等各种过程至关重要。然而,关于山茶科植物中TPS基因家族的进化和功能作用尚无文献报道。
在此,我们揭示了山茶科植物中TPS基因的谱系特异性进化。在十个已测序基因组的山茶科物种中总共发现了102个TPS基因。与先前的分类一致,我们的系统发育分析表明,山茶科植物中的TPS基因可分为两个主要亚家族和六个不同的分支(I、II-1、II-2、II-3、II-4、II-5),与分支II相比,分支I含有更多的内含子。片段重复是山茶科植物中TPS基因进化的主要催化剂,并且许多TPS基因在不同的山茶科物种之间表现出种间共线性。大多数TPS基因普遍表达,并且观察到TPS旁系同源基因对的表达差异。在TPS基因中发现的顺式作用元件表明它们参与了对植物激素和胁迫的响应。
本研究增进了我们对山茶科植物中TPS基因家族谱系特异性进化的理解,并为未来的功能分析提供了重要的见解。