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采用酶/超声预处理三相分配法从培养桑黄菌孢子中提取多糖:理化特性及其体外生物活性。

Polysaccharide extracted from cultivated Sanghuangporous vaninii spores using three-phase partitioning with enzyme/ultrasound pretreatment: Physicochemical characteristics and its biological activity in vitro.

机构信息

Institute of Edible Fungi, Shanghai Academy of Agricultural Sciences, National Engineering Research Center of Edible Fungi, Key Laboratory of Edible Fungi Resources and Utilization (South), Ministry of Agriculture, Shanghai 201403, China.

Department of Pharmaceutical Botany, School of Pharmacy, Naval Medical University, Shanghai 200433, China.

出版信息

Int J Biol Macromol. 2023 Dec 31;253(Pt 1):126622. doi: 10.1016/j.ijbiomac.2023.126622. Epub 2023 Aug 30.

DOI:10.1016/j.ijbiomac.2023.126622
PMID:37657579
Abstract

Sanghuangporous vaninii, as a valuable dietary supplement and medicinal ingredient, contains abundant bioactive polysaccharides that have health-promoting effects. In the present study, four polysaccharides (SVSPs-C, SVSPs-E, SVSPs-U, and SVSPs-E/U) were extracted for the first time from S. vaninii spores by three-phase partitioning (TPP), enzyme pretreatment before TPP (E-TPP), ultrasonic pretreatment before TPP (U-TPP), and enzyme pretreatment followed by ultrasonic before TPP (E/U-TPP) methods, respectively. Their physicochemical characteristics and in vitro pharmacological functions were determined and compared. Results showed that four TPP-based extraction methods had remarkable impacts on the extraction yield, chemical properties, monosaccharide compositions, and molecular weights (M) of SVSPs. Specifically, SVSPs-E/U obtained by E/U-TPP showed the highest extraction yield (25.40 %), carbohydrate content (88.50 %), and the lowest protein content (0.86 %). The four SVSPs had high-M (183.8-329.1 kDa) and low-M (23.0-156.4 kDa) fractions and mainly consisted of galactose, glucose, and mannose with different contents. In vitro bioactivities assays indicated that SVSPs-E/U possessed stronger antioxidant, hypoglycemic, hypouricemic, immunostimulatory, and antitumor activities than those of SVSPs-C, SVSPs-E, and SVSPs-U. Therefore, our results provide an efficient and promising extraction technique for bioactive polysaccharides from S. vaninii spores, as well as SVSPs had the potential to be applied in functional food, pharmaceutical, and cosmetics fields.

摘要

桑黄多孔菌,作为一种有价值的膳食补充剂和药用成分,含有丰富的具有促进健康作用的生物活性多糖。在本研究中,首次通过三相分配(TPP)、TPP 前酶预处理(E-TPP)、TPP 前超声预处理(U-TPP)和酶预处理后超声预处理(E/U-TPP)从桑黄孢子中提取了四种多糖(SVSPs-C、SVSPs-E、SVSPs-U 和 SVSPs-E/U),分别。测定并比较了它们的理化特性和体外药理功能。结果表明,四种 TPP 提取方法对 SVSPs 的提取率、化学性质、单糖组成和分子量(M)有显著影响。具体来说,通过 E/U-TPP 获得的 SVSPs-E/U 表现出最高的提取率(25.40%)、碳水化合物含量(88.50%)和最低的蛋白质含量(0.86%)。四种 SVSPs 均具有高分子量(183.8-329.1 kDa)和低分子量(23.0-156.4 kDa)级分,主要由不同含量的半乳糖、葡萄糖和甘露糖组成。体外生物活性测定表明,SVSPs-E/U 具有比 SVSPs-C、SVSPs-E 和 SVSPs-U 更强的抗氧化、降血糖、降尿酸、免疫刺激和抗肿瘤活性。因此,我们的结果为桑黄孢子中生物活性多糖的高效、有前景的提取技术提供了依据,并且 SVSPs 有可能应用于功能性食品、制药和化妆品领域。

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