南方医科大学学报 ›› 2026, Vol. 46 ›› Issue (8): 1743-1753.doi: 10.12122/j.issn.1673-4254.2026.08.03
• • 上一篇
收稿日期:2025-12-31
出版日期:2026-08-20
发布日期:2026-08-01
通讯作者:
葛继荣
E-mail:296986072@qq.com;gjrrjgcy@163.com
作者简介:郑若曦,硕士,助理实验师,E-mail: 296986072@qq.com
基金资助:
Ruoxi ZHENG1,2(
), Lihua XIE2, Xiaobin HUANG2, Jirong GE2(
)
Received:2025-12-31
Online:2026-08-20
Published:2026-08-01
Contact:
Jirong GE
E-mail:296986072@qq.com;gjrrjgcy@163.com
Supported by:摘要:
目的 探讨六味地黄丸(LWDHW)通过心肌营养蛋白样细胞因子1(CLCF1)/活化T细胞核因子1(NFATc1)调控破骨细胞膜融合治疗绝经后骨质疏松症(PMOP)的作用机制。 方法 将C57小鼠分为假手术组、模型组、治疗组,10只/组,去势模拟绝经后骨质疏松症并灌胃六味地黄丸治疗。将RAW264.7细胞分为对照组(空白血清)、模型组(核因子κB受体活化因子配体(RANKL)+空白血清)、治疗组(RANKL+六味地黄丸含药血清),用RANKL诱导为破骨细胞并用六味地黄丸含药血清干预。si-CLCF1慢病毒转染敲低细胞中CLCF1表达,将细胞分为空载体(si-NC)组、si-NC+LWDHW组、si-CLCF1组、si-CLCF1+LWDHW组。骨密度分析系统检测各组小鼠骨密度;抗酒石酸酸性磷酸酶(Trap)染色观察各组破骨细胞和胫骨组织中破骨细胞成熟情况;鬼笔环肽免疫荧光观察计算各组细胞膜融合效率及纤丝状肌动蛋白(F-actin)环形成;实时聚合酶链反应和蛋白质免疫印迹试验检测各组胫骨组织和细胞中CLCF1、NFATc1、树突状细胞特异性跨膜蛋白(DC-STAMP)、破骨细胞刺激跨膜蛋白(OC-STAMP)和空泡型ATP酶V0结构域2(ATP6V0D2)基因和蛋白表达。 结果 六味地黄丸治疗可增加PMOP小鼠骨密度,减少破骨细胞成熟,降低破骨细胞融合效率(P<0.05),减少F-actin环形成。与模型组相比,六味地黄丸干预可升高胫骨组织和细胞中CLCF1基因和蛋白表达(P<0.05),降低NFATc1、DC-STAMP、OC-STAMP和ATP6V0D2基因和蛋白表达(P<0.05)。与si-CLCF1组相比,si-CLCF1+LWDHW组六味地黄丸含药血清干预后破骨细胞融合效率下降(P<0.05),F-actin环形成减少,NFATc1、DC-STAMP、OC-STAMP和ATP6V0D2基因和蛋白表达降低(P<0.05)。 结论 六味地黄丸可通过上调CLCF1表达,下调NFATc1、DC-STAMP、OC-STAMP和ATP6V0D2表达,调节破骨细胞膜融合防治绝经后骨质疏松症。
郑若曦, 谢丽华, 黄小彬, 葛继荣. 六味地黄丸通过CLCF1/NFATc1调控破骨细胞膜融合治疗小鼠绝经后骨质疏松症[J]. 南方医科大学学报, 2026, 46(8): 1743-1753.
Ruoxi ZHENG, Lihua XIE, Xiaobin HUANG, Jirong GE. Liuwei Dihuang Pill regulate osteoclast membrane fusion to improve postmenopausal osteoporosis in mice: the CLCF1/NFATc1 signaling axis as a therapeutic target[J]. Journal of Southern Medical University, 2026, 46(8): 1743-1753.
| Gene name | Sequence (5'→3') |
|---|---|
| GAPDH | Forward: TGGAAAGCTGTGGCGTGATG |
| Reverse: TACTTGGCAGGTTTCTCCAGG | |
| CLCF1 | Forward: AACGAGCCTGACTTCAATCC |
| Reverse: GACTGTACGCCTCATAGTTCTG | |
| NFATc1 | Forward: CCGTCACATTCTGGTCCATAC |
| Reverse: TTCATTCTCCAAGTAACCGTGTAG | |
| DC-STAMP | Forward: GTAGGAACGCTTTGATTGCGG |
| Reverse: TAGATTCAGCGGAGTGGCAAG | |
| OC-STAMP | Forward: CATCCGCTCCCTATTTGTGC |
| Reverse: CACGCACATTGCCTAAGACG | |
| ATP6V0D2 | Forward: AGTCTTACCTTGAGGCATTCTACA |
| Reverse: TCTCCCTGTCTTCTTTGCTTAGT |
表1 基因引物序列
Tab.1 Primer sequences for RT-qPCR
| Gene name | Sequence (5'→3') |
|---|---|
| GAPDH | Forward: TGGAAAGCTGTGGCGTGATG |
| Reverse: TACTTGGCAGGTTTCTCCAGG | |
| CLCF1 | Forward: AACGAGCCTGACTTCAATCC |
| Reverse: GACTGTACGCCTCATAGTTCTG | |
| NFATc1 | Forward: CCGTCACATTCTGGTCCATAC |
| Reverse: TTCATTCTCCAAGTAACCGTGTAG | |
| DC-STAMP | Forward: GTAGGAACGCTTTGATTGCGG |
| Reverse: TAGATTCAGCGGAGTGGCAAG | |
| OC-STAMP | Forward: CATCCGCTCCCTATTTGTGC |
| Reverse: CACGCACATTGCCTAAGACG | |
| ATP6V0D2 | Forward: AGTCTTACCTTGAGGCATTCTACA |
| Reverse: TCTCCCTGTCTTCTTTGCTTAGT |
| Group | BMD |
|---|---|
| Sham | 0.065±0.02 |
| Model | 0.043±0.02* |
| LWDHW | 0.054±0.02# |
表2 各组小鼠骨密度比较
Tab.2 Comparison of bone mineral density among the 3 groups(Mean±SD, n=10, g/cm2)
| Group | BMD |
|---|---|
| Sham | 0.065±0.02 |
| Model | 0.043±0.02* |
| LWDHW | 0.054±0.02# |
图2 各组小鼠胫骨中膜融合相关基因表达水平比较
Fig.2 Comparison of mRNA expression levels of CLCF1 (A), NFATc1 (B), DC-STAMP (C), OC-STAMP (D), and ATP6V0D2 (E) related to tibial medial membrane fusion in each group of mice (n=3). *P<0.05 vs Sham group; #P<0.05 vs Model group.
图3 各组小鼠胫骨中膜融合相关蛋白表达水平比较
Fig.3 Expression levels of membrane fusion-related proteins in the 3 groups of mice. A: Western blotting for detecting expressions of CLCF1, NFATc1, DC-STAMP, OC-STAMP, and ATP6V0D2 in mouse tibia. B-F: Expression levels of CLCF1, NFATc1, DC-STAMP, OC-STAMP, and ATP6V0D2 (n=3). *P<0.05 vs Sham group; #P<0.05 vs Model group.
图6 各组细胞中膜融合相关基因表达水平比较
Fig.6 Transcriptional levels of the membrane fusion-related genes in the 3 groups. A: CLCF1. B: NFATc1. C: DC-STAMP. D: OC-STAMP. E: ATP6V0D2. *P<0.05 vs Control group; #P<0.05 vs Model group.
图7 各组细胞中膜融合相关蛋白表达水平比较
Fig.7 Expression levels of membrane fusion-related proteins in each group. A: Western blotting for detecting expressions of CLCF1, NFATc1, DC-STAMP, OC-STAMP, and ATP6V0D2 in the osteoclasts. B-F: Expression levels of CLCF1, NFATc1, DC-STAMP, OC-STAMP and ATP6V0D2. *P<0.05 vs Control group; #P<0.05 vs Model group.
图8 CLCF1慢病毒不同条件下EGFP荧光强度
Fig.8 EGFP fluorescence intensity in RAW264.7 cells under different conditions of CLCF1 lentivirus infection (×100). A-C: MOI=100. D-F: MOI=50. G-I: MOI=10. A, D, G: Complete medium. B, E, H: HitransG A. C, F, I. HitransG P.
图9 不同慢病毒对CLCF1蛋白表达的影响
Fig.9 Effects of different lentiviruses on expression of CLCF1 protein. A: Western blotting for detecting expressions of CLCF1 in the osteoclasts. B: CLCF1. *P<0.05 vs si-NC group; #P<0.05 vs si-CLCF1-2 group.
图12 CLCF1敲低表达后各组细胞融合发生率比较
Fig.12 Cell membrane fusion in each group after CLCF1 knockdown. *P<0.05 vs si-NC; #P<0.05 vs si-NC+LWDHW; ▲P<0.05 vs si-CLCF1.
图13 CLCF1敲低表达对细胞膜融合相关基因表达水平比较
Fig.13 Transcriptional levels of genes related to cell membrane fusion after CLCF1 knockdown. A: NFATc1. B: DC-STAMP. C: OC-STAMP. D: ATP6V0D2. *P<0.05 vs si-NC, #P<0.05 vs si-NC+LWDHW, ▲P<0.05 vs si-CLCF1.
图14 CLCF1敲低表达对细胞膜融合相关蛋白表达水平比较
Fig.14 Effect of CLCF1 knockdown on expression levels of cell membrane fusion-related proteins. A: Western blotting for detecting expressions of NFATc1, DC-STAMP, OC-STAMP, and ATP6V0D2 in osteoclast. B: NFATc1. C: DC-STAMP. D: OC-STAMP. E: ATP6V0D2. *P<0.05 vs si-NC; #P<0.05 vs si-NC+LWDHW; ▲P<0.05 vs si-CLCF1.
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