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[1]王彪,陈国强,赵清乾,等.N钙黏蛋白融合蛋白改性表面增强细胞活性与细胞募集能力的研究[J].天津医科大学学报,2024,30(06):509-513.[doi:10.20135/j.issn.1006-8147.2024.06.0509]
 WANG Biao,CHEN Guoqiang,ZHAO Qingqian,et al.Study on surface modification with N-cadherin fusion protein to enhance cell activity and cell recruitment capability[J].Journal of Tianjin Medical University,2024,30(06):509-513.[doi:10.20135/j.issn.1006-8147.2024.06.0509]
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N钙黏蛋白融合蛋白改性表面增强细胞活性与细胞募集能力的研究(PDF)
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《天津医科大学学报》[ISSN:1006-8147/CN:12-1259/R]

卷:
30卷
期数:
2024年06期
页码:
509-513
栏目:
基础医学
出版日期:
2024-11-20

文章信息/Info

Title:
Study on surface modification with N-cadherin fusion protein to enhance cell activity and cell recruitment capability
文章编号:
1006-8147(2024)06-0509-05
作者:
王彪12陈国强3赵清乾1万文涛1杨军3杨强2
(1.天津医科大学研究生院,天津 300070;2.天津大学天津医院脊柱外科,天津 300211;3.南开大学生命科学学院,生物活性材料教育部重点实验室,天津 300071)
Author(s):
WANG Biao12CHEN Guoqiang3ZHAO Qingqian1WAN Wentao1YANG Jun3YANG Qiang2
(1.Graduate School of Tianjin Medical University,Tianjin 300070,China;2.Department of Spine Surgery,Tianjin Hospital,Tianjin University,Tianjin 300211,China;3.The Key Laboratory of Bioactive Materials,Ministry of Education,College of Life Science,Nankai University,Tianjin 300071,China)
关键词:
钙黏蛋白表面改性间充质干细胞基质细胞衍生因子-1
Keywords:
cadherinsurface modificationmesenchymal stem cellsstromal cell-derived factor-1
分类号:
R318
DOI:
10.20135/j.issn.1006-8147.2024.06.0509
文献标志码:
A
摘要:
目的:探究N钙黏蛋白融合蛋白改性表面培养人脐带间充质干细胞(HUCMSCs)对细胞活性与细胞募集能力的影响。方法:对聚苯乙烯(TCP)培养皿表面分别行磷酸缓冲盐溶液(PBS)浸润、N钙黏蛋白融合蛋白改性处理,通过水接触角实验检测表面亲水性,将HUCMSCs分别接种于PBS浸润(对照组)和N钙黏蛋白融合蛋白改性(改性组)的培养皿,利用CCK-8评估细胞活性,通过划痕实验、迁移实验评估N钙黏蛋白融合蛋白改性表面培养HUCMSCs对细胞募集能力的影响,通过RT-qPCR和ELISA评估基质细胞衍生因子-1(SDF-1)的基因表达和旁分泌变化。结果:水接触角检测显示对照组培养皿表面水接触角高于改性组培养皿表面水接触角(t=41.99,P<0.01);CCK-8实验结果显示,培养 1 d 改性组细胞活性明显高于对照组(t=2.907,P<0.05);划痕实验结果显示体外培养12 、24 h后,改性组划痕愈合面积均高于对照组(t=4.144、17.75,均P<0.05);迁移实验结果显示改性组募集到上室下层的细胞数量高于对照组(t=23.14,P<0.01); RT-qPCR结果显示,改性组SDF-1基因表达上调(t=29.01,P<0.01);ELISA结果显示,改性组SDF-1因子旁分泌高于对照组(t=4.681,P<0.01)。结论:利用N钙黏蛋白融合蛋白改性表面培养HUCMSCs,可增强细胞活性及细胞募集能力。
Abstract:
Objective:To investigate the effect of surface-modified culture of human umbilical cord mesenchymal stem cells (HUCMSCs) using N-calmodulin fusion proteins on cell activity and cell recruitment capacity. Methods:Polystyrene (TCP) culture dishes were treated with phosphate-buffered saline (PBS) infiltration and N-cadherin fusion protein modification,respectively. Surface hydrophilicity was detected by water contact angle test. HUCMSCs were inoculated onto PBS-infiltrated (control group) and N-cadherin fusion protein-modified (modified group) culture dishes. The CCK-8 assay was used to evaluate cell viability,while wound healing assay and migration assay were used to evaluate the effect of N-cadherin fusion protein modified surfaces on the cell recruitment capability of HUCMSCs. RT-qPCR and ELISA were used to assess the gene expression and paracrine changes of the stromal cell-derived factor-1 (SDF-1). Results:Water contact angle measurements showed that the water contact angle of the control tissue culture dish was higher than that of the modified group (t=41.99,P<0.01). The CCK-8 assay results showed that the cell viability of the aggregates in the modified group was significantly higher than that in the control group on day 1 (t=2.907,P<0.05). Scratch assay results demonstrated that after 12 hours and 24 hours of in vitro culturing,the modified group showed larger scratch healing areas compared with the control group (t=4.144,17.75,both P<0.05). The results of the migration assay showed that the number of cells recruited to the lower layer of the upper chamber was higher in the modified group than in the control group(t=23.14,P<0.01). RT-qPCR results showed SDF-1 gene expression was up-regulated in the modified group (t=29.01,P<0.01),while ELISA results showed that the paracrine secretion of SDF-1 factor in the modified group was higher than that in the control group (t=4.681,P<0.01). Conclusion:Modifying the surface of HUCMSCs with N-cadherin fusion protein can enhance cell viability and cell recruitment capability.

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备注/Memo

备注/Memo:
基金项目 国家自然科学基金面上项目(81871782);天津市科学技术局应用基础研究多元投入基金重点项目(21JCZDJC01040);天津市科技计划项目(21ZXJBSY00130)
作者简介 王彪(1998-),男,硕士在读,研究方向:干细胞与组织工程;
通信作者:杨强,E-mail:yangqiang1980@126.com。
更新日期/Last Update: 2024-11-25