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Flavonoid Productivity Optimized for Green and Red Forms of Perilla frutescens via Environmental Control Technologies in Plant Factory

机译:黄酮类生产力通过植物厂的环境控制技术为紫苏玻璃纤维的绿色和红色形式优化

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摘要

Perilla frutescens (Lamiaceae) is a dietary staple in Asia. It is an abundant source of flavonoids that are bioactively beneficial to human health and fitness. The current popularity of plant-based consumption is being driven by the healthful benefits of bioactive nutrition, and the concentration of bioactive agents found in raw plant materials is an important factor in the assessment of food quality. To test the feasibility of promoting flavonoid productivity in perilla plants via environmental treatment, plant factory technology was applied to perilla plant cultivation. Apigenin (AG) and luteolin (LT) are two of the most potent anticarcinogenic flavonoids in perilla, and these are also found in many vegetables and fruits. Quantitative analysis of AG and LT was conducted on plants cultivated under nine environmental forms of treatment imposed by three levels of light intensity (100, 200, and 300 µmol·m−2·s−1) combined with three levels of nutrient-solution concentration (1.0, 2.0, and 3.0 dS·m−1) for hydroculture. The contents of AG in green and red perilla plant were increased by high nutrient-solution levels under the same light intensity. In green perilla, the highest concentration of AG (8.50 µg·g−1) was obtained under treatment of the highest level of nutrient-solution (3.0 dS·m−1) and 200 µmol·m−2·s−1 of light intensity, whereas in red perilla, the highest concentration of AG (6.38 µg·g−1) was achieved from the highest levels of both of these forms of treatment (300 µmol·m−2·s−1 and 3.0 dS·m−1). The increase in AG content per plant between the lowest and the highest levels was recorded by 6.4-fold and 8.6-fold in green and red perilla, respectively. The behavior of LT concentration differed between green and red forms of perilla. LT concentration in red perilla was enhanced under nutrient deficiency (1.0 dS·m−1) and affected by light intensity. Different responses were observed in the accumulations of AG and LT in red and green perilla during treatments, and this phenomenon was discussed in terms of biosynthetic pathways that involve the expressions of phenylpropanoids and anthocyanins. The total yield of flavonoids (AG and LT) was improved with the optimization of those forms of treatment, with the best total yields: 33.9 mg·plant−1 in green Perilla; 10.0 mg·plant−1 in red perilla, and a 4.9-fold and a 5.4-fold increase was recorded in green and red perilla, respectively. This study revealed that flavone biosynthesis and accumulation in perilla plants could be optimized via environmental control technologies, and this approach could be applicable to leafy vegetables with bioactive nutrition to produce a stable industrial supply of high flavonoid content.
机译:紫苏(唇形科)是亚洲的一种主食。这是对人类健康和健身在生物活性有益的类黄酮的丰富来源。植物为基础的消费目前人气正由生物活性营养健康的好处驱动,并在植物原料中的生物活性剂的浓度在食品质量评估的重要因素。为了测试通过环境治理促进紫苏植物类黄酮生产力的可行性,植物工厂技术应用于紫苏植物栽培。芹菜素(AG)和木犀草素(LT)是两种紫苏最有效的抗癌类黄酮,这些也很多蔬菜和水果中。 AG和LT的定量分析在下由三个等级的光强度而施加的治疗九个环境形式栽培植物进行(100,200,和300微摩尔·M-2·S-1)与三级营养溶液浓度的组合(1.0,2.0和3.0德尚·M-1)为hydroculture。相同的光强度下的AG在绿色和红色紫苏植物的内含物提高了高营养溶液的水平。在绿色紫苏,(8.50微克·G-1)中的治疗营养液的最高水平的获得AG的最高浓度的光(3.0德尚·M-1)和200微摩尔·M-2·S-1强度,而在红紫苏,AG的最高浓度(6.38微克·G-1),从这两种形式的治疗水平最高达到(300微摩尔·M-2·S-1和3.0德尚·间1)。在银含量单株最低和最高水平之间的增加是记录6.4倍,并在绿色和红色紫苏,分别为8.6倍。紫苏的绿色和红色形式之间差异LT浓度的行为。在红紫苏LT浓度下营养缺乏明显增强(1.0德尚·M-1)和受光强度。在治疗期间在AG和LT的红色和绿色紫苏的积累,观察不同的反应,而这种现象在生物合成途径涉及苯丙和花青素的表达形式的讨论。用的那些形式治疗的优化黄酮(AG和LT)的总产率提高,具有最佳的总产率:33.9毫克·植物-1在绿色紫苏; 10.0毫克·植物-1在红紫苏,和一个4.9倍和5.4倍的增加被分别记录在绿色和红色紫苏,。这项研究表明,黄酮生物合成和积累紫苏植物可以通过环境控制技术进行优化,并且这种方法可以适用于叶菜类生物活性营养价值的蔬菜生产高黄酮含量稳定的产业供应。

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