Institute of Biopharmaceuticals, Taizhou University, Taizhou 318000, China.
Institute of Biotechnology, Zhejiang University, Hangzhou 310000, China.
Int J Mol Sci. 2022 Jun 7;23(12):6398. doi: 10.3390/ijms23126398.
Dendrobium catenatum is a widely cultivated Chinese orchid herb rich in abundant secondary metabolites, such as terpenes. However, terpene distribution and characterization of terpene biosynthesis-related genes remain unknown in D. catenatum. In this study, metabolic profiling was performed to analyze terpene distribution in the root, stem, leaf, and flower of D. catenatum. A total of 74 terpene compounds were identified and classified. Clustering analysis revealed that terpene compounds exhibited a tissue-specific accumulation, including monoterpenes in the flowers, sesquiterpenes in the stems, and triterpenes in the roots. Transcriptome analysis revealed that the ‘terpenoid backbone biosynthesis’ pathway was only significantly enriched in root vs. flower. The expression of terpene biosynthesis-related genes was spatiotemporal in the flowers. Prenylsynthase-terpene synthases (PS-TPSs) are the largest and core enzymes for generating terpene diversity. By systematic sequence analysis of six species, 318 PS-TPSs were classified into 10 groups and 51 DcaPS-TPSs were found in eight of them. Eighteen DcaPS-TPSs were regulated by circadian rhythm under drought stress. Most of the DcaPS-TPSs were influenced by cold stress and fungi infection. The cis-element of the majority of the DcaPS-TPS promoters was related to abiotic stress and plant development. Methyl jasmonate levels were significantly associated with DcaTPSs expression and terpene biosynthesis. These results provide insight into further functional investigation of DcaPS-TPSs and the regulation of terpene biosynthesis in Dendrobium.
金钗石斛是一种广泛种植的中国兰花植物,富含丰富的次生代谢产物,如萜类化合物。然而,金钗石斛中萜类化合物的分布和萜类生物合成相关基因的特征尚不清楚。在本研究中,进行了代谢谱分析,以分析金钗石斛根、茎、叶和花中萜类化合物的分布。共鉴定和分类了 74 种萜类化合物。聚类分析表明,萜类化合物表现出组织特异性积累,包括花中的单萜、茎中的倍半萜和根中的三萜。转录组分析表明,“萜类骨架生物合成”途径仅在根与花的比较中显著富集。花中萜类生物合成相关基因的表达具有时空特异性。 prenylsynthase-terpene synthases(PS-TPSs)是产生萜类多样性的最大和核心酶。通过对六个物种的系统序列分析,将 318 个 PS-TPS 分为 10 组,在其中 8 组中发现了 51 个 DcaPS-TPSs。18 个 DcaPS-TPSs 受干旱胁迫下的昼夜节律调节。大多数 DcaPS-TPSs 受冷胁迫和真菌感染影响。大多数 DcaPS-TPS 启动子的顺式元件与非生物胁迫和植物发育有关。茉莉酸甲酯水平与 DcaTPSs 表达和萜类生物合成显著相关。这些结果为进一步研究 DcaPS-TPSs 的功能和金钗石斛中萜类生物合成的调控提供了思路。