食品科学 ›› 2026, Vol. 47 ›› Issue (16): 183-200.doi: 10.7506/spkx1002-6630-20260131-295

• 营养卫生 • 上一篇    下一篇

基于网络药理学与16S rRNA技术探究二十八烷醇抗疲劳作用及肠道微生态调控机制

邹畅,万茜,张兴静,刘权康,褚忠兴,曹福亮,林亲录,周亚萍,罗非君   

  1. (1.中南林业科技大学食品科学与工程学院,湖南?长沙 410004;2.南京林业大学林草学院、水土保持学院,南方现代林业协同创新中心,江苏?南京 210037;3.山东海之宝海洋科技有限公司,山东?威海 264300)
  • 出版日期:2026-08-25 发布日期:2026-09-03
  • 基金资助:
    中南林业科技大学木本油料资源利用全国重点实验室自主研究项目(SKL-CSUFT202526); 2025年度湖南省教育厅科学研究-优秀青年项目(25B0319); 湖南省2025年度芙蓉计划青年人才-青年托举类项目(2025QT-40); 山东泰山产业领军人才项目(tscx202408168);中南林业科技大学人才引进科研启动项目(2024YJ006)

Exploring the Anti-Fatigue Effect and Intestinal Microbiota Regulatory Mechanism of Octacosanol Based on Network Pharmacology and 16S rRNA Sequencing

ZOU Chang, WAN Qian, ZHANG Xingjing, LIU Quankang, CHU Zhongxing, CAO Fuliang, LIN Qinlu, ZHOU Yaping, LUO Feijun   

  1. (1. School of Food Science and Engineering, Central South University of Forestry and Technology, Changsha 410004, China; 2. Co-innovation Center for Sustainable Forestry in Southern China, College of Forestry and Grassland, College of Soil and Water Conservation, Nanjing Forestry University, Nanjing 210037, China; 3. Shandong Haizhibao Marine Technology Co. Ltd., Weihai 264300, China)
  • Online:2026-08-25 Published:2026-09-03

摘要: 本研究以二十八烷醇(octacosanol,OCT)作为原料,通过行为学指标与生化指标评价其对运动疲劳模型小鼠的缓解效果。结果表明,OCT可显著提高模型小鼠的体质量增长率、前肢抓力、游泳力竭时间、总运动距离及活动次数,同时显著降低血乳酸、乳酸脱氢酶与丙二醛水平,并提升超氧化物歧化酶与谷胱甘肽过氧化物酶水平。借助网络药理学方法,筛选出327 个OCT抗疲劳的潜在作用靶点,进一步分析得到248 个潜在靶蛋白。基因本体论和京都基因和基因组百科全书通路富集分析分别获得329 条生物过程、29 条细胞组分和67 条分子功能。通过网络拓扑分析,共鉴定出19 个核心靶点。分子对接结果表明OCT与抗疲劳核心靶蛋白(表皮生长因子受体、一氧化氮合酶3、蛋白激酶Cα以及v-rel网状内皮病病毒癌基因同源物A)的结合效果最佳。此外,基于16S rRNA测序的分析表明,OCT可在门、科、属和操作分类单元水平对肠道菌群产生有益调节作用,其中乳杆菌属(Lactobacillus)、另枝菌属(Alloprevotella)和拟杆菌属(Bacteroides)等的相对丰度显著增加。综上,OCT可能通过多靶点抗疲劳作用重塑肠道微生物生态系统发挥其抗疲劳功能。

关键词: 二十八烷醇;抗疲劳;网络药理学;肠道菌群

Abstract: In this study, octacosanol (OCT) was evaluated for its ameliorative effect on exercise-induced fatigue in mice via behavioral and biochemical indices. The results showed that OCT significantly increased the rate of body mass gain, forelimb grip strength, exhaustive swimming time, total moving distance, and activity frequency in fatigued mice. Meanwhile, it markedly decreased the levels of blood lactic acid (BLA), lactate dehydrogenase (LDH) and malondialdehyde (MDA), and elevated the activities of superoxide dismutase (SOD) and glutathione peroxidase (GSH-Px). Using network pharmacology, 327 potential anti-fatigue targets of OCT were identified, with 248 potential target proteins obtained from further analysis. Gene Ontology (GO) functional enrichment analysis identified 329 biological processes, 29 cellular components, and 67 molecular functions. Through network topological analysis, a total of 19 core targets were identified. Molecular docking results revealed that OCT had the highest binding affinity for the core anti-fatigue target proteins epidermal growth factor receptor (EGFR), nitric oxide synthase 3 (NOS3), protein kinase C alpha (PRKCA), and v-rel reticuloendotheliosis viral oncogene homolog A (RELA). Additionally, 16S rRNA sequencing analysis demonstrated that OCT had beneficial regulatory effects on the gut microbiota at the phylum, family, genus, and operational taxonomic units (OTUs) levels, significantly increasing the relative abundance of Lactobacillus, Alloprevotella, and Bacteroides. In conclusion, OCT may exert its anti-fatigue function by reshaping the gut microecosystem through a multi-target mechanism.

Key words: octacosanol; anti-fatigue; network pharmacology; gut microbiota

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