Exploring the multicomponent synergy mechanism of Zuogui Wan on postmenopausal osteoporosis by a systems pharmacology strategy.

Feng Yanchen, Liu Yali, Dang Xue, Lin Zixuan, Zhang Yunke, Che Zhiying, L I Xiang, Pan Xiaolong, Liu Feixiang, Zheng Pan
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Abstract

Objective: To explore the multi-component synergistic mechanism of Zuogui Wan (, ZGW) in treating postmenopausal osteoporosis (PMOP).

Methods: The main components and target genes of ZGW were screened via the Traditional Chinese Medicine Systems Pharmacology (TCMSP). In addition, the target gene sets of PMOP were derived from the GeneCards and Online Mendelian Inheritance in Man databases. The search tool for recurring instances of neighbouring genes (STRING) 11.0 software was used to analyze the interaction among intersecting genes. Cytoscape 3.6.1 software and the Matthews correlation coefficient (MCC) algorithm were used to screen the core genes. Fifty Sprague-Dawley female rats were randomly divided into the sham-operated (Sham) group and the four ovariectomized (OVX) subgroups. Rats subjected to Sham or OVX were administered with the vehicle (OVX, 1 mL water/100 g weight), 17β-estradiol (E2, 50 μg·kg-1·d-1), and lyophilized powder of ZGW at a low dose of 2.3 (ZGW-L) and high dose of 4.6 (ZGW-H) g·kg-1·d-1 for three months. The bone density and bone strength were assessed using dual-energy X-ray and three-point bending tests, respectively. Furthermore, enzyme-linked immun-osorbent assay, Hematoxylin-eosin staining, and western blot analysis were used to determine the potential pharmacological mechanisms of action of ZGW in PMOP.

Results: A total of 117 active compounds of ZGW were screened from the TCMSP. Furthermore, 108 intersecting genes of drugs and diseases were identified. Using STRING software and the MCC algorithm, ten core genes, including C-X-C chemokine living 8 (CXCL8), C-C chemokine receptor type 2 (CCR2), alpha-2a active receptor (ADRA2A), melatonin receptor type 1B (MTNR1B), and amyloid-beta A4 protein (APP), were identified. The anti-osteoporosis regulation network of ZGW was constructed using the Cytoscape software. The animal experiments demonstrated that ZGW groups significantly reduced the serum levels of β-C-terminal telopeptide of type I collagen (β-CTX) and increased serum levels of bone-specific alkaline phosphatase (BALP) (P < 0.05, P < 0.01). The OVX group exhibited a significant decrease in bone mineral density and bone strength compared with the Sham group (P < 0.01). Moreover, treatment with ZGW resulted in increased trabecular thickness, improved arrangement of trabecular structure, and reduced empty bone lacunae. Furthermore, treatment with ZGW significantly increased the protein expression of CXCL8, ADRA2A, and CCR2 (P < 0.05, P < 0.01), and significantly decreased the protein expression of Runx2 (P < 0.01). Furthermore, the ZGW and E2 groups demonstrated significantly increased BMD (P < 0.05, P < 0.01), improved bone strength (P < 0.05, P < 0.01), reduced expression of CXCL8, ADRA2A, and CCR2, and increased runt-related transcription factor 2 levels in bone tissue (P < 0.05, P < 0.01) compared with the OVX group. However, there were no significant differences in MTNR1B and APP expression among the groups.

Conclusion: ZGW shows synergistic mechanisms in PMOP through multiple components, targets, and pathways.

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通过系统药理学策略探索左归丸对绝经后骨质疏松症的多成分协同作用机制
目的:探讨左归丸治疗绝经后骨质疏松症的多组分协同作用机制:探讨左归丸治疗绝经后骨质疏松症(PMOP)的多组分协同作用机制:方法:通过中药系统药理学(TCMSP)筛选左归丸的主要成分和靶基因。此外,PMOP 的靶基因集来自 GeneCards 和 Online Mendelian Inheritance in Man 数据库。相邻基因重复实例搜索工具(STRING)11.0 软件用于分析相交基因之间的相互作用。使用 Cytoscape 3.6.1 软件和马修斯相关系数(MCC)算法筛选核心基因。50只Sprague-Dawley雌性大鼠被随机分为假手术(Sham)组和四个卵巢切除(OVX)亚组。给假手术组或卵巢切除组大鼠注射载体(OVX,1 mL水/100 g体重)、17β-雌二醇(E2,50 μg-kg-1-d-1)和ZGW冻干粉,低剂量为2.3 (ZGW-L) g-kg-1-d-1,高剂量为4.6 (ZGW-H) g-kg-1-d-1,为期三个月。骨密度和骨强度分别通过双能 X 射线和三点弯曲测试进行评估。此外,还采用了酶联免疫吸附试验、血栓素-伊红染色法和 Western 印迹分析法来确定 ZGW 在 PMOP 中的潜在药理作用机制:结果:从TCMSP中共筛选出117个ZGW活性化合物。此外,还发现了108个药物与疾病的交叉基因。利用STRING软件和MCC算法,确定了10个核心基因,包括C-X-C趋化因子活体8(CXCL8)、C-C趋化因子受体2型(CCR2)、α-2a活性受体(ADRA2A)、褪黑素受体1B型(MTNR1B)和淀粉样β-A4蛋白(APP)。利用Cytoscape软件构建了ZGW的抗骨质疏松症调控网络。动物实验表明,ZGW组显著降低了血清中I型胶原β-C端端肽(β-CTX)的水平,提高了血清中骨特异性碱性磷酸酶(BALP)的水平(P 0.05,P 0.01)。与 Sham 组相比,OVX 组的骨矿密度和骨强度显著下降(P 0.01)。此外,使用 ZGW 治疗后,骨小梁厚度增加,骨小梁结构排列得到改善,空骨隙减少。此外,ZGW 能显著增加 CXCL8、ADRA2A 和 CCR2 的蛋白表达(P 0.05,P 0.01),显著降低 Runx2 的蛋白表达(P 0.01)。此外,与 OVX 组相比,ZGW 组和 E2 组的 BMD 明显增加(P 0.05,P 0.01),骨强度提高(P 0.05,P 0.01),CXCL8、ADRA2A 和 CCR2 的表达减少,骨组织中 Runt 相关转录因子 2 的水平增加(P 0.05,P 0.01)。然而,MTNR1B和APP的表达在各组间无明显差异:结论:ZGW通过多种成分、靶点和途径在PMOP中显示出协同机制。
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