Key Laboratory for Forest Resources Conservation and Utilization in the Southwest Mountains of China Ministry of Education, Southwest Forestry University, Kunming 650224, China; Key Laboratory for Forest Genetics and Tree Improvement and Propagation in Universities of Yunnan Province, Southwest Forestry University, Kunming 650224, China.
Yunnan Academy of Forestry and Grassland, Kunming 650201, China.
Int J Biol Macromol. 2024 Oct;278(Pt 3):134820. doi: 10.1016/j.ijbiomac.2024.134820. Epub 2024 Aug 16.
Docynia delavayi is an economically significant fruit species with a high market potential due to the special aroma of its fruit. Here, a 653.34 Mb high-quality genome of D. delavayi was first reported, of which 93.8 % of the sequences (612.98 Mb) could be anchored to 17 chromosomes, containing 48,325 protein-coding genes. Ks analysis proved that two whole genome duplication (WGD) events occurred in D. delavayi, resulting in the expansion of genes associated with terpene biosynthesis, which promoted its fruit-specific aroma production. Combined multi-omics analysis, α-farnesene was detected as the most abundant aroma substance emitted by D. delavayi fruit during storage, meanwhile one α-farnesene synthase gene (AFS) and 15 transcription factors (TFs) were identified as the candidate genes potentially involved in α-farnesene biosynthesis. Further studies for the regulation network of α-farnesene biosynthesis revealed that DdebHLH, DdeERF1 and DdeMYB could activate the transcription of DdeAFS. To our knowledge, it is the first report that MYB TF plays a regulatory role in α-farnesene biosynthesis, which will greatly facilitate future breeding programs for D. delavayi.
道地萸(Docynia delavayi)是一种具有重要经济意义的水果,因其果实具有特殊的香气而具有很高的市场潜力。本研究首次报道了道地萸 653.34 Mb 的高质量基因组,其中 93.8%的序列(612.98 Mb)可以锚定到 17 条染色体上,包含 48325 个蛋白质编码基因。Ks 分析证明,道地萸经历了两次全基因组复制(WGD)事件,导致与萜烯生物合成相关的基因扩张,从而促进了其果实特有的香气产生。结合多组学分析,检测到α-法呢烯是道地萸果实贮藏过程中释放的最丰富的香气物质,同时鉴定出一个α-法呢烯合酶基因(AFS)和 15 个转录因子(TFs)作为可能参与α-法呢烯生物合成的候选基因。进一步研究α-法呢烯生物合成的调控网络表明,DdebHLH、DdeERF1 和 DdeMYB 可以激活 DdeAFS 的转录。据我们所知,这是首次报道 MYB TF 在α-法呢烯生物合成中发挥调控作用,这将极大地促进未来道地萸的育种计划。