Chinese Journal of Tissue Engineering Research ›› 2026, Vol. 30 ›› Issue (25): 6533-6543.doi: 10.12307/2026.259
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Chen Chaoqi, Liu Fei, Song Chao, Shen Baoxin, Huang Wutao, Chen Feng, Yang Lei
Received:2025-08-06
Revised:2025-12-29
Online:2026-09-08
Published:2026-04-22
Contact:
Chen Feng, Professor, Doctoral supervisor, Ruikang Clinical Medical College, Guangxi University of Chinese Medicine, Nanning 530011, Guangxi Zhuang Autonomous Region, China
Co-corresponding author: Yang Lei, PhD candidate, Ruikang Clinical Medical College, Guangxi University of Chinese Medicine, Nanning 530011, Guangxi Zhuang Autonomous Region, China
About author:Chen Chaoqi, MS candidate, Ruikang Clinical Medical College, Guangxi University of Chinese Medicine, Nanning 530011, Guangxi Zhuang Autonomous Region, China
Supported by:CLC Number:
Chen Chaoqi, Liu Fei, Song Chao, Shen Baoxin, Huang Wutao, Chen Feng, Yang Lei. Yanggan Roujin Decoction delays intervertebral disc degeneration: network pharmacological analysis and experimental validation in rat models[J]. Chinese Journal of Tissue Engineering Research, 2026, 30(25): 6533-6543.
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2.1 网络药理学分析结果 2.1.1 养肝柔筋汤活性成分、靶点数据 通过相关数据库筛选可获得山茱萸有效成分20种,茯苓有效成分15种,白芍有效成分13种,枸杞子有效成分45种,当归有效成分2种,柴胡有效成分17种,香附有效成分18种,续断有效成分8种,独活有效成分9种,杜仲有效成分28种,五加皮有效成分17种,牛膝有效成分3种,海风藤有效成分21种,去除药物的重复成分总共获得187种有效活性成分(图1)。排名前10的重复活性成分见表4,其中Beta-sitosterol(β-谷甾醇)、Sitosterol(谷固醇)、Stigmasterol(豆甾醇)、quercetin(槲皮素)、kaempferol(山柰酚)等存在于多种草药中,可能发挥主要作用。针对有效成分,在本草组鉴收集药物的作用靶点,经过筛选、删除重复靶点,最终获得养肝柔筋汤的有效作用靶点共389个。"
2.1.2 养肝柔筋汤治疗椎间盘退变作用靶点筛选及网络构建 通过疾病相关数据库检索共获得椎间盘退变的作用靶点14 318个,其中GeneCards 1 120个、DisGeNet database 10个、CTD 12 762个,去除重复后获得椎间盘退变的作用靶点13 805个(图2A)。通过维恩在线工具分析,最终获得养肝柔筋汤延缓椎间盘退变交集基因298个(图2B)。 2.1.3 养肝柔筋汤治疗椎间盘退变的蛋白互作网络构建 将298个交集基因导入String在线数据分析工具,获得养肝柔筋汤延缓椎间盘退变的网络互作蛋白图,298个基因之间一共5 049条边,平均节点33.9,平均节点聚类系数0.589(图3A)。为了进一步获取核心基因,使用Cytoscope 3.9.1,CytoHubba算法,筛选出排名前20个枢纽基因(AKT1、TP53、TNF、IL6、INS、IL1B、JUN、BCL2、CASP3、MYC、STAT3、EGFR、HIF1A、ESR1、PTGS2、MMP9、MAPK3、TGFB1、SRC、PPARG)(图3B)。最后使用Cytoscope 3.9.1构建了“养肝柔筋汤-交集基因-椎间盘退变”效应网络图(图3C)。 2.1.4 富集分析结果 将20个枢纽基因进行GO分子功能分析和KEGG通路富集分析。GO功能富集分析共确定3 046个条目,其中生物学过程相关的条目2 827个,主要涉及酶结合、蛋白质结合、磷酸酶结合、一氧化氮合酶调节活性等;分子生物功能相关的条目164个,主要涉及酶结合、蛋白结合、核受体活性、转录共激活因子结合、细胞因子活性等;细胞组分相关的条目54个,主要涉及RNA聚合酶Ⅱ转录因子复合体、核染色质、膜筏、膜微结构域等。对每个类别前5个条目进行可视化分析(图4)。KEGG数据分析共得到141条相关通路,以富集得分降序排列,获取前10位关联度最高的通路(图5),包括丝裂原活化蛋白激酶信号通路、肿瘤坏死因子信号通路、白细胞介素17信号通路、缺氧诱导因子1信号通路、细胞凋亡等。 2.2 实验验证结果 2.2.1 实验动物数量分析 此次实验共构建尾椎间盘退变模型大鼠50只,其中在模型构建麻醉过程中死亡1只;灌胃过程中操作不当,导致误吸从而引发窒息死亡2只(养肝柔筋汤中剂量组、养肝柔筋汤高剂量组各死亡1只);实验结束剩余鼠57只:空白对照组10只,模型组9只,养肝柔筋汤低剂量组10只,养肝柔筋汤中剂量组9只,养肝柔筋汤中剂量组9只,阳性对照组10只。"
2.2.2 苏木精-伊红染色和番红O-固绿染色结果 见图6。与空白对照组相比,模型组椎间盘结构破坏严重,纤维环破裂,板层结构消失,髓核与纤维环分界不清,失去正常形态,全部被纤维组织取代;模型组HHGS评分明显高于空白对照组(P < 0.01);与模型组相比,养肝柔筋汤低剂量组椎间盘结构破坏明显,纤维环排列稀疏,出现分层裂隙,板层结构完整,与髓核分界清楚,髓核细胞丢失,排列稀疏,可见大量成纤维组织;养肝柔筋汤低剂量组HHGS评分低于模型组(P < 0.05);养肝柔筋汤中剂量组椎间盘结构完整,纤维环排列紧凑,可见少量分层裂隙,板层结构完整,髓核与纤维环分界清楚,髓核细胞丢失,排列稀疏,可见少量成纤维组织,养肝柔筋汤中剂量组HHGS评分显著低于模型组(P < 0.01);养肝柔筋汤高剂量组椎间盘结构破"
坏明显,纤维环排列紧密,出现分层裂隙,板层结构完整,与髓核分界清楚,髓核细胞大量丢失,排列稀疏,可见大量成纤维组织;养肝柔筋汤高剂量组HHGS评分与模型组无明显差异(P > 0.05);阳性对照组椎间盘结构破坏严重,纤维环排列稀疏,出现分层裂隙,髓核细胞被纤维组织取代,与纤维环分界不清,板层结构完整,阳性对照组HHGS评分与模型组无明显差异(P > 0.05)。 2.2.3 Western blot检测各组核心靶点蛋白表达变化 见图7A。与空白对照组比较,模型组大鼠椎间盘组织TP53、JUN、白细胞介素6、肿瘤坏死因子α蛋白表达明显升高(P < 0.01),而蛋白激酶B、胰岛素蛋白表达明显降低(P < 0.01);与模型组相比,养肝柔筋汤干预后大鼠椎间盘组织TP53、JUN、白细胞介素6、肿瘤坏死因子α蛋白表达明显降低(P < 0.01),而蛋白激酶B、胰岛素蛋白表达升高(P < 0.05),其中养肝柔筋汤中剂量组趋势最为明显。与模型组相比,双氯芬酸钠干预后白细胞介素6、肿瘤坏死因子α蛋白表达明显降低(P < 0.01),TP53、JUN、蛋白激酶B、胰岛素蛋白表达量无明显差异(P > 0.05)。 2.2.4 RT-qPCR检测各组核心靶点mRNA转录变化 见图7B。与空白对照组比较,模型组大鼠椎间盘组织TP53、JUN、白细胞介素6、肿瘤坏死因子α mRNA表达明显升高(P < 0.01),而蛋白激酶B、胰岛素mRNA表达明显降低(P < 0.01);与模型组相比,养肝柔筋汤干预后大鼠椎间盘组织TP53、JUN、白细胞介素6、肿瘤坏死因子α mRNA表达明显降低(P < 0.01),而蛋"
白激酶B、胰岛素mRNA表达升高(P < 0.05),其中养肝柔筋汤中剂量组趋势最为明显。与模型组相比,双氯芬酸钠干预后白细胞介素6、肿瘤坏死因子α mRNA表达明显降低(P < 0.01),TP53、JUN、蛋白激酶B、胰岛素mRNA表达量无明显差异(P > 0.05)。 2.2.5 Western blot检测信号通路中代表性基因蛋白激活情况 见图8。为了进一步阐明养肝柔筋汤缓解椎间盘退变进程的作用机制,评估空白对照组、模型组、养肝柔筋汤中剂量组与双氯芬酸钠组的丝裂原活化蛋白激酶、肿瘤坏死因子和缺氧诱导因子1信号通路激活情况。与空白对照组相比,模型组丝裂原活化蛋白激酶信号通路中代表性基因P38、细胞外调节蛋白激酶和肿瘤坏死因子信号通路中代表性基因白细胞介素1β、肿瘤坏死因子α蛋白表达量升高(P < 0.01),缺氧诱导因子1信号通路中代表性基因缺氧诱导因子1α、血管内皮生长因子蛋白表达量降低(P < 0.01)。与模型组相比,养肝柔筋汤干预后,丝裂原活化蛋白激酶信号通路中代表性基因P38、细胞外调节蛋白激酶和肿瘤坏死因子信号通路中代表性基因白细胞介素1β、肿瘤坏死因子α蛋白表达量降低(P < 0.01),缺氧诱导因子1信号通路中代表性基因缺氧诱导因子1α、血管内皮生长因子蛋白表达量升高(P < 0.01)。与模型组相比,双氯芬酸钠干预后肿瘤坏死因子信号通路中代表性基因白细胞介素1β、肿瘤坏死因子α蛋白表达量降低(P < 0.01),丝裂原活化蛋白激酶信号通路中代表性基因P38、细胞外调节蛋白激酶和缺氧诱导因子1信号通路中代表性基因缺氧诱导因子1α、血管内皮生长因子蛋白表达量无明显差异(P > 0.05)。"
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