[氧化应激状态下浓缩生长因子对人牙髓干细胞生物学性能的影响]。

Q4 Medicine
H Chen, H Zhang, X C Zhao, L He
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After CCK-8 detection, the optimum CGF concentration was chosen for the subsequent experiments. The hDPSCs were divided into control group, H<sub>2</sub>O<sub>2</sub> (only H<sub>2</sub>O<sub>2</sub> processing), H<sub>2</sub>O<sub>2</sub>+CGF group (H<sub>2</sub>O<sub>2</sub> processing in combination with the CGF) and CGF group (only CGF processing). Subsequent experiments were performed according to these groups. The oxidative stress model was verified by reactive oxygen species, β-galactosidase staining and Western blotting. The effects of CGF on the proliferation and migration of hDPSCs under oxidative stress status were detected by CCK-8 and cell scratch assay, respectively. ALP activity and ARS staining were used to detect the effect of CGF on the osteogenic differentiation of hDPSCs under oxidative stress status. The mRNA expression levels of odontogenesis related genes were detected by real-time fluorescence quantitative PCR (RT-qPCR), and the expression levels of odontogenesis and osteogenesis related proteins were detected by Western blotting. <b>Results:</b> Isolated hDPSCs showed positive expression of mesenchymal stem cells surface markers of CD90, CD105, and negative expression of hematopoietic stem cells surface markers CD34, CD45. The hDPSCs were proved to have the capacity of osteogenic, adipogenic differentiation and clone formation. The optimal concentration to construct the oxidative stress model was 200 μmol/L H<sub>2</sub>O<sub>2</sub>. Twenty percent CGF was the optimal concentration for subsequent experiments. Compared with the control group, the expression of aging protein p53 was significantly up-regulated from (0.82±0.12) to (1.19±0.14) in H<sub>2</sub>O<sub>2</sub> group (<i>P</i><0.05), with deepened β-galactosidase staining and increased fluorescence intensity of reactive oxygen species. The proliferative capacity of cells in H<sub>2</sub>O<sub>2</sub>+CGF group on day 1, 3, 5 and 7 (0.23±0.01, 0.50±0.02, 1.60±0.07, 1.80±0.21) were all higher than in H<sub>2</sub>O<sub>2</sub> group (0.15±0.01, 0.14±0.02, 0.50±0.03, 0.90±0.09) (<i>P</i><0.05). Cell healing capacity of cells in H<sub>2</sub>O<sub>2</sub>+CGF group at 12 h and 24 h [(47±7)%, (58±44)%] also increased compared with the H<sub>2</sub>O<sub>2</sub> group [(36±2)%, (44±2)%] (<i>P</i><0.05), and similar results in the activity of ALP and the formation of mineralized nodules. On day 28, the mRNA expressions of dentin sialophosphoprotein (0.52±0.16) and dental matrix protein 1 (DMP-1) (0.39±0.13) in H<sub>2</sub>O<sub>2</sub> group were all significantly lower than those in H<sub>2</sub>O<sub>2</sub>+CGF group (0.96±0.24, 0.83±0.30, respectively) and CGF group (1.12±0.18, 1.23±0.19, respectively) (<i>P</i><0.05). On day 28, the expressions of odontogenesis related protein DMP-1 (0.27±0.04) and osteogenesis related protein Runt-related transcription factor-2 (0.42±0.15) in H<sub>2</sub>O<sub>2</sub> group were all significantly lower than those in H<sub>2</sub>O<sub>2</sub>+CGF group (0.66±0.18, 0.68±0.04) and CGF group (1.15±0.13, 1.06±0.19, respectively) (<i>P</i><0.05). <b>Conclusions:</b> H<sub>2</sub>O<sub>2</sub> can induce oxidative stress in hDPSCs, while CGF can promote proliferation, migration, odontogenic and osteogenic differentiation of hDPSCs under oxidative stress status.</p>","PeriodicalId":23965,"journal":{"name":"中华口腔医学杂志","volume":"60 2","pages":"151-159"},"PeriodicalIF":0.0000,"publicationDate":"2025-02-09","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"[Effect of concentrated growth factor on the biological performance of human dental pulp stem cells under oxidative stress status].\",\"authors\":\"H Chen, H Zhang, X C Zhao, L He\",\"doi\":\"10.3760/cma.j.cn112144-20241021-00391\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p><b>Objective:</b> To investigate the effect of concentrated growth factor (CGF) on the biological performance of human dental pulp stem cells (hDPSCs) under oxidative stress status induced by hydrogen peroxide (H<sub>2</sub>O<sub>2</sub>). <b>Methods:</b> The hDPSCs were isolated by using tissue block separation method from healthy permanent teeth extracted for orthodontic reason. hDPSCs surface markers CD34, CD45, CD90 and CD105 were detected by flow cytometry. Alkaline phosphatase (ALP), alizarin red S (ARS), oil red O staining and colony formation assay were used to identify hDPSCs. After the cell counting kit-8 (CCK-8) detection, the optimal H<sub>2</sub>O<sub>2</sub> concentration was used to construct the hDPSCs oxidative stress model. CGF conditioned medium was prepared by repeated freeze-thaw methods. After CCK-8 detection, the optimum CGF concentration was chosen for the subsequent experiments. The hDPSCs were divided into control group, H<sub>2</sub>O<sub>2</sub> (only H<sub>2</sub>O<sub>2</sub> processing), H<sub>2</sub>O<sub>2</sub>+CGF group (H<sub>2</sub>O<sub>2</sub> processing in combination with the CGF) and CGF group (only CGF processing). Subsequent experiments were performed according to these groups. The oxidative stress model was verified by reactive oxygen species, β-galactosidase staining and Western blotting. 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引用次数: 0

摘要

目的:探讨浓缩生长因子(CGF)对过氧化氢(H2O2)诱导的氧化应激状态下人牙髓干细胞(hDPSCs)生物学性能的影响。方法:采用组织块分离法从正畸拔牙健康恒牙中分离出hdpsc。流式细胞术检测hDPSCs表面标志物CD34、CD45、CD90和CD105。采用碱性磷酸酶(ALP)、茜素红S (ARS)、油红O染色和集落形成法对hdpsc进行鉴定。细胞计数试剂盒-8 (CCK-8)检测后,采用最优H2O2浓度构建hDPSCs氧化应激模型。采用反复冻融法制备CGF条件培养基。CCK-8检测后,选择最佳CGF浓度进行后续实验。将hDPSCs分为对照组、H2O2组(仅处理H2O2)、H2O2+CGF组(H2O2与CGF联合处理)和CGF组(仅处理CGF)。后续实验按各组进行。通过活性氧、β-半乳糖苷酶染色和免疫印迹法验证氧化应激模型。CCK-8法和细胞划痕法分别检测CGF对氧化应激状态下hDPSCs增殖和迁移的影响。采用ALP活性和ARS染色检测氧化应激状态下CGF对hdpsc成骨分化的影响。采用实时荧光定量PCR (RT-qPCR)检测成牙相关基因mRNA表达水平,Western blotting检测成牙和成骨相关蛋白表达水平。结果:分离的hDPSCs间充质干细胞表面标志物CD90、CD105阳性表达,造血干细胞表面标志物CD34、CD45阴性表达。结果表明,hDPSCs具有成骨、成脂分化和克隆形成的能力。建立氧化应激模型的最佳浓度为200 μmol/L H2O2。20%的CGF是后续实验的最佳浓度。与对照组相比,H2O2组衰老蛋白p53的表达从(0.82±0.12)显著上调至(1.19±0.14)(P0.05), β-半乳糖苷酶染色加深,活性氧荧光强度增强。H2O2+CGF组细胞第1、3、5、7天的增殖能力(0.23±0.01,0.50±0.02,1.60±0.07,1.80±0.21)均高于H2O2组(0.15±0.01,0.14±0.02,0.50±0.03,0.90±0.09)(P0.01)。H2O2+CGF组细胞在12 h和24 h的愈合能力(0.47±0.07,0.58±0.44)高于H2O2组(0.36±0.02,0.44±0.02)(P0.05),在ALP活性和矿化结节形成方面也有相似的结果。第28天,H2O2组牙本质唾液磷蛋白(0.52±0.16)和牙基质蛋白1(DMP-1) mRNA表达量(0.39±0.13)均显著低于H2O2+CGF组(分别为0.96±0.24、0.83±0.30)和CGF组(分别为1.12±0.18、1.23±0.19)(P0.05)。第28天,H2O2组成骨相关蛋白DMP-1(0.27±0.04)和成骨相关蛋白runt -相关转录因子-2(0.42±0.15)的表达均显著低于H2O2+CGF组(0.66±0.18、0.68±0.04)和CGF组(1.15±0.13、1.06±0.19)(P0.05)。结论:H2O2可诱导hDPSCs氧化应激,而CGF可促进氧化应激状态下hDPSCs的增殖、迁移、成牙和成骨分化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
[Effect of concentrated growth factor on the biological performance of human dental pulp stem cells under oxidative stress status].

Objective: To investigate the effect of concentrated growth factor (CGF) on the biological performance of human dental pulp stem cells (hDPSCs) under oxidative stress status induced by hydrogen peroxide (H2O2). Methods: The hDPSCs were isolated by using tissue block separation method from healthy permanent teeth extracted for orthodontic reason. hDPSCs surface markers CD34, CD45, CD90 and CD105 were detected by flow cytometry. Alkaline phosphatase (ALP), alizarin red S (ARS), oil red O staining and colony formation assay were used to identify hDPSCs. After the cell counting kit-8 (CCK-8) detection, the optimal H2O2 concentration was used to construct the hDPSCs oxidative stress model. CGF conditioned medium was prepared by repeated freeze-thaw methods. After CCK-8 detection, the optimum CGF concentration was chosen for the subsequent experiments. The hDPSCs were divided into control group, H2O2 (only H2O2 processing), H2O2+CGF group (H2O2 processing in combination with the CGF) and CGF group (only CGF processing). Subsequent experiments were performed according to these groups. The oxidative stress model was verified by reactive oxygen species, β-galactosidase staining and Western blotting. The effects of CGF on the proliferation and migration of hDPSCs under oxidative stress status were detected by CCK-8 and cell scratch assay, respectively. ALP activity and ARS staining were used to detect the effect of CGF on the osteogenic differentiation of hDPSCs under oxidative stress status. The mRNA expression levels of odontogenesis related genes were detected by real-time fluorescence quantitative PCR (RT-qPCR), and the expression levels of odontogenesis and osteogenesis related proteins were detected by Western blotting. Results: Isolated hDPSCs showed positive expression of mesenchymal stem cells surface markers of CD90, CD105, and negative expression of hematopoietic stem cells surface markers CD34, CD45. The hDPSCs were proved to have the capacity of osteogenic, adipogenic differentiation and clone formation. The optimal concentration to construct the oxidative stress model was 200 μmol/L H2O2. Twenty percent CGF was the optimal concentration for subsequent experiments. Compared with the control group, the expression of aging protein p53 was significantly up-regulated from (0.82±0.12) to (1.19±0.14) in H2O2 group (P<0.05), with deepened β-galactosidase staining and increased fluorescence intensity of reactive oxygen species. The proliferative capacity of cells in H2O2+CGF group on day 1, 3, 5 and 7 (0.23±0.01, 0.50±0.02, 1.60±0.07, 1.80±0.21) were all higher than in H2O2 group (0.15±0.01, 0.14±0.02, 0.50±0.03, 0.90±0.09) (P<0.05). Cell healing capacity of cells in H2O2+CGF group at 12 h and 24 h [(47±7)%, (58±44)%] also increased compared with the H2O2 group [(36±2)%, (44±2)%] (P<0.05), and similar results in the activity of ALP and the formation of mineralized nodules. On day 28, the mRNA expressions of dentin sialophosphoprotein (0.52±0.16) and dental matrix protein 1 (DMP-1) (0.39±0.13) in H2O2 group were all significantly lower than those in H2O2+CGF group (0.96±0.24, 0.83±0.30, respectively) and CGF group (1.12±0.18, 1.23±0.19, respectively) (P<0.05). On day 28, the expressions of odontogenesis related protein DMP-1 (0.27±0.04) and osteogenesis related protein Runt-related transcription factor-2 (0.42±0.15) in H2O2 group were all significantly lower than those in H2O2+CGF group (0.66±0.18, 0.68±0.04) and CGF group (1.15±0.13, 1.06±0.19, respectively) (P<0.05). Conclusions: H2O2 can induce oxidative stress in hDPSCs, while CGF can promote proliferation, migration, odontogenic and osteogenic differentiation of hDPSCs under oxidative stress status.

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来源期刊
中华口腔医学杂志
中华口腔医学杂志 Medicine-Medicine (all)
CiteScore
0.90
自引率
0.00%
发文量
9692
期刊介绍: Founded in August 1953, Chinese Journal of Stomatology is a monthly academic journal of stomatology published publicly at home and abroad, sponsored by the Chinese Medical Association and co-sponsored by the Chinese Stomatology Association. It mainly reports the leading scientific research results and clinical diagnosis and treatment experience in the field of oral medicine, as well as the basic theoretical research that has a guiding role in oral clinical practice and is closely combined with oral clinical practice. Chinese Journal of Over the years, Stomatology has been published in Medline, Scopus database, Toxicology Abstracts Database, Chemical Abstracts Database, American Cancer database, Russian Abstracts database, China Core Journal of Science and Technology, Peking University Core Journal, CSCD and other more than 20 important journals at home and abroad Physical medicine database and retrieval system included.
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