首页> 美国卫生研究院文献>PLoS Clinical Trials >Smooth Muscle-Like Cells Generated from Human Mesenchymal Stromal Cells Display Marker Gene Expression and Electrophysiological Competence Comparable to Bladder Smooth Muscle Cells
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Smooth Muscle-Like Cells Generated from Human Mesenchymal Stromal Cells Display Marker Gene Expression and Electrophysiological Competence Comparable to Bladder Smooth Muscle Cells

机译:从人间质基质细胞产生的平滑肌样细胞显示出与膀胱平滑肌细胞相当的标记基因表达和电生理能力

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摘要

The use of mesenchymal stromal cells (MSCs) differentiated toward a smooth muscle cell (SMC) phenotype may provide an alternative for investigators interested in regenerating urinary tract organs such as the bladder where autologous smooth muscle cells cannot be used or are unavailable. In this study we measured the effects of good manufacturing practice (GMP)-compliant expansion followed by myogenic differentiation of human MSCs on the expression of a range of contractile (from early to late) myogenic markers in relation to the electrophysiological parameters to assess the functional role of the differentiated MSCs and found that differentiation of MSCs associated with electrophysiological competence comparable to bladder SMCs. Within 1–2 weeks of myogenic differentiation, differentiating MSCs significantly expressed alpha smooth muscle actin (αSMA; ACTA2), transgelin (TAGLN), calponin (CNN1), and smooth muscle myosin heavy chain (SM-MHC; MYH11) according to qRT-PCR and/or immunofluorescence and Western blot. Voltage-gated Na+ current levels also increased within the same time period following myogenic differentiation. In contrast to undifferentiated MSCs, differentiated MSCs and bladder SMCs exhibited elevated cytosolic Ca2+ transients in response to K+-induced depolarization and contracted in response to K+ indicating functional maturation of differentiated MSCs. Depolarization was suppressed by Cd2+, an inhibitor of voltage-gated Ca2+-channels. The expression of Na+-channels was pharmacologically identified as the Nav1.4 subtype, while the K+ and Ca2+ ion channels were identified by gene expression of KCNMA1, CACNA1C and CACNA1H which encode for the large conductance Ca2+-activated K+ channel BKCa channels, Cav1.2 L-type Ca2+ channels and Cav3.2 T-type Ca2+ channels, respectively. This protocol may be used to differentiate adult MSCs into smooth muscle-like cells with an intermediate-to-late SMC contractile phenotype exhibiting voltage-gated ion channel activity comparable to bladder SMCs which may be important for urological regenerative medicine applications.
机译:向平滑肌细胞(SMC)表型分化的间充质基质细胞(MSC)的使用可能为研究者提供了替代选择,这些研究者对不能使用或无法使用自体平滑肌细胞的膀胱等泌尿道器官感兴趣。在这项研究中,我们测量了良好生产规范(GMP)顺应性扩张,随后人类MSC的成肌分化对一系列收缩性(从早到晚)成肌标志物的表达与电生理参数相关的影响,以评估功能分化的MSC的作用,发现与电生理功能相关的MSC分化与膀胱SMC相当。根据qRT-分析,在成肌分化的1-2周内,分化中的MSC会显着表达α平滑肌肌动蛋白(αSMA; ACTA2),转胶蛋白(TAGLN),钙蛋白(CNN1)和平滑肌肌球蛋白重链(SM-MHC; MYH11)。 PCR和/或免疫荧光和蛋白质印迹。在成肌分化后的同一时间段内,电压门控Na + 电流水平也增加。与未分化的MSC相比,分化的MSC和膀胱SMC在响应K + 引起的去极化时表现出升高的胞浆Ca 2 + 瞬变,并在响应K +时收缩表示分化的MSC的功能成熟。 Cd 2 + 是电压门控Ca 2 + 通道的抑制剂,可抑制去极化。在药理学上,Na + 通道的表达被鉴定为Nav1.4亚型,而K + 和Ca 2 + 离子通道被鉴定通过编码大量电导Ca 2 + 激活的K + 通道BKCa通道,Cav1.2 L型Ca 的KCNMA1,CACNA1C和CACNA1H的基因表达2 + 通道和Cav3.2 T型Ca 2 + 通道。该协议可用于将成年MSC分化为平滑肌样细胞,其中晚期SMC收缩表型表现出与膀胱SMC相当的电压门控离子通道活性,这对于泌尿外科再生医学应用可能很重要。

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