College of Horticulture and Plant Protection, Yangzhou University, Yangzhou 225009, PR China.
College of Horticulture and Plant Protection, Yangzhou University, Yangzhou 225009, PR China; Joint International Research Laboratory of Agriculture and Agri-Product Safety, the Ministry of Education of China, Yangzhou University, Yangzhou 225009, PR China.
Int J Biol Macromol. 2021 Nov 1;190:769-779. doi: 10.1016/j.ijbiomac.2021.09.016. Epub 2021 Sep 11.
Herbaceous peony (Paeonia lactiflora Pall.) is a popular high-end cut flower, but stem bending caused by low stem strength severely decreases its quality. To enhance stem strength, the regulatory effects of exogenous silicon were investigated in P. lactiflora. The results showed that silicon application enhanced stem strength by increasing the thickness of secondary cell walls and the layers of thickened secondary cells. Moreover, more lignin accumulated, particularly G-lignin and S-lignin, and the activities of lignin biosynthetic enzymes increased with silicon application. In addition, based on transcriptome analysis, silicon application induced the expression of genes participating in lignin biosynthesis pathway. Among them, hydroxycinnamoyl-CoA: shikimate hydroxycinnamoyl transferase gene (HCT1) was isolated from P. lactiflora and found to be mainly localized in the cytoplasm of cells. Overexpression of PlHCT1 increased the layers of thickened secondary cells and lignin accumulation in tobacco, resulting in enhanced stem strength and demonstrably straight stems. Finally, silicon content, lignin content and PlHCT1 expression in P. lactiflora cultivars with high stem strengths were totally higher than those in cultivars with low stem strengths. These results indicated that silicon application enhanced stem strength by promoting lignin accumulation in P. lactiflora, which has prospects for stem quality improvement in general.
芍药(Paeonia lactiflora Pall.)是一种受欢迎的高端切花,但由于茎干强度低导致的茎干弯曲严重降低了其品质。为了提高茎干强度,研究了外源硅对芍药的调节作用。结果表明,硅的应用通过增加次生细胞壁的厚度和加厚次生细胞的层数来增强茎干强度。此外,随着硅的应用,木质素积累增加,特别是 G-木质素和 S-木质素,木质素生物合成酶的活性也增加。此外,基于转录组分析,硅的应用诱导参与木质素生物合成途径的基因表达。其中,从芍药中分离出羟基肉桂酰辅酶 A:莽草酸羟基肉桂酰转移酶基因(HCT1),并发现其主要定位于细胞的细胞质中。过表达 PlHCT1 增加了烟草中加厚次生细胞的层数和木质素的积累,从而增强了茎干强度,使茎干明显变直。最后,高茎强度芍药品种的硅含量、木质素含量和 PlHCT1 表达均明显高于低茎强度品种。这些结果表明,硅的应用通过促进芍药木质素的积累来增强茎干强度,这为提高一般茎干质量提供了前景。