Chinese Journal of Tissue Engineering Research ›› 2026, Vol. 30 ›› Issue (36): 9413-9422.doi: 10.12307/2026.910
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Wang Huaijing1, Guo Jinrong2, Wan Dongping1, Mei Qijie2, Yuan Jingzhao1, Xu Wenfei2, Zeng Chao2, Zheng Haijun2, Yuan Changshen2, #br# Duan Kan2#br#
Received:2025-11-13
Revised:2026-03-25
Online:2026-12-28
Published:2026-05-20
Contact:
Yuang Changshen, MS, Chief physician, Master’s supervisor, The First Affiliated Hospital of Guangxi University of Chinese Medicine, Nanning 530023, Guangxi Zhuang Autonomous Region, China
Co-corresponding author: Duan Kan, PhD, Chief physician, Doctoral supervisor, The First Affiliated Hospital of Guangxi University of Chinese Medicine, Nanning 530023, Guangxi Zhuang Autonomous Region, China
About author:Wang Huaijing, PhD, Graduate School of Guangxi University of Chinese Medicine, Nanning 530200, Guangxi Zhuang Autonomous Region, China
Guo Jinrong, MS, Associate chief physician, The First Affiliated Hospital of Guangxi University of Chinese Medicine, Nanning 530023, Guangxi Zhuang Autonomous Region, China
Wang Huaijing and Guo Jinrong contributed equally to this work.
Supported by:CLC Number:
Wang Huaijing, Guo Jinrong, Wan Dongping, Mei Qijie, Yuan Jingzhao, Xu Wenfei, Zeng Chao, Zheng Haijun, Yuan Changshen, Duan Kan. Identification of antimicrobial peptides as key therapeutic targets for necrosis by sodium overload in osteoarthritis using multiple machine learning approaches: cytological validation[J]. Chinese Journal of Tissue Engineering Research, 2026, 30(36): 9413-9422.
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2.1 筛选获得9个骨关节炎钠死亡差异基因 GSE117999和GSE169077数据集合并后获取差异表达基因总计22个,其中12个下调基因、10个上调基因(图1A,B)。通过Genecard数据库获取钠死亡相关靶点 3 662个。将差异基因与钠死亡相关靶点取交集,获得9个靶点:CSN1S1、载脂蛋白D、乳铁蛋白、抗菌肽、GLUL、S100钙结合蛋白A8、CHKA、基质金属蛋白酶3、基质金属蛋白酶13。 2.2 差异基因富集于白细胞介素17信号通路及免疫相关功能 借助Metascape和仙桃学术等多个数据库开展骨关节炎钠死亡差异基因的富集分析。GO分析显示生物学过程主要富集在器官或组织特异性免疫反应、黏膜免疫反应、黏膜的先天免疫反应;细胞组分主要富集在特定颗粒管腔、分泌颗粒腔、三级颗粒腔;分子功能主要富集在丝氨酸水解酶活性、丝氨酸型肽酶活性、丝氨酸型内肽酶活性。KEGG分析结果显示主要在白细胞介素17信号通路富集(图2)。 2.3 浆细胞与静态树突状细胞在骨关节炎中呈现异常浸润 借助“CIBERSORT”包开展GSE117999与GSE169077合并数据集的免疫浸润分析,结果显示正常组与骨关节炎组间具有明显差异的免疫细胞为2种(图3A),浆细胞、静态树突状细胞在骨关节"
炎组显著低表达(P < 0.05);记忆B细胞表现出与疾病最强的负相关,而静息态肥大细胞则表现出最强的正相关(图3B);骨关节炎组与正常组在整体免疫细胞浸润模式上存在明显差异(图3C);CD8型T细胞与初始CD4型T细胞显著正相关,浆细胞与初始B细胞显著负相关(图3D)。 2.4 蛋白-蛋白相互作用网络鉴定出5个与骨关节炎钠死亡相关的Hub基因 蛋白-蛋白相互作用网络分析发现基质金属蛋白酶3、抗菌肽、载脂蛋白D、CSN1S1、乳铁蛋白、S100钙结合蛋白A8、基质金属蛋白酶13之间具有密切相互作用(图4A)。通过MCODE和CytoHubba插件筛选,最终确定基质金属蛋白酶3、载脂蛋白D、抗菌肽、S100钙结合蛋白A8、乳铁蛋白作为Hub基因(图4B-D)。 2.5 Hub基因与特定免疫细胞亚群存在显著相关性 抗菌肽与M0巨噬细胞、浆细胞、卵泡辅助性T细胞呈显著负相关;S100钙结合蛋白A8与记忆B细胞显著正相关,与卵泡辅助性T细胞显著负相关;乳铁蛋白与记忆B细胞、初始CD4型T细胞显著正相关,与初始B细胞、静息树突状细胞、浆细胞显著负相关;载脂蛋白D与静息树突状细胞正相关;基质金属蛋白酶3、载脂蛋白D未发现与免疫细胞有显著相关性(P > 0.05)(图5)。 2.6 加权共表达分析锁定抗菌肽、乳铁蛋白、S100钙结合蛋白A8等核心基因 以合并GSE169077、GSE117999后的数据集为基础开展聚类分析,排除离群样本后(图6A),设置软阈值β=10建立无尺度拓扑网络(图6B)。鉴定出16个基因模块(图6C,D),其中粉色模块和棕黄色模块与骨关节炎具有显著相关性(图"
6E)。这些模块与骨关节炎钠死亡差异基因交集获得乳铁蛋白、抗菌肽、S100钙结合蛋白A8关键基因。紫色模块与浆细胞高度正相关(r=0.67,P=3×10-5)(图6F),其与骨关节炎钠死亡差异基因交集得到CSN1S1基因。 2.7 3种机器学习算法共同鉴定抗菌肽为关键诊断基因并验证其效能 LASSO回归筛选出3个诊断性基因:抗菌肽、CHKA、基质金属蛋白酶3(图7A,B);随机森林筛选出5个诊断性基因:抗菌肽、基质金属蛋白酶13、CSN1S1、载脂蛋白D、基质金属蛋白酶3(图7C,D);XGBoost筛选出7个诊断性基因:GLUL、CSN1S1、S100钙结合蛋白A8、乳铁蛋白、载脂蛋白D、基质金属蛋白酶13、抗菌肽(图7E,F)。3种算法交集基因为抗菌肽(图7G)。在GSE51588数据集中,骨关节炎软骨下骨中抗菌肽表达显著下调(P < 0.001)(图7H);在GSE55235数据集中,骨关节炎滑膜组织中抗菌肽表达趋势低于正常对照组,但差异无显著性意义(P=0.33)(图7I)。列线图模型显示预测患病风险与真实患病风险高度一致(图7J,K)。受试者工作特征曲线分析显示测试集曲线下面积为0.871,验证集曲线下面积分别为0.655和0.853(图7L-N)。决策曲线分析显示抗菌肽在3个数据集中均具有较好的"
临床效益(图7O-Q)。 2.8 诊断基因抗菌肽与Hub基因表达高度相关 借助机器学习对Hub基因和诊断基因二者关联度进行筛选。抗菌肽与基质金属蛋白酶3存在负相关(R=-0.38,P=0.038);与载脂蛋白D存在负相关(R=-0.45,P=0.011);与S100钙结合蛋白A8存在显著正相关(R=0.84,P=4.1×10-9);与乳铁蛋白存在显著正相关(R=0.9,P=9×10-12)(图8)。 2.9 预测获得5种可靶向抗菌肽的潜在治疗药物 预测可调控诊断基因的药物共计38种(P < 0.01)(图9A),相关性最强的前5种药物为:聚乙二醇缀合Toll样受体7/8激动剂NKTR-262、罗哌卡肽、17-丁酸氯倍他索、表达干扰素-β和酪氨酸酶相关蛋白1的重组水疱性口炎病毒、吉洛拉单抗(图9B)。 2.10 细胞实验证实骨关节炎模型中抗菌肽蛋白表达上调 Western blot检测结果显示,骨关节炎组抗菌肽蛋白相对表达量显著高于正常对照组(图10)。"
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