Ding Rui, Li Xiang-Yang, Wang Xiang, Wang Liang, Zhou Peng, Huang Jin-Ling
Anhui University of Chinese Medicine Hefei 230012, China.
Zhongguo Zhong Yao Za Zhi. 2024 Aug;49(15):4178-4187. doi: 10.19540/j.cnki.cjcmm.20240415.701.
This study aimed to investigate the regulatory mechanism of Linggui Zhugan Decoction(LGZGD)-medicated serum on the fibrosis of cardiac fibroblasts(CFs) and the protein expression of the Wnt/β-catenin signaling pathway. Blank serum and LGZGD-medicated serum were prepared, and primary CFs were isolated and cultured using trypsin-collagenase digestion and differential adhesion method. Immunofluorescence labeling was used to identify primary CFs. Cells were divided into normal control group, model group, 20% blank serum group, and 5%, 10%, and 20% LGZGD-medicated serum groups. Except for the normal control group, all other groups were stimulated with hydrogen peroxide(H_2O_2) after pretreatment with 20% blank serum or 5%, 10%, 20% LGZGD-medicated serum for 12 hours to establish a model of fibrosis in primary CFs. Scratch healing assay was used to observe cell migration ability. ELISA was used to detect the content of collagen type Ⅰ(Col Ⅰ) and type Ⅲ(Col Ⅲ). Western blot was used to detect the protein expression of α-smooth muscle actin(α-SMA), Wnt1, glycogen synthase kinase 3β(GSK-3β), phosphorylated GSK-3β(p-GSK-3β), β-catenin, and nuclear β-catenin. RT-qPCR was used to detect the gene expression of β-catenin and matrix metalloproteinase 9(MMP9), and immunofluorescence technique was used to detect the expression and localization of key proteins α-SMA and β-catenin. CFs with Wnt1 overexpression were prepared and treated with H_2O_2. The following groups were set up: normal control group, model group, 20% LGZGD-medicated serum group, empty plasmid+20% LGZGD-medicated serum group, and Wnt1 overexpression+20% LGZGD-medicated serum group. ELISA was used to detect the content and ratio of Col Ⅰ and Col Ⅲ. Western blot was used to detect the protein expression of α-SMA, Wnt1, GSK-3β, p-GSK-3β, β-catenin, and nuclear β-catenin. RT-qPCR was used to detect the gene expression of β-catenin and MMP9. Immunofluorescence staining showed that CFs expressed Vimentin positively, appearing green, with blue nuclei and purity greater than 90%, which were identified as primary CFs. RESULTS:: showed that compared with the normal control group, CFs in the model group had enhanced healing rate, increased content of Col Ⅰ and Col Ⅲ, increased ratio of Col Ⅰ/Col Ⅲ, upregulated protein expression of α-SMA, Wnt1, p-GSK-3β, β-catenin, nuclear β-catenin, decreased GSK-3β expression, elevated mRNA expression of β-catenin and MMP9, and enhanced fluorescence intensity and expression of β-catenin and α-SMA. Compared with the model group, 5%, 10%, 20% LGZGD-medicated serum significantly inhibited cell migration ability, reduced the content of Col Ⅰ and Col Ⅲ, decreased ratio of Col Ⅰ/Col Ⅲ, downregulated protein expression of α-SMA, Wnt1, p-GSK-3β, β-catenin, nuclear β-catenin, increased GSK-3β expression, decreased mRNA expression of β-catenin and MMP9, and reduced fluorescence intensity and expression of β-catenin and α-SMA. Compared with the empty plasmid+20% LGZGD-medicated serum group, the effect of LGZGD-medicated serum was significantly reversed after overexpression of Wnt1. LGZGD can reduce excessive deposition of collagen fibers, inhibit excessive proliferation of fibroblasts, and improve the process of myocardial fibrosis. The improvement of myocardial fibrosis by LGZGD is related to the regulation of the Wnt/β-catenin pathway, reduction of collagen deposition, and protection of myocardial cells.
本研究旨在探讨苓桂术甘汤含药血清对心脏成纤维细胞(CFs)纤维化及Wnt/β-连环蛋白信号通路蛋白表达的调控机制。制备空白血清和苓桂术甘汤含药血清,采用胰蛋白酶-胶原酶消化法和差速贴壁法分离培养原代CFs。采用免疫荧光标记法鉴定原代CFs。将细胞分为正常对照组、模型组、20%空白血清组、5%、10%、20%苓桂术甘汤含药血清组。除正常对照组外,其余各组先用20%空白血清或5%、10%、20%苓桂术甘汤含药血清预处理12小时,再用过氧化氢(H₂O₂)刺激,建立原代CFs纤维化模型。采用划痕愈合试验观察细胞迁移能力。采用ELISA法检测Ⅰ型胶原(Col Ⅰ)和Ⅲ型胶原(Col Ⅲ)含量。采用Western blot法检测α-平滑肌肌动蛋白(α-SMA)、Wnt1、糖原合酶激酶3β(GSK-3β)、磷酸化GSK-3β(p-GSK-3β)、β-连环蛋白和核β-连环蛋白的蛋白表达。采用RT-qPCR法检测β-连环蛋白和基质金属蛋白酶9(MMP9)的基因表达,采用免疫荧光技术检测关键蛋白α-SMA和β-连环蛋白的表达及定位。制备Wnt1过表达的CFs并用H₂O₂处理。设置以下各组:正常对照组、模型组、20%苓桂术甘汤含药血清组、空质粒+20%苓桂术甘汤含药血清组和Wnt1过表达+20%苓桂术甘汤含药血清组。采用ELISA法检测Col Ⅰ和Col Ⅲ的含量及比值。采用Western blot法检测α-SMA、Wnt1、GSK-3β、p-GSK-3β、β-连环蛋白和核β-连环蛋白的蛋白表达。采用RT-qPCR法检测β-连环蛋白和MMP9的基因表达。免疫荧光染色显示CFs波形蛋白呈阳性表达,呈绿色,细胞核呈蓝色,纯度大于90%,鉴定为原代CFs。结果显示:与正常对照组相比,模型组CFs愈合率升高,Col Ⅰ和Col Ⅲ含量增加,Col Ⅰ/Col Ⅲ比值升高,α-SMA、Wnt1、p-GSK-3β、β-连环蛋白、核β-连环蛋白蛋白表达上调,GSK-3β表达降低,β-连环蛋白和MMP9 mRNA表达升高,β-连环蛋白和α-SMA荧光强度及表达增强。与模型组相比,5%、10%、20%苓桂术甘汤含药血清显著抑制细胞迁移能力,降低Col Ⅰ和Col Ⅲ含量,降低Col Ⅰ/Col Ⅲ比值,下调α-SMA、Wnt1、p-GSK-3β、β-连环蛋白、核β-连环蛋白蛋白表达,增加GSK-3β表达,降低β-连环蛋白和MMP9 mRNA表达,降低β-连环蛋白和α-SMA荧光强度及表达。与空质粒+20%苓桂术甘汤含药血清组相比,Wnt1过表达后苓桂术甘汤含药血清的作用显著逆转。苓桂术甘汤可减少胶原纤维过度沉积,抑制成纤维细胞过度增殖,改善心肌纤维化进程。苓桂术甘汤对心肌纤维化的改善与调控Wnt/β-连环蛋白通路、减少胶原沉积及保护心肌细胞有关。