3种不同干燥方法下5种药用植物化学成分含量及总抗氧化能力的评价

D. Gamage, R. Dharmadasa, D. Abeysinghe, R. Wijesekara, G. Prathapasinghe, Takao Someya
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引用次数: 1

摘要

干燥可以快速保存草药材料的药用特性。然而,药用植物中具有强大抗氧化活性和广泛药理特性的生物活性化合物的不稳定性可能表明它们对不同干燥处理的敏感性。因此,本研究的目的是确定遮荫干燥、日光干燥和烘箱干燥对五种潜在化妆品植物叶片生物活性成分的影响。积雪草(Centella asiatica)市区。塞纳·阿拉塔(L.)Roxb。在30-35 iaC下,遮阴干燥器在30-40 iaC下,太阳干燥器在30-40 iaC下,烘箱在40 iaC下干燥至等重。采用氯化铝比色法、Folin- Ciocalteau法和磷酸钼酸盐法分别测定了黄酮含量(TFC)、总酚含量(TPC)和总抗氧化能力(TAC)。所有试验均为三份。数据分析采用单因素方差分析和Tukeyi¯s多重比较方法。结果表明,荆芥太阳晒干叶片的TFC、TPC和TAC(分别为758.81iA2.05 mg RE/100g DW、3.54iA0.71 mg GAE/100g DW和22.56iA0.38 mg AAE/100g DW)和月桂太阳晒干叶片的TFC、TPC和TAC(分别为89.72iA1.38 mg RE/100g DW、23.9iA0.06 mg GAE/100g DW和8.53iA0.73 mg AAE/100g DW)显著高于荆芥。太阳晒干的亚洲山茱萸和阿拉木图叶片TFC和TAC含量较高,烘箱干的亚洲山茱萸和遮荫干的阿拉木图叶片TPC含量较高。遮荫干燥样品的TFC最高,日光干燥叶片的TPC最高,烘箱干燥叶片的TAC最高。此外,不同干燥方式对红枣抗氧化能力和酚类物质含量的影响也不显著(p > 0.05)。和抗氧化能力。由此可见,利用太阳能干燥机对药用植物材料进行太阳能干燥是一种经济、高效、有效的干燥方法,可以有效地保存上述植物叶片中存在的生物活性物质。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Assessment of Phytochemical Contents and Total Antioxidant Capacity of Five Medicinal Plants with Cosmetic Potential under Three Different Drying Methods
Drying allows the quick conservation of medicinal properties of herbal materials. However, the instability of bioactive compounds in medicinal plants which exhibit potent antioxidant activity and wide range of pharmacological properties may indicate a sensitivity to different drying treatments. Therefore, the objective of the present study was to determine the effect of shade drying, solar drying and oven drying on bioactive ingredients of five cosmetic potential plant leaves. Leaves of Centella asiatica (L.) Urb., Senna alata (L.) Roxb., Justicia adhatoda L., Ocimum tenuiflorum L., Hibiscus rosa-sinensis L. were dried to a constant weight using shade drier at 30-35 iaC, solar drier at 30-40 iaC and oven at 40 iaC. Aluminum chloride colorimetric assay, Folin- Ciocalteau method, and Phosphomolybdate assay were employed to analyse the total flavonoid content (TFC), total phenolic content (TPC) and total antioxidant capacity (TAC) of ethanolic extracts of leaves respectively. All assays were performed in triplicate. Data was analyzed using one -way ANOVA and Tukeyi¯s multiple comparison method. Results showed that significantly higher TFC, TPC and TAC of solar dried leaves of O. tenuiflorum (758.81iA2.05 mg RE/100g DW, 3.54iA0.71 mg GAE/100g DW and 22.56iA0.38 mg AAE/100g DW respectively) and leaves of H. rosa-sinensis (89.72iA1.38 mg RE/100g DW, 23.9iA0.06 mg GAE/100g DW and 8.53iA0.73 mg AAE/100g DW respectively). Solar dried C. asiatica and S. alata leaves showed high TFC and TAC while the TPC was high in oven dried leaves of C. asiatica and shade dried leaves of S. alata respectively. In contrast, J. adhatoda showed the maximum TFC in shade dried samples, the highest TPC in solar dried leaves and the maximum TAC in oven dried leaves. Moreover, there were no significant differences (p > 0.05) among drying methods in terms of antioxidant capacity and phenolic content of J. adhatoda. and antioxidant capacity of C. asiatica. Thus, it can be concluded that, solar drying of medicinal plant materials using solar drier would be an economical, efficient, and effective drying method for preserving bioactive compounds present in leaves of above-mentioned plants.
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