Sanya Institute of China Agricultural University, Sanya, Hainan, 572025, China.
Department of Ornamental Horticulture, College of Horticulture, China Agricultural University, 100193, Beijing, China.
BMC Plant Biol. 2024 Apr 1;24(1):230. doi: 10.1186/s12870-024-04903-1.
Dendrobium spp. comprise a group of tropical orchids with ornamental and medicinal value. Dendrobium spp. are sensitive to low temperature, and the underlying cold response regulatory mechanisms in this group are unclear. To understand how these plants respond to cold stress, we compared the transcriptomic responses of the cold-tolerant cultivar 'Hongxing' (HX) and the cold-sensitive cultivar 'Sonia Hiasakul' (SH) to cold stress.
Chemometric results showed that the physiological response of SH in the later stages of cold stress is similar to that of HX throughout the cold treatment. Orthogonal partial least squares discriminant analysis (OPLS-DA) revealed that soluble protein content and peroxidase activity are key physiological parameters for assessing the cold tolerance of these two Dendrobium spp. cultivars. Additionally, weighted gene co-expression network analysis (WGCNA) results showed that many cold response genes and metabolic pathways significantly associated with the physiological indices were enriched in the 12 detected modules. The Kyoto Encyclopedia of Genes and Genomes (KEGG) and gene ontology (GO) enrichment analyses of the 105 hub genes showed that Dendrobium spp. adapt to cold stress by regulating signal transduction, phytohormones, transcription factors, protein translation and modification, functional proteins, biosynthesis and metabolism, cell structure, light, and the circadian clock. Hub genes of the cold stress response network included the remorin gene pp34, the abscisic acid signaling pathway-related genes PROTEIN PHOSPATASE 2 C (PP2C), SNF1-RELATED PROTEIN KINASE 2 (SnRK2), ABRE-BINDING FACTOR 1 (ABF1) and SKI-INTERACTING PROTEIN 17 (SKIP17), the Ca signaling-related GTP diphosphokinase gene CRSH1, the carbohydrate-related gene STARCH SYNTHASE 2 (SS2), the cell wall biosynthesis gene CINNAMYL ALCOHOL DEHYDROGENASE (CAD7), and the endocytosis-related gene VACUOLAR PROTEIN SORTING-ASSOCIATED PROTEIN 52 A (VPS52A).
The cold-responsive genes and metabolic pathways of Dendrobium spp. revealed in this study provide important insight to enable the genetic enhancement of cold tolerance in Dendrobium spp., and to facilitate cold tolerance breeding in related plants.
石斛属植物是一组具有观赏和药用价值的热带兰花。石斛属植物对低温敏感,该组植物对低温的响应调控机制尚不清楚。为了了解这些植物如何应对低温胁迫,我们比较了耐寒品种“红星”(HX)和低温敏感品种“Sonia Hiasakul”(SH)在低温胁迫下的转录组响应。
化学计量学结果表明,SH 在低温胁迫后期的生理反应与 HX 在整个低温处理过程中的生理反应相似。正交偏最小二乘判别分析(OPLS-DA)显示,可溶性蛋白含量和过氧化物酶活性是评估这两个石斛属品种耐寒性的关键生理参数。此外,加权基因共表达网络分析(WGCNA)结果表明,与生理指标显著相关的许多低温响应基因和代谢途径富集在检测到的 12 个模块中。105 个枢纽基因的京都基因与基因组百科全书(KEGG)和基因本体论(GO)富集分析表明,石斛属植物通过调节信号转导、植物激素、转录因子、蛋白质翻译和修饰、功能蛋白、生物合成和代谢、细胞结构、光照和昼夜节律来适应低温胁迫。低温胁迫响应网络的枢纽基因包括 remorin 基因 pp34、脱落酸信号通路相关基因蛋白磷酸酶 2C(PP2C)、SNF1 相关蛋白激酶 2(SnRK2)、ABRE 结合因子 1(ABF1)和 SKI 相互作用蛋白 17(SKIP17)、钙信号相关 GTP 二磷酸激酶基因 CRSH1、碳水化合物相关基因淀粉合酶 2(SS2)、细胞壁生物合成基因肉桂醇脱氢酶(CAD7)和内吞作用相关基因液泡蛋白分选相关蛋白 52A(VPS52A)。
本研究揭示的石斛属植物冷响应基因和代谢途径为提高石斛属植物的耐寒性提供了重要的遗传增强,并为相关植物的耐寒性育种提供了便利。