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Novel Insights into the Influence of Seed Sarcotesta Photosynthesis on Accumulation of Seed Dry Matter and Oil Content in Torreya grandis cv. Merrillii

机译:种子花椰菜光合作用对Torre豆种子干物质积累和含油量影响的新见解。 美林

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摘要

Seed oil content is an important trait of nut seeds, and it is affected by the import of carbon from photosynthetic sources. Although green leaves are the main photosynthetic organs, seed sarcotesta photosynthesis also supplies assimilates to seed development. Understanding the relationship between seed photosynthesis and seed development has theoretical and practical significance in the cultivation of Torreya grandis cv. “Merrillii.” To assess the role of seed sarcotesta photosynthesis on the seed development, anatomical and physiological traits of sarcotesta were measured during two growing seasons in the field. Compared with the attached current-year leaves, the sarcotesta had higher gross photosynthetic rate at the first stage of seed development. At the late second stage of seed development, sarcotesta showed down-regulation of PSII activity, as indicated by significant decrease in the following chlorophyll fluorescence parameters: the maximum PSII efficiency (Fv/Fm), the PSII quantum yield (ΦPSII), and the photosynthetic quenching coefficient (qP). The ribulose 1, 5—bisphosphate carboxylase (Rubisco) activity, the total chlorophyll content (Chl(a+b)) and nitrogen content in the sarcotesta were also significantly decreased during that period. Treatment with DCMU [3-(3,4-dichlorophenyl)-1,1-dimethylurea] preventing seed photosynthesis decreased the seed dry weight and the oil content by 25.4 and 25.5%, respectively. We conclude that seed photosynthesis plays an important role in the dry matter accumulation at the first growth stage. Our results also suggest that down-regulation of seed photosynthesis is a plant response to re-balance the source-sink ratio at the second growth stage. These results suggest that seed photosynthesis is important for biomass accumulation and oil synthesis of the Torreya seeds. The results will facilitate achieving higher yields and oil contents in nut trees by selection for higher seed photosynthesis cultivars.
机译:籽油含量是坚果种子的重要特征,它受光合作用碳的进口的影响。尽管绿叶是主要的光合作用器官,但种子结节藻的光合作用也为种子发育提供了同化作用。了解种子光合作用与种子发育之间的关系,对香of的栽培具有理论和实践意义。 “美林。”为了评估种子结节藻的光合作用对种子发育的作用,在田间两个生长季节对结节藻的解剖和生理特征进行了测量。与附着的当年叶子相比,结节菜在种子发育的第一阶段具有较高的总光合速率。在种子发育的第二个后期,肉瘤显示PSII活性下调,这表现为以下叶绿素荧光参数的显着降低:最大PSII效率(Fv / Fm),PSII量子产率(ΦPSII)和光合猝灭系数(qP)。在此期间,肌瘤中的核糖1、5-双磷酸羧化酶(Rubisco)活性,总叶绿素含量(Chl(a + b))和氮含量也显着降低。用DCMU [3-(3,4-二氯苯基)-1,1-二甲基脲]处理可防止种子光合作用,分别使种子干重和含油量分别降低25.4和25.5%。我们得出结论,种子的光合作用在第一个生长阶段的干物质积累中起着重要作用。我们的结果还表明,种子光合作用的下调是植物在第二个生长阶段重新平衡源库比的一种反应。这些结果表明种子的光合作用对于Torreya种子的生物量积累和油脂合成很重要。通过选择更高的种子光合作用品种,该结果将有助于在坚果树中获得更高的产量和油含量。

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