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综合多组学分析揭示了适宜光照强度通过碳代谢介导对白芨叶片多糖生物合成的调控。

Integrated multi-omic analysis reveals the carbon metabolism-mediated regulation of polysaccharide biosynthesis by suitable light intensity in Bletilla striata leaves.

机构信息

Forest & Fruit Tree Research Institute, Shanghai Academy of Agricultural Sciences, Shanghai, 201403, China.

Forest & Fruit Tree Research Institute, Shanghai Academy of Agricultural Sciences, Shanghai, 201403, China.

出版信息

Plant Physiol Biochem. 2024 Sep;214:108872. doi: 10.1016/j.plaphy.2024.108872. Epub 2024 Jun 27.

Abstract

Bletilla striata, valued for its medicinal and ornamental properties, remains largely unexplored in terms of how light intensity affects its physiology, biochemistry, and polysaccharide formation. In this 5-month study, B. striata plants were exposed to three different light intensities: low light (LL) (5-20 μmol m·s), middle light (ML) (200 μmol m·s), and high light (HL) (400 μmol m·s). The comprehensive assessment included growth, photosynthetic apparatus, chlorophyll fluorescence electron transport, and analysis of differential metabolites based on the transcriptome and metabolome data. The results indicated that ML resulted in the highest plant height and total polysaccharide content, enhanced photosynthetic apparatus performance and light energy utilization, and stimulated carbon metabolism and carbohydrate accumulation. HL reduced Chl content and photosynthetic apparatus functionality, disrupted OEC activity and electron transfer, stimulated carbon metabolism and starch and glucose accumulation, and hindered energy metabolism related to carbohydrate degradation and oxidation. In contrast, LL facilitated leaf growth and increased chlorophyll content but decreased plant height and total polysaccharide content, compromised the photosynthetic apparatus, hampered light energy utilization, stimulated energy metabolism related to carbohydrate degradation and oxidation, and inhibited carbon metabolism and carbohydrate synthesis. Numerous genes in carbon metabolism were strongly related to polysaccharide metabolites. The katE and cysK genes in carbon metabolism were strongly related not only to polysaccharide metabolites, but also to genes involved in polysaccharide biosynthesis. Our results highlight that light intensity plays a crucial role in affecting polysaccharide biosynthesis in B. striata, with carbon metabolism acting as a mediator under suitable light intensity conditions.

摘要

白及,因其药用和观赏价值而备受重视,但在光照强度如何影响其生理、生化和多糖形成方面的研究还很不充分。在这项为期 5 个月的研究中,白及植株分别被置于三种不同光照强度下:低光(LL)(5-20 μmol m·s)、中光(ML)(200 μmol m·s)和高光(HL)(400 μmol m·s)。综合评估包括生长、光合作用器官、叶绿素荧光电子传递以及基于转录组和代谢组数据的差异代谢物分析。结果表明,ML 导致最高的株高和总多糖含量,增强了光合作用器官的性能和光能利用,并刺激了碳代谢和碳水化合物的积累。HL 降低了 Chl 含量和光合作用器官的功能,破坏了 OEC 活性和电子传递,刺激了碳代谢和淀粉及葡萄糖的积累,并阻碍了与碳水化合物降解和氧化相关的能量代谢。相比之下,LL 促进了叶片生长并增加了叶绿素含量,但降低了株高和总多糖含量,损害了光合作用器官,阻碍了光能利用,刺激了与碳水化合物降解和氧化相关的能量代谢,并抑制了碳代谢和碳水化合物的合成。碳代谢中的许多基因与多糖代谢物密切相关。碳代谢中的 katE 和 cysK 基因不仅与多糖代谢物密切相关,而且与参与多糖生物合成的基因密切相关。我们的研究结果强调,光照强度在影响白及多糖生物合成方面起着至关重要的作用,而在适宜的光照强度条件下,碳代谢作为一种介质发挥作用。

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