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中国精品科技期刊2020

九蒸九制过程中黄精主要成分与性状的多元分析及活性变化

Multivariate Analysis of Main Components, Colors, and Activity Changes of Polygonatum sibiricum during the Nine-Steam-Nine-Bake Process

  • 摘要: 本文探究黄精在九蒸九制过程中的主要成分、性状及生理活性的变化。先采用比色法、质构仪、色差仪和水分含量测定仪,测定黄精在九蒸九制过程中主要成分含量和性状的变化;通过2种分析方法探究黄精的整体变化规律。其次测定不同炮制阶段黄精的抗氧化能力、对α-葡萄糖苷酶的抑制率、对巨噬细胞存活率及吞噬能力的影响,综合评价蒸制过程中的功能活性变化。结果表明,炮制过程中总糖含量下降至32.48 mg/g,多酚、黄酮、蒽醌类成分与类黑精含量分别增高至生品黄精的10.28、14.68、10.90、17.39倍;颜色指标E*ab从62.21下降至40.34,表现为黄白色转变为黑褐色;质地变得柔软,但内部结构未被破坏;整体可将蒸制过程分为炮制初期(生品黄精、一蒸一制)、炮制中期(二蒸二制~四蒸四制)、炮制末期(五蒸五制~九蒸九制);黄精的总糖、总酚、黄酮、蒽醌类成分与类黑精含量与颜色显著相关,可通过颜色指标预测其含量。九蒸九制黄精提取物质量浓度为3.0 mg/mL时对DPPH、ABTS+的清除率分别为80.22%、96.67%;质量浓度为10 mg/mL时对α-葡萄糖苷酶抑制率为63.29%;质量浓度在50~400 μg/mL范围内对巨噬细胞无细胞害性,并且可促进巨噬细胞增殖及增强吞噬能力,生理活性能力最强。综上所述,黄精在炮制过程中,主要成分含量、性状与生理活性变化具有一定的规律性,为揭示九蒸九制黄精这一炮制方法的机理和质量评价提供了参考。

     

    Abstract: This study investigated the changes in major chemical components, physical properties, and physiological activities of Polygonatum sibiricum during nine-steam-nine-bake (a traditional Chinese medicine processing technique). First, the colorimetric method, texture analyzer, colorimeter, and moisture analyzer were utilized to quantify the contents of major components and characterize the variations in physical properties of Polygonatum sibiricum throughout the processing. Two analytical approaches were applied to elucidate the overall variation trends. Second, the antioxidant capacity, α-glucosidase inhibitory rate, and effects on macrophage viability and phagocytic capacity of Polygonatum sibiricum at different processing stages were determined to comprehensively evaluate the alterations in functional activities during the steaming and baking process.The results demonstrated that the total sugar content decreased to 32.48 mg/g during processing, while the contents of polyphenols, flavonoids, anthraquinones, and melanoidins increased to 10.28, 14.68, 10.90, and 17.39 times those of the raw sample, respectively. The color parameter E*ab declined from 62.21 to 40.34, corresponding to a color transition from yellowish-white to dark brown. The texture became softer without structural disruption. Overall, the nine-steam-nine-bake process could be divided into three stages: Initial stage (raw P. sibiricum and one cycle of steaming and baking), middle stage (two to four cycles of steaming and baking), and final stage (five to nine cycles of steaming and baking). The contents of total sugar, total phenols, flavonoids, anthraquinone compounds, and melanoidins in Polygonatum sibiricum were significantly correlated with its color, thus the contents of these components could be predicted by color indicators. At a concentration of 3.0 mg/mL, the extract of Polygonatum sibiricum processed by nine-steam-nine-bake exhibited scavenging rates of 80.22% and 96.67% for DPPH and ABTS+ free radicals, respectively. At 10 mg/mL, it showed an α-glucosidase inhibitory rate of 63.29%. Within the concentration range of 50~400 μg/mL, the extract was non-cytotoxic toward macrophages, while also promoting macrophage proliferation and enhancing phagocytic capacity, thereby demonstrating the strongest physiological activity. In conclusion, the changes in major component contents, physical properties, and physiological activities of Polygonatum sibiricum during nine-steam-nine-bake follow distinct regularity. This study provides a scientific reference for deciphering the mechanism of the nine-steam-nine-bake technique and developing quality assessment criteria for processed Polygonatum sibiricum.

     

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