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首页> 外文期刊>Journal of orthopaedic research >Gene expression profiles of the meniscus avascular phenotype: A guide for meniscus tissue engineering
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Gene expression profiles of the meniscus avascular phenotype: A guide for meniscus tissue engineering

机译:弯月面腺体表型的基因表达谱:弯月面包组织工程指南

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ABSTRACT Avascular (Avas) meniscus regeneration remains a challenge, which is partly a consequence of our limited knowledge of the cells that maintain this tissue region. In this study, we utilized microarrays to characterize gene expression profiles of intact human Avas meniscus tissue and of cells following culture expansion. Using these data, we examined various 3D culture conditions to redifferentiate Avas cells toward the tissue phenotype. RNA was isolated from either the tissue directly or following cell isolation and 2 weeks in monolayer culture. RNA was hybridized on human genome arrays. Differentially expressed (DE) genes were identified by ranking analysis. DAVID pathway analysis was performed and visualized using STRING analysis. Quantitative PCR (qPCR) on additional donor menisci (tissues and cells) were used to validate array data. Avas cells cultured in 3D were subjected to qPCR to compare with the array‐generated data. A total of 387 genes were DE based on differentiation state (3‐fold change; p ??0.01). In Avas‐cultured cells, the upregulated pathways included focal adhesion, ECM‐receptor interaction, regulation of actin cytoskeleton, and PDGF Signaling. In 3D‐cultured Avas cells, TGFβ1 or combinations of TGFβ1 and BMP6 were most effective to promote an Avas tissue phenotype. THBS2 and THBS4 expression levels were identified as a means to denote meniscus cell phenotype status. We identified the key gene expression profiles, new markers and pathways involved in characterizing the Avas meniscus phenotype in the native state and during in vitro dedifferentiation and redifferentiation. These data served to screen 3D conditions to generate meniscus‐like neotissues. ? 2018 Orthopaedic Research Society. Published by Wiley Periodicals, Inc. J Orthop Res 36:1947–1958, 2018.
机译:摘要缺血(AVAS)半月板再生仍然是一个挑战,这是我们对维持该组织区域的细胞的有限知识的结果。在该研究中,我们利用微阵列来表征完整的人AVAS弯月面包组织和培养膨胀后细胞的基因表达谱。使用这些数据,我们检查了各种3D培养条件,以将AVAS细胞朝向组织表型重新分析。直接或在单层培养中直接或后,在细胞分离和2周内分离RNA。 RNA对人类基因组阵列杂交。通过排序分析来鉴定差异表达(DE)基因。使用字符串分析进行David路径分析并可视化。用于额外供体肿瘤(组织和细胞)的定量PCR(QPCR)用于验证阵列数据。在3D中培养的AVAS细胞进行QPCR以与阵列产生的数据进行比较。总共387个基因基于分化状态(& 3倍变化;p≤0.01)。在培养培养的细胞中,上调途径包括局部粘附,ECM-受体相互作用,肌动蛋白细胞骨架的调节和PDGF信号传导。在3D培养的AVAS细胞中,TGFβ1或TGFβ1和BMP6的组合最有效地促进AVAS组织表型。将THBS2和THBS4表达水平识别为表示弯月面细胞表型状态的手段。我们鉴定了在原生州和体外消化膜中表征AVAS弯月型表型的关键基因表达谱,新标记和途径。这些数据用于筛选3D条件以生成弯月面样的新生。还2018骨科研究会。由Wiley Hearyicals,Inc.J Orthop Res 36:1947-1958,2018出版。

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