|本期目录/Table of Contents|

[1]谭乔燕 王权 旷梁 谢杨丽 李灿 罗凤涛 杜晓兰 陈林.小鼠关节软骨表层细胞分离培养及鉴定[J].国际骨科学杂志,2018,05:326.
 TAN Qiaoyan,WANG Quan,KUANG Liang,et al.Isolation, culture and identification of cells in the superficial zone of mouse articular cartilage[J].International Journal of Orthopaedics,2018,05:326.
点击复制

小鼠关节软骨表层细胞分离培养及鉴定(PDF)

《国际骨科学杂志》[ISSN:1673-7083/CN:31-1952/R]

期数:
2018年05期
页码:
326
栏目:
实验研究
出版日期:
2018-09-25

文章信息/Info

Title:
Isolation, culture and identification of cells in the superficial zone of mouse articular cartilage
作者:
谭乔燕 王权 旷梁 谢杨丽 李灿 罗凤涛 杜晓兰 陈林
400042 重庆, 陆军军医大学大坪医院全军战创伤中心创伤实验室(谭乔燕、王权、旷梁、谢杨丽、李灿、罗凤涛、杜晓兰、陈林)、骨代谢与修复中心(陈林)、创伤、烧伤、复合伤国家重点实验室(谢杨丽、杜晓兰、陈林)
Author(s):
TAN Qiaoyan1 WANG Quan1 KUANG Liang1 XIE Yangli13 LI Can1 LUO Fengtao1 DU Xiaolan13 CHEN Lin123
Trauma Center, Research Institute of Surgery, Daping Hospital, Army Medical University1, Chongqing 400042, China; Center of Bone Metabolism and Repair2, Chongqing 400042, China; State Key Laboratory of Trauma, Burns and Combined Inju
关键词:
纤连蛋白类 关节软骨 干细胞 细胞分化 再生
Keywords:
Fibronectins Cartilage articular Stem cells Cell differentiation Regeneration
分类号:
-
DOI:
10.3969/j.issn.1673-7083.2018.05.014
文献标识码:
-
摘要:
目的 分离培养小鼠关节软骨表层细胞(ACSC)并鉴定其干细胞特性。方法 运用纤连蛋白黏附法从3~5 d新生小鼠膝关节软骨表层分离细胞及培养,对分离细胞以流式细胞仪检测干细胞表面阳性标志物(CD44与CD90)和阴性标志物(CD45、CD31与CD34)的表达; 实时荧光定量逆转录-聚合酶链反应(qRT-PCR)检测相关基因表达; 单克隆形成实验检测克隆形成能力。三系诱导分化(成软骨、成骨与成脂分化)检测分离培养细胞的多向分化潜能。取第6代分离培养细胞做裸鼠皮下移植实验,检测其体内成软骨能力。结果 纤连蛋白
Abstract:
Objective To isolate and culture mouse articular cartilage superficial zone cell(ACSC), and identify their characteristics.Methods Cells were isolated from mouse articular cartilage superficial zone by fibronectin-conglutination assay. The expression of p

参考文献/References


[1] Karlsson C, Thornemo M, Henriksson HB, et al. Identification of a stem cell niche in the zone of Ranvier within the knee joint[J]. J Anat, 2009, 215(3): 355-363.
[2] Xue K, Zhang X, Qi L, et al. Isolation, identification, and comparison of cartilage stem progenitor/cells from auricular cartilage and perichondrium[J]. Am J Transl Res, 2016, 8(2): 732-741.
[3] Derks M, Sturm T, Haverich A, et al. Isolation and chondrogenic differentiation of porcine perichondrial progenitor cells for the purpose of cartilage tissue engineering[J]. Cells Tissues Organs, 2013, 198(3): 179-189.
[4] Kobayashi S, Takebe T, Inui M, et al. Reconstruction of human elastic cartilage by a CD44+ CD90+ stem cell in the ear perichondrium[J]. Proc Natl Acad Sci U S A, 2011, 108(35): 14479-14484.
[5] Kobayashi S, Takebe T, Zheng YW, et al. Presence of cartilage stem/progenitor cells in adult mice auricular perichondrium[J]. PLoS One, 2011, 6(10): e26393.
[6] Fellows CR, Matta C, Zakany R, et al. Adipose, bone marrow and synovial joint-derived mesenchymal stem cells for cartilage repair[J]. Front Genet, 2016, 7: 213.
[7] Candela ME, Yasuhara R, Iwamoto M, et al. Resident mesenchymal progenitors of articular cartilage[J]. Matrix Biol, 2014, 39: 44-49.
[8] Lotz M, Loeser RF. Effects of aging on articular cartilage homeostasis[J]. Bone, 2012, 51(2): 241-248.
[9] Caramés B, Taniguchi N, Seino D, et al. Mechanical injury suppresses autophagy regulators and pharmacologic activation of autophagy results in chondroprotection[J]. Arthritis Rheum, 2012, 64(4): 1182-1192.
[10] Jones PH, Watt FM. Separation of human epidermal stem cells from transit amplifying cells on the basis of differences in integrin function and expression[J]. Cell, 1993, 73(4): 713-724.
[11] He N, Dong Z, Tao L, et al. Isolation and characterization of hair follicle stem cells from Arbas Cashmere goat[J]. Cytotechnology, 2016, 68(6): 2579-2588.
[12] Li L, Ma Y, Li X, et al. Isolation, culture, and characterization of chicken cartilage stem/progenitor cells[J]. Biomed Res Int, 2015, 2015: 586290.
[13] Yasuhara R, Ohta Y, Yuasa T, et al. Roles of beta-catenin signaling in phenotypic expression and proliferation of articular cartilage superficial zone cells[J]. Lab Invest, 2011, 91(12): 1739-1752.
[14] Koyama E, Shibukawa Y, Nagayama M, et al. A distinct cohort of progenitor cells participates in synovial joint and articular cartilage formation during mouse limb skeletogenesis[J]. Dev Biol, 2008, 316(1): 62-73.
[15] Dowthwaite GP, Bishop JC, Redman SN, et al. The surface of articular cartilage contains a progenitor cell population[J]. J Cell Sci, 2004, 117(Pt 6): 889-897.
[16] Iwamoto M, Tamamura Y, Koyama E, et al. Transcription factor ERG and joint and articular cartilage formation during mouse limb and spine skeletogenesis[J]. Dev Biol, 2007, 305(1): 40-51.
[17] Burke J, Hunter M, Kolhe R, et al. Therapeutic potential of mesenchymal stem cell based therapy for osteoarthritis[J]. Clin Transl Med, 2016, 5(1): 27.
[18] Freitag J, Bates D, Boyd R, et al. Mesenchymal stem cell therapy in the treatment of osteoarthritis: reparative pathways, safety and efficacy. A review[J]. BMC Musculoskelet Disord, 2016, 17: 230.
[19] Zhang W, Ouyang H, Dass CR, et al. Current research on pharmacologic and regenerative therapies for osteoarthritis[J]. Bone Res, 2016, 4: 15040.
[20] Jiang Y, Cai Y, Zhang W, et al. Human cartilage-derived progenitor cells from committed chondrocytes for efficient cartilage repair and regeneration[J]. Stem Cells Transl Med, 2016, 5(6): 733-744.
[21] Seol D, McCabe DJ, Choe H, et al. Chondrogenic progenitor cells respond to cartilage injury[J]. Arthritis Rheum, 2012, 64(11): 3626-3637.

备注/Memo

备注/Memo:
基金项目: 国家重点基础研究发展计划(2014CB942904)、国家自然科学基金(81530071)、国家自然科学基金(81472074)
作者单位: 400042 重庆, 陆军军医大学大坪医院全军战创伤中心创伤实验室(谭乔燕、王权、旷梁、谢杨丽、李灿、罗凤涛、杜晓兰、陈林)、骨代谢与修复中心(陈林)、创伤、烧伤、复合伤国家重点实验室(谢杨丽、杜晓兰、陈林)
通信作者: 陈林 E-mail: linchen70@163.com
更新日期/Last Update: 2018-09-25