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1.贵州中医药大学药学院,贵阳 550025
2.广州医科大学附属中医医院制剂科,广州 510140
3.深圳市第二人民医院老年医学研究所,广东 深圳 518035
硕士研究生。研究方向:中药药效物质基础及中药新制剂研发。E-mail:2109650462@qq.com
教授,博士生导师,博士。研究方向:中药与民族药药效物质基础。E-mail:hekang0851@163.com
收稿日期:2024-11-22,
修回日期:2025-04-12,
录用日期:2025-04-23,
纸质出版日期:2025-06-30
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徐丹丹,曾永长,梁少瑜,等.开心散改善阿尔茨海默病神经炎症的机制预测与验证 [J].中国药房,2025,36(12):1476-1482.
XU Dandan,ZENG Yongchang,LIANG Shaoyu,et al.Mechanism prediction and validation of Kaixinsan in ameliorating neuroinflammation in Alzheimer’s disease[J].ZHONGGUO YAOFANG,2025,36(12):1476-1482.
徐丹丹,曾永长,梁少瑜,等.开心散改善阿尔茨海默病神经炎症的机制预测与验证 [J].中国药房,2025,36(12):1476-1482. DOI: 10.6039/j.issn.1001-0408.2025.12.10.
XU Dandan,ZENG Yongchang,LIANG Shaoyu,et al.Mechanism prediction and validation of Kaixinsan in ameliorating neuroinflammation in Alzheimer’s disease[J].ZHONGGUO YAOFANG,2025,36(12):1476-1482. DOI: 10.6039/j.issn.1001-0408.2025.12.10.
目的
2
预测并验证开心散(简称“KXS”)改善阿尔茨海默病(AD)神经炎症的潜在机制。
方法
2
采用网络药理学方法,挖掘KXS用于AD的核心抗炎成分及核心炎症靶点,进行基因本体(GO)功能、京都基因和基因组数据库(KEGG)通路富集分析,并进行分子对接。基于网络药理学结果,以雄性SD大鼠为对象,以D-半乳糖慢性诱导建立AD模型,考察KXS对AD大鼠体征量化评分、学习记忆能力指标(逃避潜伏期、穿越平台次数、平台象限路程及时间)、脏器(心脏、肝脏、脾脏、胸腺)指数、海马组织病理改变以及炎症相关通路及上下游蛋白表达的影响。
结果
2
KXS用于AD的核心抗炎成分包括五味子酯乙、人参炔三醇、五味子酯甲、enhydrin、vulgarin、人参环氧炔醇,核心炎症靶点包括核因子κB亚基1、核因子κB p65(NF-κB p65)、白细胞介素1β(IL-1β)、IL-6、Toll受体4(TLR4)、肿瘤坏死因子、核苷酸结合结构域富含亮氨酸重复序列和含热蛋白结构域受体3(NLRP3)、胱天蛋白酶1(CASP1);GO、KEGG富集结果涉及炎症反应、磷酸化途径及NF-κB炎症通路;核心抗炎成分与核心炎症靶点之间具有较强的结合能力。动物实验显示,与模型组比较,KXS组大鼠海马组织CA1、CA3、DG区神经元皱缩、尼氏体减少等病理改变均有改善,脏器指数(肝脏指数除外)、尼氏染色阳性细胞数均显著升高或增多,学习记忆能力指标均显著改善,体征量化评分(实验第8、12周)和NF-κB p65、磷酸化NF-κB p65、TLR4、NLRP3、CASP1、IL-1β蛋白的表达均显著降低或下调。
结论
2
KXS能有效改善AD大鼠神经炎症,减轻海马神经元损伤,提高学习记忆能力;上述作用可能与抑制NF-κB信号通路及其上下游相关蛋白的表达有关。
OBJECTIVE
2
To predict and validate the potential mechanisms of Kaixinsan (KXS) in ameliorating neuroinflammation in Alzheimer’s disease (AD).
METHODS
2
Network pharmacology was employed to identify core anti-inflammatory components and key inflammatory targets of KXS for AD. Gene ontology (GO) functional annotation, Kyoto Encyclopedia of Genes and Genomes (KEGG) pathway enrichment, and molecular docking were performed. Based on these findings, male SD rats were used to establish an AD model via chronic D-galactose induction. The effects of KXS on AD rats were evaluated, including quantitative behavioral score, learning and memory parameters (escape latency, platform crossings, platform quadrant distance and time), organ indexes (heart, liver, spleen, thymus), histopathological alterations in the hippocampus, and expressions of inflammation-related pathway proteins and their upstream/downstream regulators.
RESULTS
2
Core anti-inflammatory components of KXS for AD included gomisin B, panaxytriol, gomisin A, enhydrin, vulgarin and panaxydol, while key inflammatory targets involved nuclear factor-kappa B subunit 1 (NFKB1), nuclear factor-κB p65 (NF-κB p65), interleukin-1β (IL-1β), IL-6, Toll-like receptor 4 (TLR4), tumor necrosis factor, nucleotide-binding domain leucine-rich repeat and pyrin domain-containing receptor 3 (NLRP3) and caspase-1 (CASP1). GO and KEGG pathway enrichment involved inflammatory response, phosphorylation and the NF-κB signaling pathway. Molecular docking confirmed strong binding affinities between core components and key targets. Animal experiments demonstrated that, compared to the model group, KXS significantly alleviated histopathological damage (e.g., neuronal shrinkage, reduced Nissl bodies in hippocampal CA1, CA3, and DG regions), increased organ indexes (except for liver index) and Nissl-stained positive cells, improved learning and memory performance, and reduced behavioral scores (at the 8 and 12 weeks of the experiment) and protein expression of NF-κB p65, phosphorylated NF-κB p65, TLR4, NLRP3, CASP1 and IL-1β.
CONCLUSIONS
2
KXS effectively mitigates neuroinflammation, reduces hippocampal neuronal injury, and enhances learning and memory ability in AD rats, potentially through suppressing the NF-κB signaling pathway and its upstream/downstream regulators.
ATRI A . The Alzheimer’s disease clinical spectrum:diagnosis and management [J ] . Med Clin North Am , 2019 , 103 ( 2 ): 263 - 293 .
单晓晓 , 周乐乐 , 李大伟 , 等 . 经典名方开心散治疗阿尔茨海默病的机制研究进展 [J ] . 中草药 , 2023 , 54 ( 11 ): 3685 - 3695 .
PAK V M , ONEN S H , BLIWISE D L , et al . Sleep disturbances in MCI and AD:neuroinflammation as a possible mediating pathway [J ] . Front Aging Neurosci , 2020 , 12 : 69 .
YANG Q Q , ZHOU J W . Neuroinflammation in the central nervous system:symphony of glial cells [J ] . Glia , 2019 , 67 ( 6 ): 1017 - 1035 .
刘欣 , 张若冰 , 李陈雪 , 等 . 中医药治疗阿尔茨海默病的研究进展 [J ] . 中国中药杂志 , 2025 , 50 ( 5 ): 1146 - 1154 .
BAI G Q , JING S W , CAO H M , et al . Kai-xin-san protects depression mice against CORT-induced neuronal injury by inhibiting microglia activation and oxidative stress [J ] . Evid Based Complement Alternat Med , 2022 , 2022 : 5845800 .
白亚利 , 崔鑫钰 , 袁悦莹 , 等 . 基于网络药理学和动物实验研究麝香通心滴丸防治糖尿病心肌病的作用机制 [J ] . 中国中药杂志 , 2024 , 49 ( 7 ): 1905 - 1914 .
蔡晴晴 , 李煜 , 黄颖 , 等 . 基于网络药理学研究心舒宝片抗炎、血管舒张和心肌保护作用机制 [J ] . 中国中药杂志 , 2024 , 49 ( 2 ): 487 - 497 .
刘文杰 , 涂玥 , 何伟明 , 等 . 大黄蛰虫丸通过PI3K/AKT/HIF-1α信号通路减轻心肌细胞凋亡而延缓心脏衰老的作用机制 [J ] . 中国中药杂志 , 2025 , 50 ( 5 ): 1276 - 1285 .
LIU J M , ZUO X , HUANG M J , et al . Multifunctional gomisin B enhances cognitive function in APP/PS1 transgenic mice by regulating Aβ clearance and neuronal apoptosis [J ] . Biomed Pharmacother , 2023 , 166 : 115423 .
HIRAMATSU G , MATSUDA K , UTA D , et al . Panaxytriol inhibits lipopolysaccharide-induced microglia activation in brain inflammation in vivo [J ] . Biol Pharm Bull , 2021 , 44 ( 7 ): 1024 - 1028 .
ZHANG Z Y , YANG W K , CHEN J J , et al . Efficacy and mechanism of Schisandra chinensis active component gomisin A on diabetic skin wound healing:network pharmacology and in vivo experimental validation [J ] . J Ethnopharmacol , 2025 , 337 ( Pt 1 ): 118828 .
CHEN J H , HU J P , LI X Q , et al . Enhydrin suppresses the malignant phenotype of GBM via Jun/Smad7/TGF-β 1 signaling pathway [J ] . Biochem Pharmacol , 2024 , 226 : 116380 .
ELGAMAL R A , GALALA A A , ABDEL-KADER M S , et al . Microbial transformation of the sesquiterpene lactone,vulgarin,by Aspergillus niger [J ] . Molecules , 2023 , 28 ( 9 ): 3729 .
KIM M Y , JEONG B , LEE G S , et al . Panaxydol extracted from Panax ginseng inhibits NLRP3 inflammasome activation to ameliorate NASH-induced liver injury [J ] . Int Immunopharmacol , 2024 , 128 : 111565 .
王慧 , 闫晓培 , 徐莉 . 苦豆碱通过抑制TLR4/NF-κB/NLRP3通路改善香烟烟雾诱导的人支气管上皮细胞损伤 [J ] . 细胞与分子免疫学杂志 , 2024 , 40 ( 5 ): 411 - 418 .
GAILLARD T . Evaluation of AutoDock and AutoDock vina on the CASF-2013 benchmark [J ] . J Chem Inf Model , 2018 , 58 ( 8 ): 1697 - 1706 .
LIU J J , WEI F , WANG Y D , et al . Ginseng and Polygonum multiflorum formula protects brain function in Alzheimer’s disease [J ] . Front Pharmacol , 2025 , 16 : 1461177 .
王曦 , 龙清华 , 蔡元钦 , 等 . 基于PERK-eIF2α-NF-κB信号通路研究苁蓉散治疗阿尔茨海默病的作用机制 [J ] . 中国药理学通报 , 2025 , 41 ( 1 ): 80 - 87 .
李丹阳 , 艾民 , 周派 , 等 . 肾虚证阿尔兹海默病病证结合小鼠模型的构建及评价 [J/OL ] . 中药药理与临床 , 2024 : 1 - 21 [ 2024-10-24 ] . https://link.cnki.net/doi/10.13412/j.cnki.zyyl.20241024.003 https://link.cnki.net/doi/10.13412/j.cnki.zyyl.20241024.003 .
刘传芬 , 宋征宇 , 张晓丽 , 等 . 番茄红素调节JAK2/STAT3/VEGF信号通路对脑小血管病大鼠血脑屏障和神经损伤的影响 [J ] . 中国免疫学杂志 , 2024 , 40 ( 11 ): 2343 - 2349 .
WANG H J , ZHOU L F , ZHENG Q , et al . Kai-Xin-San improves cognitive impairment in D-gal and Aβ 25-35 induced ad rats by regulating gut microbiota and reducing neuronal damage [J ] . J Ethnopharmacol , 2024 , 329 : 118161 .
WANG Z L , FANG C C , YAO M T , et al . Research pro-gress of NF-κB signaling pathway and thrombosis [J ] . Front Immunol , 2023 , 14 : 1257988 .
HE J J , WU T Q , YAN S R , et al . S100A4 promotes experimental autoimmune encephalomyelitis by impacting microglial inflammation through TLR4/NF-κB signaling pathway [J ] . Int Immunopharmacol , 2024 , 142 ( Pt A ): 112849 .
ZHANG Z Y , LIU D , LV R , et al . FBL promotes LPS-induced neuroinflammation by activating the NF-κB signaling pathway [J ] . J Inflamm Res , 2024 , 17 : 2217 - 2231 .
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