State Key Laboratory for Crop Stress Resistance and High-Efficiency Production/Shaanxi Key Laboratory of Apple, College of Horticulture, Northwest A&F University, Yangling, Shaanxi 712100, China.
Chinese Education Ministry's Key Laboratory of Western Resources and Modern Biotechnology, Key Laboratory of Biotechnology Shaanxi Province, College of Life Sciences, Northwest University, Xi'an, Shaanxi 710069, China.
Plant Physiol. 2024 Jul 31;195(4):2772-2786. doi: 10.1093/plphys/kiae273.
In fleshy fruit, sugars and acids are central components of fruit flavor and quality. To date, the mechanisms underlying transcriptional regulation of sugar and acid during fruit development remain largely unknown. Here, we combined ATAC-seq with RNA-seq to investigate the genome-wide chromatin accessibility and to identify putative transcription factors related to sugar and acid accumulation during apple (Malus domestica) fruit development. By integrating the differentially accessible regions and differentially expressed genes, we generated a global data set of promoter-accessibility and expression-increased genes. Using this strategy, we constructed a transcriptional regulatory network enabling screening for key transcription factors and target genes involved in sugar and acid accumulation. Among these transcription factors, 5 fruit-specific DNA binding with one finger genes were selected to confirm their regulatory effects, and our results showed that they could affect sugar or acid concentration by regulating the expression of sugar or acid metabolism-related genes in apple fruits. Our transcriptional regulatory network provides a suitable platform to identify candidate genes that control sugar and acid accumulation. Meanwhile, our data set will aid in analyzing other characteristics of apple fruit that have not been illuminated previously. Overall, these findings support a better understanding of the regulatory dynamics during apple fruit development and lay a foundation for quality improvement of apple.
在肉质果实中,糖和酸是果实风味和品质的重要组成部分。迄今为止,糖和酸在果实发育过程中转录调控的机制在很大程度上尚不清楚。在这里,我们结合 ATAC-seq 和 RNA-seq 来研究全基因组染色质可及性,并鉴定与苹果(Malus domestica)果实发育过程中糖和酸积累相关的潜在转录因子。通过整合差异可及区域和差异表达基因,我们生成了一个与糖和酸积累相关的启动子可及性和表达增强基因的全局数据集。使用这种策略,我们构建了一个转录调控网络,用于筛选参与糖和酸积累的关键转录因子和靶基因。在这些转录因子中,选择了 5 个具有一个手指的果实特异性 DNA 结合蛋白,以验证其调控作用,结果表明它们可以通过调节苹果果实中糖或酸代谢相关基因的表达来影响糖或酸的浓度。我们的转录调控网络为鉴定控制糖和酸积累的候选基因提供了合适的平台。同时,我们的数据集将有助于分析苹果果实以前未阐明的其他特征。总的来说,这些发现支持了对苹果果实发育过程中调控动态的更好理解,并为苹果品质的提高奠定了基础。