Chinese Journal of Tissue Engineering Research ›› 2026, Vol. 30 ›› Issue (31): 8100-8107.doi: 10.12307/2026.848
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Zhou Jinlong1, 2, Wang Juan2, Bian Lu2, 3, Lyu Long2, Que Yunduan1, Qian Wenwu1
Received:2025-09-26
Accepted:2026-02-13
Online:2026-11-08
Published:2026-05-23
Contact:
Qian Wenwu, Master’s supervisor, Associate chief physician, Department of Orthopedics, Nanjing Gaochun People’s Hospital Affiliated to Jiangsu Health Vocational College, Nanjing 211300, Jiangsu Province, China
About author:Zhou Jinlong, MS candidate, Attending physician, Department of Orthopedics, Nanjing Gaochun People’s Hospital Affiliated to Jiangsu Health Vocational College, Nanjing 211300, Jiangsu Province, China; Central Laboratory, Gaochun Hospital Affiliated to Jiangsu University, Nanjing 211300, Jiangsu Province, China
Supported by:CLC Number:
Zhou Jinlong, Wang Juan, Bian Lu, Lyu Long, Que Yunduan, Qian Wenwu. Modulation of nasal mucosa-derived ectomesenchymal stem cell senescence by mechanical modulus[J]. Chinese Journal of Tissue Engineering Research, 2026, 30(31): 8100-8107.
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2.1 外胚层间充质干细胞表面标志物与衰老标志物的鉴定结果 外胚层间充质干细胞是一群高表达波形蛋白、CD44、CD133而CD14阴性的细胞群[10]。该研究对第3代外胚层间充质干细胞进行上述表面标志物免疫荧光染色,结果显示第3代外胚层间充质干细胞高表达波形蛋白、CD44、CD133,与以往报道一致(图1A)。经过连续传代培养后,第7代外胚层间充质干细胞中β-半乳糖苷酶染色阳性细胞比例最高(图1B,D)。免疫荧光染色(图1C)观察到p16和p21荧光强度随代数增加而升高(图1E,F);RT-qPCR检测衰老标志物p21、p53和p16的mRNA表达水平也随之提高(图1G-I)。这说明使用培养板培养的外胚层间充质干细胞,从第5代细胞开始会进入一个快速衰老期。因此,对第5代细胞进行特殊干预可能会延缓衰老。 "
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