Key Laboratory of Grassland Ecosystems, College of Grassland Science, Gansu Agricultural University, Lanzhou, 730070, China.
Tibet Grassland Science Research Institute, Tibet Academy of Agricultural and Animal Husbandry Sciences, Lhasa, 850000, China.
BMC Genomics. 2024 Sep 16;25(1):863. doi: 10.1186/s12864-024-10743-y.
The Domain of unknown function 679 membrane protein (DMP) family, which is unique to plants, plays a crucial role in reproductive development, stress response and aging. A comprehensive study was conducted to identify the DMP gene members of oat (Avena sativa) and to investigate their structural features and tissue-specific expression profiles. Utilizing whole genome and transcriptome data, we analyzed the physicochemical properties, gene structure, cis-acting elements, phylogenetic relationships, conserved structural (CS) domains, CS motifs and expression patterns of the AsDMP family in A. sativa.
The DMP family genes of A. sativa were distributed across 17 chromosomal scaffolds, encompassing a total of 33 members. Based on phylogenetic relationships, the AsDMP genes were classified into five distinct subfamilies. The gene structure also suggests that A. sativa may have undergone an intron loss event during its evolution. Covariance analysis indicates that genome-wide duplication and segmental duplication may be the major contributor to the expansion of the AsDMP gene family. Ka/Ks selective pressure analysis of the AsDMP gene family suggests that DMP gene pairs are generally conserved over evolutionary time. The upstream promoters of these genes contain several cis-acting elements, suggesting a potential role in abiotic stress responses and hormone induction. Transcriptome data revealed that the expression patterns of the DMP genes are involved in tissue and organ development. In this study, the AsDMP genes (AsDMP1, AsDMP19, and AsDMP22) were identified as potential regulators of seed senescence in A. sativa. These genes could serve as candidates for breeding studies focused on seed longevity and anti-aging germplasm in A. sativa. The study provides valuable insights into the regulatory mechanisms of the AsDMP gene family in the aging process of A. sativa germplasm and offers theoretical support for further function investigation into the functions of AsDMP genes and the molecular mechanisms underlying seed anti-aging.
This study identified the AsDMP genes as being involved in the aging process of A. sativa seeds, marking the first report on the potential role of DMP genes in seed aging for A. sativa.
结构域未知功能 679 膜蛋白(DMP)家族是植物所特有的,在生殖发育、应激反应和衰老中起着关键作用。本研究全面鉴定了燕麦(Avena sativa)的 DMP 基因成员,并研究了它们的结构特征和组织特异性表达谱。利用全基因组和转录组数据,我们分析了 A. sativa 中 AsDMP 家族的理化性质、基因结构、顺式作用元件、系统发育关系、保守结构(CS)域、CS 基序和表达模式。
A. sativa 的 DMP 家族基因分布在 17 条染色体支架上,共包含 33 个成员。根据系统发育关系,AsDMP 基因分为五个不同的亚家族。基因结构还表明,A. sativa 在进化过程中可能经历了内含子丢失事件。共方差分析表明,基因组范围的复制和片段复制可能是 AsDMP 基因家族扩张的主要原因。AsDMP 基因家族的 Ka/Ks 选择压力分析表明,DMP 基因对在进化过程中通常是保守的。这些基因的上游启动子包含几个顺式作用元件,表明它们可能在非生物胁迫响应和激素诱导中发挥作用。转录组数据显示,DMP 基因的表达模式参与了组织和器官的发育。本研究鉴定了 AsDMP 基因(AsDMP1、AsDMP19 和 AsDMP22)是 A. sativa 种子衰老的潜在调控因子。这些基因可以作为种子长寿和 A. sativa 抗老化种质选育的候选基因。本研究为进一步研究 AsDMP 基因在 A. sativa 种质衰老过程中的功能和种子抗衰老的分子机制提供了理论支持。
本研究鉴定了 AsDMP 基因参与了 A. sativa 种子的衰老过程,这是首次报道 DMP 基因在 A. sativa 种子衰老中的潜在作用。