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中国精品科技期刊2020
袁明亚,李玉娟,胡诏刈,等. 灵芝多糖不同提取工艺优化及其双向免疫调节活性评价J. 食品工业科技,2026,47(18):1−11. doi: 10.13386/j.issn1002-0306.2025080147.
引用本文: 袁明亚,李玉娟,胡诏刈,等. 灵芝多糖不同提取工艺优化及其双向免疫调节活性评价J. 食品工业科技,2026,47(18):1−11. doi: 10.13386/j.issn1002-0306.2025080147.
YUAN Mingya, LI Yujuan, HU Zhaoyi, et al. Optimization of Different Extraction Processes for Ganoderma lucidum Polysaccharides and Evaluation of Their Bidirectional Immunomodulatory ActivitiesJ. Science and Technology of Food Industry, 2026, 47(18): 1−11. (in Chinese with English abstract). doi: 10.13386/j.issn1002-0306.2025080147.
Citation: YUAN Mingya, LI Yujuan, HU Zhaoyi, et al. Optimization of Different Extraction Processes for Ganoderma lucidum Polysaccharides and Evaluation of Their Bidirectional Immunomodulatory ActivitiesJ. Science and Technology of Food Industry, 2026, 47(18): 1−11. (in Chinese with English abstract). doi: 10.13386/j.issn1002-0306.2025080147.

灵芝多糖不同提取工艺优化及其双向免疫调节活性评价

Optimization of Different Extraction Processes for Ganoderma lucidum Polysaccharides and Evaluation of Their Bidirectional Immunomodulatory Activities

  • 摘要: 目的:优化超声辅助高压水提取法(UHPE)、超声辅助热水浸提法(UHWE)及超声辅助酶解法(UEH)提取灵芝多糖的工艺,并考察最佳工艺制备的多糖的双向免疫调节活性。方法:采用单因素实验与响应面试验对UHPE、UHWE及UEH提取灵芝多糖的工艺进行优化,考察料液比、超声时间、提取温度、提取时间、酶浓度及酶解温度对多糖得率的影响,并以最佳提取工艺分别制备UHPE-GLP、UHWE-GLP和UEH-GLP。基于RAW264.7巨噬细胞,研究UHPE-GLP、UHWE-GLP和UEH-GLP的免疫调节活性和对脂多糖(LPS)诱导的炎症模型的抗炎活性。结果:UEH-GLP优化的提取工艺为料液比1:31 g/mL、超声时间24 min、酶浓度5%、酶解温度53 ℃,在此条件下GLP得率达到三种工艺中最高,为10.92%±0.05%。细胞实验结果表明,UHPE-GLP、UHWE-GLP和UEH-GLP不仅通过促进RAW264.7巨噬细胞增殖、肿瘤坏死因子-α(Tumor necrosis factor-α,TNF-α)、白细胞介素-6(Interleukin-6,IL-6)和一氧化氮(Nitric oxide,NO)分泌来发挥增强免疫功能的作用,还通过减少TNF-α和NO的分泌量进而抑制巨噬细胞的过度激活来发挥抑制免疫功能的作用,进而表现出良好的双向免疫调节活性。其中,UEH-GLP双向免疫调节活性最为显著。结论:UEH-GLP在得率及双向免疫调节活性方面均具有显著优势。本研究为灵芝多糖的开发和利用提供了理论依据。

     

    Abstract: Objective: To optimize ultrasonic assisted high-pressure water extraction method (UHPE), ultrasonic assisted hot water extraction method (UHWE), and ultrasound assisted enzymatic hydrolysis method (UEH) for polysaccharide extraction from Ganoderma lucidum and examine the bidirectional immunomodulatory activities of polysaccharides extracted using these optimized methods. Methods: Optimization of UHPE, UHWE, and UEH were performed using single factor and response surface experiments, examining the effects of material-liquid ratio, ultrasound time, extraction temperature, extraction time, enzyme concentration, and enzymatic hydrolysis temperature on the polysaccharide yield. UHPE-GLP, UHWE-GLP, and UEH-GLP were prepared separately under the optimal extraction conditions. Based on RAW264.7 macrophages, UHPE-GLP, UHWE-GLP, and UEH-GLP were subjected to investigate the immunomodulatory activities, and their anti-inflammatory activities against lipopolysaccharide (LPS)-induced inflammatory models. Results: The experimental results of process optimization showed that the optimal extraction process of UEH-GLP was as follow: Material-liquid ratio of 1:31 g/mL, ultrasound time of 24 min, enzyme concentration of 5% and enzymatic hydrolysis temperature of 53 ℃. Under these conditions, the GLP yield reached the highest among the three processes, at 10.92%±0.05%. The results of cell experiments showed that, UHPE-GLP, UHWE-GLP, and UEH-GLP could not only enhance immune function of RAW264.7 macrophages by promoting the proliferation, and secretion of tumor necrosis factor-α (TNF-α), interleukin-6 (IL-6), and nitric oxide (NO), but also inhibit immune function by reducing the secretion of TNF-α and NO to suppress the excessive activation of macrophages. These results indicated that UHPE-GLP, UHWE-GLP, and UEH-GLP exhibited excellent bidirectional immunomodulatory activities, among which UEH-GLP showed the most prominent bidirectional immunomodulatory activities. Conclusion: UEH-GLP has significant advantages in yield and bidirectional immunomodulatory activities. This study provides a theoretical basis for the development and utilization of GLP.

     

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