野生和控制环境下种植的细长苋(Amaranthus viridis L.)的作物产量、植物化学物质和生物活性

Agronomy Pub Date : 2024-09-06 DOI:10.3390/agronomy14092038
Tatiana Pagan Loeiro da Cunha-Chiamlera, Tarik Chileh-Chelh, Miguel Urrestarazu, Mohamed Ezzaitouni, Rosalía López-Ruiz, Manuela Gallón-Bedoya, Miguel Á. Rincón-Cervera, José L. Guil-Guerrero
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引用次数: 0

摘要

苋菜(Amaranthus viridis L.)是一种野生食用植物,偶尔也会作为替代作物进行栽培,因为它是一种功能性食品,而且适应高盐度土壤。在这项工作中,我们比较了在无土栽培系统中,在电导率(EC)和不同光照条件下,在受控环境(GCE)下生长的马齿苋叶片,以评估生长参数、水分、总酚和总黄酮含量、酚类化合物概况、维生素 C、抗氧化活性以及对 HT-29 人类结直肠癌细胞系的抗增殖活性。使用 2.5 dS m-1 的 EC 和 AP67 Milk LED 灯获得的生物量最高。野生样本中的维生素 C 含量为 83.1 至 104.9 毫克(100 克-1 鲜重),而 GCE 样品中的维生素 C 含量为 112.3 至 236.7 毫克(100 克-1 鲜重)。通过 DPPH 和 ABTS 检测,野生植物的抗氧化活性高于 GCE 植物:野生样本的范围分别为 1.8-4.9 和 2.0-3.9 毫摩尔曲环毒素当量(TE)100 克-1 干重(干重),而 GCE 样本的范围分别为 1.3-1.9 和 1.5-2.2 毫摩尔 TE 100 克-1 干重。在野生样本中,酚类化合物的含量范围为 14.65 至 22.70 毫克(100 克-1 干重),远高于在 GCE 同类样本中发现的含量(2.58 至 5.95 毫克(100 克-1 干重))。在野生植物中,有三种化合物,即反式对香豆酸、异鼠李素-3-O-葡萄糖苷和烟草素,占酚类化合物定量总量的一半以上。MTT 试验表明,所有检查过的提取物对 HT-29 细胞都有浓度和时间依赖性抑制作用。GCE 植物提取物对癌细胞的影响较小,与野生植物相比,GCE 植物提取物的 GI50 较高。这项工作增进了人们对野生和 GCE A. viridis 的生长参数、植物化学特征和生物活性的了解。
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Crop Productivity, Phytochemicals, and Bioactivities of Wild and Grown in Controlled Environment Slender Amaranth (Amaranthus viridis L.)
Amaranthus viridis L. is a wild edible plant that occasionally is cultivated as an alternative crop because of its interest as a functional food and its adaptation to high-saline soils. In this work, leaves from A. viridis were compared with their grown in controlled environment (GCE) counterparts in a soilless system at electrical conductivities (EC) and different light exposures for assessing growth parameters, moisture, total phenolic and total flavonoid content, phenolic compound profiles, vitamin C, antioxidant activity, and antiproliferative activity against the HT–29 human colorectal cancer cell line. The highest biomass production was obtained using EC of 2.5 dS m−1 and the AP67 Milk LED lamp. Vitamin C in wild samples ranged from 83.1 to 104.9 mg 100 g−1 fresh weight (fw), and in GCE ones, it ranged from 112.3 to 236.7 mg 100 g−1 fw. Measured by the DPPH and ABTS assays, the antioxidant activity was higher in wild than in GCE plants: the ranges for wild samples were in the 1.8–4.9 and 2.0–3.9 mmol of Trolox Equivalent (TE) 100 g−1 dry weight (dw) ranges, and for GCE ones in the 1.3–1.9 and 1.5–2.2 mmol TE 100 g−1 dw ranges, respectively. As for phenolic compounds, in wild samples, the range was from 14.65 to 22.70 mg 100 g−1 fw, and these amounts were much higher than those found in their GCE counterparts, in which the range was from 2.58 to 5.95 mg 100 g−1 fw. In wild plants three compounds, namely trans-p-coumaric acid, isorhamnetin–3–O–glucoside, and nicotiflorin, accounted for more than half of the total quantified phenolic compounds. The MTT assay revealed concentration- and time-dependent inhibitory effects on HT–29 cells for all checked extracts. Cancer cells were less influenced by extracts from GCE plants, which showed higher GI50 compared to wild plants. This work improves knowledge on the growth parameters, phytochemical profiles, and biological activities of wild and GCE A. viridis.
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