生物技术通报 ›› 2026, Vol. 42 ›› Issue (7): 328-340.doi: 10.13560/j.cnki.biotech.bull.1985.2025-1456
• 研究报告 • 上一篇
收稿日期:2025-12-31
出版日期:2026-07-26
发布日期:2026-07-20
通讯作者:
肖嫩群xiaonenqun@sohu.com基金资助:
SUN Xian-qing1, XIAO Nen-qun1(
), TAN Zhou-jin2(
)
Received:2025-12-31
Published:2026-07-26
Online:2026-07-20
摘要:
目的 探讨黄精-茯苓联用对脾虚便秘的预防效应及机制,为中医药“治未病”理论提供实验依据。 方法 将30只SPF级昆明(KM)小鼠随机分为正常组、模型组、黄精茯苓组(1∶3)。采用预防性给药方式,黄精茯苓组每日灌胃药液(1.95 g/(kg·d),2次/d),持续29 d;模型组和正常组给予等体积无菌水。造模阶段(持续15 d),模型组和黄精茯苓组通过番泻叶灌胃、限制饮水及喂食低纤维饲料建立脾虚便秘模型。实验结束后,检测粪便含水率、血清胃肠动力激素(MTL、CCK、5-HT、VIP)含量、结肠病理变化、肝脏丙二醛(MDA)含量和超氧化物歧化酶(SOD)活性,以及肠道菌群结构和功能。 结果 黄精茯苓组粪便含水率高于模型组;血清5-HT含量高于模型组(P=0.05),VIP含量显著低于模型组(P=0.013),MTL含量极显著高于模型组(P<0.001),CCK含量显著高于模型组(P=0.018);肝脏MDA含量显著低于模型组(P=0.030),SOD活性极显著高于模型组(P<0.01);结肠黏膜结构完整,杯状细胞数量多于模型组;肠道菌群多样性趋近正常组,Actinobacteriota(P<0.001)、Bifidobacterium等有益菌丰度显著高于模型组,Proteobacteria、Escherichia_Shigella等有害菌丰度显著低于模型组(P=0.040、P=0.037);肠道菌群功能预测显示,氨基酸代谢、能量代谢等通路丰度恢复,环境应激适应相关通路异常激活被抑制。 结论 黄精茯苓(1∶3)联用预防性干预可改善脾虚便秘小鼠的一般状态和粪便性状,增强胃肠动力,减轻氧化应激损伤,保护结肠黏膜结构,并调节肠道菌群失衡,提示其对脾虚便秘具有一定预防作用。
孙贤庆, 肖嫩群, 谭周进. 黄精茯苓联用预防脾虚便秘的肠道微生态机理研究[J]. 生物技术通报, 2026, 42(7): 328-340.
SUN Xian-qing, XIAO Nen-qun, TAN Zhou-jin. A Study on the Gut Microbiome Mechanism of the Combination of Polygonatum sibiricum and Poria cocos for Prevention of Constipation due to ‘Pi’ Deficiency[J]. Biotechnology Bulletin, 2026, 42(7): 328-340.
图1 黄精茯苓联用对小鼠一般体征、粪便特征及含水率的影响A-C:造模后小鼠粪便性状及活动状态;D-F:小鼠不同时间点的体重;G:造模后小鼠粪便含水率。NC:正常组;MD:模型组;HFC:黄精茯苓组,下同
Fig. 1 Effects of Polygonatum sibiricum and Poria cocos combination on general signs, fecal characteristics, and water content in miceA-C: Fecal characteristics and general activity status of mice after modeling; D-F: body weight of mice at different time points; G: fecal water content of mice after modeling. NC: Normal control group; MD: model group; HFC: Polygonatum sibiricum and Poria cocos group. The same below
图2 黄精茯苓联用对小鼠血清中5-HT、VIP、MTL、CCK含量的影响
Fig. 2 Effect of Polygonatum sibiricum and Poria cocos combination on serum levels of 5-HT, VIP, MTL, and CCK in mice
图3 黄精茯苓联用对小鼠肝脏组织中MDA含量、SOD活性的影响
Fig. 3 Effects of Polygonatum sibiricum and Poria cocos combination on MDA content and SOD activity in mouse liver tissue
图4 黄精茯苓联用对小鼠肠道组织形态及功能的影响A:各组小鼠肠道病理结构特征;B:小鼠结肠隐窝长度;C:小鼠结肠杯状细胞数量
Fig. 4 Effects of Polygonatum sibiricum and Poria cocos combination on the morphology and function of mouse intestinal tissueA: Histopathological features of the intestine in mice from each group; B: crypt length in the colon of mice; C: number of goblet cells in the colon of mice
图5 黄精茯苓联用对小鼠肠道菌群组成的影响A:NMDS分析;B:PCoA分析;C:三元相图;D:门水平物种丰度柱形图;E:属水平物种进化树;F:Campylobacterota、Proteobacteria、Bacteroidota、Actinobacteriota、Escherichia_Shigella各组间相对丰度比较
Fig. 5 Effects of Polygonatum sibiricum and Poria cocos combination on the gut microbiota composition of miceA: NMDS analysis; B: PCoA analysis; C: Ternary plot; D: bar plot of species abundance at the phylum level; E: phylogenetic tree at the genus level; F: comparison of the relative abundances of Campylobacterota, Proteobacteria, Bacteroidota, Actinobacteriota, and Escherichia_Shigella among groups
图6 黄精茯苓联用对小鼠肠道特征菌群的影响A:正常组与模型组特征菌群比较分析;B:正常组与黄精茯苓组特征菌群比较分析;C:模型组与黄精茯苓组特征菌群比较分析;D:三组特征菌群比较分析;E:LEfSe进化分支图
Fig. 6 Effects of Polygonatum sibiricum and Poria cocos combination on gut microbial communities in miceA: Comparative analysis of differential bacterial taxa between the normal control group and the model group; B: comparative analysis of differential bacterial taxa between the normal control group and the Polygonatum sibiricum and Poria cocos group; C: comparative analysis of differential bacterial taxa between the model group and the Polygonatum sibiricum and Poria cocos group; D: comparative analysis of differential bacterial taxa among the three groups; E: LEfSe cladogram
图7 黄精茯苓联用对小鼠肠道菌群功能的影响A:PICRUSt2 pathways;B:KEGG level-1;C:KEGG level-2;D:KEGG level-3
Fig. 7 Effects of Polygonatum sibiricum and Poria cocos combination on gut microbiota function in mice
图8 小鼠肠道菌群与脾虚便秘相关因子的相互关系A:门水平相关因子热图;B:属水平相关因子热图;C:CCA Plot图
Fig. 8 Correlation between mouse gut microbiota and constipation due to 'pi' deficiencyA: Heatmap of correlation factors at the phylum level; B: heatmap of correlation factors at the genus level; C: CCA plot
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