浙江农业学报 ›› 2024, Vol. 36 ›› Issue (9): 2099-2109.DOI: 10.3969/j.issn.1004-1524.20231114
张妮1(), 陶文扬2, 罗梦帆2, 周万怡2, 郑晓杰3, 李彦坡3, 金火喜1,*(
), 杨颖2,*(
)
收稿日期:
2023-09-21
出版日期:
2024-09-25
发布日期:
2024-09-30
作者简介:
杨颖,E-mail:ying_yang4535F@sina.com通讯作者:
金火喜,E-mail: 基金资助:
ZHANG Ni1(), TAO Wenyang2, LUO Mengfan2, ZHOU Wanyi2, ZHENG Xiaojie3, LI Yanpo3, JIN Huoxi1,*(
), YANG Ying2,*(
)
Received:
2023-09-21
Online:
2024-09-25
Published:
2024-09-30
摘要:
酶解或许会改变多糖分子内某些基团的数量或结构,从而改变其性能。为明确酶解对铁皮石斛多糖结构与功能的影响,本研究选择同一品种石斛鲜茎为原料,分别用中性蛋白酶、麦芽糖淀粉酶、纤维素酶辅助提取,获得同一基质多糖的不同结构形式,分析其结构区别,并利用体外模拟发酵系统研究铁皮石斛多糖菌群调节功能的变化。结果表明,与未酶解样品相比,中性蛋白酶辅助提取可以增加多糖的聚合度,而纤维素酶、麦芽糖淀粉酶介入则可以显著降低多糖聚合度并改变单糖组成;中性蛋白酶组的CH4与H2S生成量显著增加,纤维素酶组的丁酸与戊酸产量显著增加。多糖能改善肠道菌群的组成,其中纤维素酶组改变程度较大,双歧杆菌属、乳杆菌属、粪杆菌属、罗氏菌属等肠道基石菌与有益菌的种类与相对丰度显著增加,戴阿利斯特杆菌属、多尔氏菌属等条件致病菌的丰度显著下降,与丁酸、戊酸显著正相关的9个菌属在该组富集了8个(巨球型菌属、链球菌属、双歧杆菌属、欧陆森氏菌属、罗氏菌属、魏斯氏菌属、乳杆菌属、普拉梭菌属)。酶辅助提取可以改变石斛多糖的结构,并改变其菌群调节功能,该研究为不同功效多糖的定向生产提供了参考。
中图分类号:
张妮, 陶文扬, 罗梦帆, 周万怡, 郑晓杰, 李彦坡, 金火喜, 杨颖. 酶解辅助提取对铁皮石斛多糖结构和菌群调节功能的影响[J]. 浙江农业学报, 2024, 36(9): 2099-2109.
ZHANG Ni, TAO Wenyang, LUO Mengfan, ZHOU Wanyi, ZHENG Xiaojie, LI Yanpo, JIN Huoxi, YANG Ying. Effects of enzyme-assisted extraction on composition and gut microbiota regulation function of Dendrobium officinale polysaccharide[J]. Acta Agriculturae Zhejiangensis, 2024, 36(9): 2099-2109.
提取方式 Extraction mode | 峰值分子量Peak molecular weight | |
---|---|---|
组分1 Component 1 | 组分2 Component 2 | |
未酶解No enzymolysis | 568 547 | 2 028 |
中性蛋白酶Neutral protease | 892 441 | 2 228 |
麦芽糖淀粉酶Maltose amylase | 248 758 | 1 745 |
纤维素酶Cellulase | 22 044 | 1 356 |
表1 提取方式对石斛多糖峰值分子量的影响
Table 1 Effect of extraction method on peak molecular weight of Dendrobium officinale polysaccharides u
提取方式 Extraction mode | 峰值分子量Peak molecular weight | |
---|---|---|
组分1 Component 1 | 组分2 Component 2 | |
未酶解No enzymolysis | 568 547 | 2 028 |
中性蛋白酶Neutral protease | 892 441 | 2 228 |
麦芽糖淀粉酶Maltose amylase | 248 758 | 1 745 |
纤维素酶Cellulase | 22 044 | 1 356 |
提取方式 Extraction mode | 摩尔比Molar ratio | |||
---|---|---|---|---|
阿拉伯糖Arabinose | 半乳糖Galactose | 葡萄糖Glucose | 甘露糖Mannose | |
未酶解No enzymolysis | 0.003 | 0.005 | 1 | 1.83 |
中性蛋白酶Neutral protease | 0.001 | 0.002 | 1 | 1.65 |
麦芽糖淀粉酶Maltose amylase | 0 | 0 | 1 | 1.67 |
纤维素酶Cellulase | 0.001 | 0.002 | 1 | 0.84 |
表2 提取方式对铁皮石斛单糖组成的影响
Table 2 Effect of extraction method on monosaccharide composition from Dendrobium officinale
提取方式 Extraction mode | 摩尔比Molar ratio | |||
---|---|---|---|---|
阿拉伯糖Arabinose | 半乳糖Galactose | 葡萄糖Glucose | 甘露糖Mannose | |
未酶解No enzymolysis | 0.003 | 0.005 | 1 | 1.83 |
中性蛋白酶Neutral protease | 0.001 | 0.002 | 1 | 1.65 |
麦芽糖淀粉酶Maltose amylase | 0 | 0 | 1 | 1.67 |
纤维素酶Cellulase | 0.001 | 0.002 | 1 | 0.84 |
图1 铁皮石斛多糖对肠道微生物发酵气体的影响 Bc,空白对照组;Nc,未酶解对照组;Mal,麦芽糖淀粉酶组;Cel,纤维素酶组;Neu,中性蛋白酶组。散点图上无相同小写字母的表示各处理间差异显著(P<0.05)。下同。
Fig.1 Effect of Dendrobium officinale polysaccharides on intestinal microbial fermentation gas Bc, Blank control; Nc, No enzymolysis control; Mal, Maltose amylase group; Cel, Cellulase group; Neu, Neutral protease group. A scatterplot without the same lowercase letter indicates significant differences between treatments (P<0.05). The same as below.
图4 铁皮石斛多糖对肠道菌群β多样性的影响 A,主坐标(PCoA)分析;B,非度量多维尺度(NMDS)分析。
Fig.4 Effect of polysaccharides from Dendrobium officinale on β diversity of intestinal flora A, Principal co-ordinates analysis; B, Non-metric multi-dimensional scaling.
图5 铁皮石斛多糖对肠道菌群群落组成的影响 A,门水平组成差异;B,属水平热图。
Fig.5 Effect of polysaccharides from Dendrobium officinale on intestinal flora community composition A, Composition difference at phylum level; B, Multi-group comparison difference at genus level.
图6 铁皮石斛多糖对肠道菌群物种组成差异与相关性的影响 A,空白对照、未酶解对照与麦芽糖淀粉酶组间显著差异LDA值分布柱状图;B,空白对照、未酶解对照与纤维素酶组间显著差异LDA值分布柱状图;C,空白对照、未酶解对照与中性蛋白酶组间显著差异LDA值分布柱状图;D,属水平肠道菌群间相关性分析图,*表示0.01<P≤0.05,**表示0.001<P≤0.01,***表示P≤0.001。
Fig.6 Effect of polysaccharides from Dendrobium officinale on on species composition difference and correlation of intestinal flora A, Histogram of distribution of significantly different LDA values among blank control, no enzymolysis control and maltose amylase groups; B, Histogram of distribution of significantly different LDA values among blank control, no enzymolysis control and cellulase groups; C, Histogram of distribution of significantly different LDA values among blank control, no enzymolysis control and neutral protease groups; D, Correlation analysis diagram of intestinal flora at genus level, * represented 0.01<P≤0.05, ** represented 0.001<P≤0.01, *** represented P≤0.001.
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