Smoleń Sylwester, Kowalska Iwona, Kováčik Peter, Halka Mariya, Sady Włodzimierz
Unit of Plant Nutrition, Institute of Plant Biology and Biotechnology, Faculty of Biotechnology and Horticulture, University of Agriculture in Krakow, Kraków, Poland.
Department of Agrochemistry and Plant Nutrition, Slovak University of Agriculture in Nitra, Nitra, Slovakia.
Front Plant Sci. 2019 Feb 19;10:143. doi: 10.3389/fpls.2019.00143. eCollection 2019.
The agrotechnical methods of biofortification of plants, i.e., enriching them in iodine (I) and selenium (Se) could be effective methods to enrich food products in these elements. The advantage of agrotechnical methods of biofortification is the incorporation of elements in organic compounds in plants; therefore, they have better health-promoting properties than pure technical salts. Two-year studies were conducted in a greenhouse with hydroponic cultivation of three botanical varieties of lettuce in an NFT (nutrient film technique) system: two cultivars butterhead lettuces (abb. BUTL) 'Cud Voorburgu' and 'Zimująca,' two cultivars iceberg lettuces (abb. ICEL) 'Maugli' and 'Królowa lata' (all this four cultivars are classified as L. var. ) as well two cultivars L. var. L. cultivars (abb. REDL) 'Lollo rossa' and 'Redin' having little red leaves. The study included the application of I (as KIO), Se (as NaSeO), and SA into the nutrient solution. The tested treatments were as follows: (1) control, (2) I+Se, (3) I+Se+0.1 mg SA dm, (4) I+Se+1.0 mg SA dm, and (5) I+Se+10.0 mg SA dm. KIO was used at a dose of 5 mg I dm, while NaSeO was 0.5 mg Se dm. Regardless of the kind of the applied compound, the highest biomass of heads was produced by the REDL 'Redin' variety. Furthermore, this variety, as the only one in six varieties tested, reacted with the decrease in yield to the application of I+Se and I+Se+three concentrations of SA. In the heads of all cultivars, the level of I accumulation was 10-30 times higher than of Se. The level of I accumulation formed the following order: REDL 'Lollo rossa' > REDL 'Redin' = BUTL 'Cud Voorburgu' > BUTL 'Zimująca' > ICEL 'Maugli' > ICEL 'Królowa lata'. The order of Se content in leaves was as follows: REDL 'Redin' = BUTL 'Cud Voorburgu' > REDL 'Lollo rossa' > ICEL 'Maugli' > BUTL 'Zimująca' > ICEL 'Królowa lata'. The obtained results indicate that the introduction of SA to the nutrient solutions in hydroponic systems may allow an improve the effectiveness of - biofortification.
植物生物强化的农业技术方法,即增加植物中的碘(I)和硒(Se)含量,可能是使食品富含这些元素的有效方法。生物强化农业技术方法的优势在于将元素整合到植物中的有机化合物中;因此,它们比纯工业盐具有更好的促进健康的特性。在温室中采用营养液膜技术(NFT)水培三种生菜品种进行了为期两年的研究:两种奶油生菜品种(简称BUTL)“Cud Voorburgu”和“Zimująca”,两种结球生菜品种(简称ICEL)“Maugli”和“Królowa lata”(这四个品种均归类为L. var.),以及两种红叶生菜品种(简称REDL)“Lollo rossa”和“Redin”。该研究包括在营养液中添加碘(以KIO形式)、硒(以NaSeO形式)和水杨酸(SA)。测试处理如下:(1)对照,(2)I + Se,(3)I + Se + 0.1 mg SA/dm³,(4)I + Se + 1.0 mg SA/dm³,和(5)I + Se + 10.0 mg SA/dm³。KIO的使用剂量为5 mg I/dm³,而NaSeO为0.5 mg Se/dm³。无论施用何种化合物,红叶生菜品种“Redin”的叶球生物量最高。此外,该品种是六个测试品种中唯一一个,对添加I + Se以及I + Se与三种浓度SA组合的处理,产量会下降。在所有品种的叶球中,碘的积累水平比硒高10 - 30倍。碘积累水平的顺序为:红叶生菜“Lollo rossa”>红叶生菜“Redin” = 奶油生菜“Cud Voorburgu”>奶油生菜“Zimująca">结球生菜“Maugli”>结球生菜“Królowa lata”。叶片中硒含量的顺序为:红叶生菜“Redin” = 奶油生菜“Cud Voorburgu”>红叶生菜“Lollo rossa”>结球生菜“Maugli”>奶油生菜“Zimująca”>结球生菜“Królowa lata”。所得结果表明,在水培系统的营养液中添加水杨酸可能会提高生物强化的效果。