背景:目前已有针对miRNA/mRNA轴调节骨关节炎疾病进程的分子机制研究。先前生物信息学研究发现具有临床预测价值的mRNA(磷脂酶Cδ3:phospholipase C delta 3,PLCD3)及其靶向miRNA(miR-34a-5p),尚缺实验验证其调控骨关节炎的具体作用及...背景:目前已有针对miRNA/mRNA轴调节骨关节炎疾病进程的分子机制研究。先前生物信息学研究发现具有临床预测价值的mRNA(磷脂酶Cδ3:phospholipase C delta 3,PLCD3)及其靶向miRNA(miR-34a-5p),尚缺实验验证其调控骨关节炎的具体作用及机制。目的:探讨miR-34a-5p/PLCD3轴对骨关节炎进展的调控作用及机制。方法:选择15例膝骨关节炎患者的滑膜为骨关节炎组,同时选择同期因创伤致髌骨骨折行内固定术的15例年轻患者的健康滑膜为对照组,Real-time PCR法检测滑膜中PLCD3及miR-34a-5p的表达。通过细胞转染的方法,将人滑膜关节炎成纤维细胞(human fibroblast like synovial cells-osteoarthritis,HFLS-OA)进行处理,并分为miR-34a-5p模拟物组、pCDH-PLCD3组、miR-34a-5p模拟物+pCDH-PLCD3组、miR-34a-5p抑制剂组、si-PLCD3组、miR-34a-5p抑制剂+si-PLCD3组,通过Real-time PCR法检测PLCD3和miR-34a-5p表达的关系;通过CCK-8法、细胞划痕实验检测各组HFLS-OA细胞活力及细胞迁移的影响;使用Western Blot法检测凋亡标记蛋白表达水平;使用ELISA法检测炎症因子的表达。结果与结论:①PLCD3是miR-34a-5p的直接靶标,同时PLCD3和miR-34a-5p表达水平呈负相关。②PLCD3上调会促进HFLS-OA细胞的增殖并抑制细胞迁移,而miR-34a-5p上调会显著抑制HFLS-OA细胞的活性并增强细胞迁移;miR-34a-5p过表达使HFLS-OA细胞Casp3和Casp9蛋白水平显著升高,而PLCD3过表达则表现出相反趋势。③PLCD3过表达显著增加了HFLS-OA细胞白细胞介素6和肿瘤坏死因子α的表达,而miR-34a-5p模拟物则表现出保护活性。④结果说明,miR-34a-5p/PLCD3轴可能通过调节滑膜细胞的炎症过程或凋亡来影响骨关节炎的进展。展开更多
BACKGROUND Intervertebral disc degeneration(IDD)is a main contributor to low back pain.Oxidative stress,which is highly associated with the progression of IDD,increases senescence of nucleus pulposus-derived mesenchym...BACKGROUND Intervertebral disc degeneration(IDD)is a main contributor to low back pain.Oxidative stress,which is highly associated with the progression of IDD,increases senescence of nucleus pulposus-derived mesenchymal stem cells(NPMSCs)and weakens the differentiation ability of NPMSCs in degenerated intervertebral discs(IVDs).Quercetin(Que)has been demonstrated to reduce oxidative stress in diverse degenerative diseases.AIM To investigate the role of Que in oxidative stress-induced NPMSC damage and to elucidate the underlying mechanism.METHODS In vitro,NPMSCs were isolated from rat tails.Senescence-associatedβ-galactosidase(SA-β-Gal)staining,cell cycle,reactive oxygen species(ROS),realtime quantitative polymerase chain reaction(RT-qPCR),immunofluorescence,and western blot analyses were used to evaluated the protective effects of Que.Meanwhile the relationship between miR-34a-5p and Sirtuins 1(SIRT1)was evaluated by dual-luciferase reporter assay.To explore whether Que modulates tert-butyl hydroperoxide(TBHP)-induced senescence of NPMSCs via the miR-34a-5p/SIRT1 pathway,we used adenovirus vectors to overexpress and downregulate the expression of miR-34a-5p and used SIRT1 siRNA to knockdown SIRT1 expression.In vivo,a puncture-induced rat IDD model was constructed,and X rays and histological analysis were used to assess whether Que could alleviate IDD in vivo.RESULTS We found that TBHP can cause NPMSCs senescence changes,such as reduced cell proliferation ability,increased SA-β-Gal activity,cell cycle arrest,the accumulation of ROS,and increased expression of senescence-related proteins.While abovementioned senescence indicators were significantly alleviated by Que treatment.Que decreased the expression levels of senescence-related proteins(p16,p21,and p53)and senescence-associated secreted phenotype(SASP),including IL-1β,IL-6,and MMP-13,and it increased the expression of SIRT1.In addition,the protective effects of Que on cell senescence were partially reversed by miR-34a-5p overexpression and SIRT1 knockdown.In vivo,X-ray,and histological analyses indicated that Que alleviated IDD in a punctureinduced rat model.CONCLUSION In summary,the present study provides evidence that Que reduces oxidative stress-induced senescence of NPMSCs via the miR-34a/SIRT1 signaling pathway,suggesting that Que may be a potential agent for the treatment of IDD.展开更多
基金Supported by the National Natural Science Foundation of China,No.82172462,No.81972136the Traditional Chinese Medicine Science and Technology Development Plan Project of Jiangsu Province,No.YB2020085Cross Cooperation Project of Northern Jiangsu People’s Hospital,No.SBJC21014.
文摘BACKGROUND Intervertebral disc degeneration(IDD)is a main contributor to low back pain.Oxidative stress,which is highly associated with the progression of IDD,increases senescence of nucleus pulposus-derived mesenchymal stem cells(NPMSCs)and weakens the differentiation ability of NPMSCs in degenerated intervertebral discs(IVDs).Quercetin(Que)has been demonstrated to reduce oxidative stress in diverse degenerative diseases.AIM To investigate the role of Que in oxidative stress-induced NPMSC damage and to elucidate the underlying mechanism.METHODS In vitro,NPMSCs were isolated from rat tails.Senescence-associatedβ-galactosidase(SA-β-Gal)staining,cell cycle,reactive oxygen species(ROS),realtime quantitative polymerase chain reaction(RT-qPCR),immunofluorescence,and western blot analyses were used to evaluated the protective effects of Que.Meanwhile the relationship between miR-34a-5p and Sirtuins 1(SIRT1)was evaluated by dual-luciferase reporter assay.To explore whether Que modulates tert-butyl hydroperoxide(TBHP)-induced senescence of NPMSCs via the miR-34a-5p/SIRT1 pathway,we used adenovirus vectors to overexpress and downregulate the expression of miR-34a-5p and used SIRT1 siRNA to knockdown SIRT1 expression.In vivo,a puncture-induced rat IDD model was constructed,and X rays and histological analysis were used to assess whether Que could alleviate IDD in vivo.RESULTS We found that TBHP can cause NPMSCs senescence changes,such as reduced cell proliferation ability,increased SA-β-Gal activity,cell cycle arrest,the accumulation of ROS,and increased expression of senescence-related proteins.While abovementioned senescence indicators were significantly alleviated by Que treatment.Que decreased the expression levels of senescence-related proteins(p16,p21,and p53)and senescence-associated secreted phenotype(SASP),including IL-1β,IL-6,and MMP-13,and it increased the expression of SIRT1.In addition,the protective effects of Que on cell senescence were partially reversed by miR-34a-5p overexpression and SIRT1 knockdown.In vivo,X-ray,and histological analyses indicated that Que alleviated IDD in a punctureinduced rat model.CONCLUSION In summary,the present study provides evidence that Que reduces oxidative stress-induced senescence of NPMSCs via the miR-34a/SIRT1 signaling pathway,suggesting that Que may be a potential agent for the treatment of IDD.