College of Agronomy and Biotechnology, Yunnan Agricultural University, Kunming 650201, China.
College of Tropical Crops, Yunnan Agricultural University, Kunming 650201, China.
Int J Mol Sci. 2023 Aug 30;24(17):13475. doi: 10.3390/ijms241713475.
Yunnan hulled wheat (YHW) possesses excellent nutritional characteristics; however, the precise amino acid (AA) composition, contents, and molecular mechanisms underlying AA biosynthesis in YHW grains remain unclear. In this study, we aimed to perform metabolomic and transcriptomic profiling to identify the composition and genetic factors regulating AA biosynthesis during the physiological maturation of grains of two YHW genotypes, Yunmai and Dikemail, with high and low grain protein contents, respectively. A total of 40 and 14 differentially accumulated amino acids (AAs) or AA derivatives were identified between the waxy grain (WG) and mature grain (MG) phenological stages of Yunmai and Dikemail, respectively. The AA composition differed between WG and MG, and the abundance of AAs-especially that of essential AAs-was significantly higher in WG than in MG (only 38.74-58.26% of WG). Transcriptome analysis revealed differential regulation of structural genes associated with the relatively higher accumulation of AAs in WG. Weighted gene co-expression network analysis and correlation analyses of WG and MG indicated differences in the expression of clusters of genes encoding both upstream elements of AA biosynthesis and enzymes that are directly involved in AA synthesis. The expression of these genes directly impacted the synthesis of various AAs. Together, these results contribute to our understanding of the mechanism of AA biosynthesis during the different developmental stages of grains and provide a foundation for further research to improve the nutritional value of wheat products.
云南皮壳小麦(YHW)具有优良的营养特性;然而,其籽粒中氨基酸(AA)的组成、含量和生物合成的分子机制仍不清楚。本研究旨在对两个具有高、低蛋白含量的 YHW 基因型(云麦和迪卡麦)的籽粒在生理成熟过程中的代谢组学和转录组学进行分析,以鉴定 AA 生物合成的组成和遗传调控因子。共鉴定出云麦和迪卡麦的蜡质期(WG)和成熟期(MG)之间存在 40 种和 14 种差异积累的氨基酸(AA)或 AA 衍生物。WG 和 MG 之间的 AA 组成不同,WG 中 AA 的丰度,尤其是必需 AA 的丰度明显高于 MG(仅为 WG 的 38.74-58.26%)。转录组分析表明,与 AA 较高积累相关的结构基因存在差异调控。WG 和 MG 的加权基因共表达网络分析和相关性分析表明,参与 AA 生物合成上游元件和直接参与 AA 合成的酶的基因簇的表达存在差异。这些基因的表达直接影响各种 AA 的合成。总之,这些结果有助于我们理解籽粒不同发育阶段 AA 生物合成的机制,并为进一步研究提高小麦产品的营养价值提供了基础。