College of Agriculture and Forestry Science, Linyi University, Linyi, 276000, China.
National Key Laboratory for Germplasm Innovation & Utilization of Horticultural Crops, Huazhong Agricultural University, Wuhan, 430070, PR China.
BMC Genomics. 2024 Sep 30;25(1):905. doi: 10.1186/s12864-024-10826-w.
Mastication trait of citrus significantly influences the fruit's overall quality and consumer preference. The accumulation of cellulose in fruits significantly impacts the mastication trait of citrus fruits, and the glycoside hydrolase 9 (GH9) family plays a crucial role in cellulose metabolism. In this study, we successfully identified 32 GH9 genes from the Citrus sinensis genome and subsequently conducted detailed bioinformatics analyses of the GH9 family. Additionally, we profiled the spatiotemporal expression patterns of CsGH9 genes across four distinct fruit tissue types and six crucial developmental stages of citrus fruits, leveraging transcriptome data. Parallel to this, we undertook a comparative analysis of transcriptome profiles and cellulose content among diverse fruit tissues spanning six developmental stages. Furthermore, to identify the pivotal genes involved in cellulose metabolism within the GH9 family during fruit maturity, we employed correlation analysis between cellulose content and gene expression in varying tissues across diverse citrus varieties. This analysis highlighted key genes such as CsGH9A2/6 and CsGH9B12/13/14/22. Collectively, this study provides an in-depth analysis of the GH9 gene family in citrus and offers novel molecular insights into the underlying mechanisms governing the mastication trait formation in citrus fruits.
柑橘的咀嚼特性显著影响果实的整体品质和消费者偏好。纤维素在果实中的积累显著影响柑橘果实的咀嚼特性,而糖苷水解酶 9(GH9)家族在纤维素代谢中起着关键作用。在这项研究中,我们成功地从柑橘基因组中鉴定出 32 个 GH9 基因,并对 GH9 家族进行了详细的生物信息学分析。此外,我们利用转录组数据,对 4 种不同的果实组织类型和柑橘果实 6 个关键发育阶段的 CsGH9 基因的时空表达模式进行了分析。与此同时,我们对跨越 6 个发育阶段的不同果实组织的转录组图谱和纤维素含量进行了比较分析。此外,为了鉴定 GH9 家族中与果实成熟过程中纤维素代谢相关的关键基因,我们在不同柑橘品种的不同组织中,对纤维素含量与基因表达之间的相关性进行了分析。该分析突出了关键基因,如 CsGH9A2/6 和 CsGH9B12/13/14/22。总的来说,这项研究对柑橘中的 GH9 基因家族进行了深入分析,为理解柑橘果实咀嚼特性形成的潜在机制提供了新的分子见解。