Membrane Channel Research Laboratory, Northeast Normal University, Changchun, China.
Stem Cells Dev. 2012 Sep 1;21(13):2495-507. doi: 10.1089/scd.2011.0597. Epub 2012 Apr 20.
Mesenchymal stem cells (MSCs) are adult stem cells with a self-renewal and multipotent capability and express extensively in multitudinous tissues. We found that water channel aquaporin-5 (AQP5) is expressed in bone marrow-derived MSCs (BMMSCs) in the plasma membrane pattern. BMMSCs from AQP5(-/-) mice showed significantly lower plasma membrane water permeability than those from AQP5(+/+) mice. In characterizing the cultured BMMSCs from AQP5(-/-) and AQP5(+/+) mice, we found no obvious differences in morphology and proliferation between the 2 genotypes. However, the multiple differentiation capacity was significantly higher in AQP5(-/-) than AQP5(+/+) BMMSCs as revealed by representative staining by Oil Red O (adipogenesis); Alizarin Red S and alkaline phosphatase (ALP; osteogenesis); and type II collagen and Safranin O (chondrogenesis) after directional induction. Relative mRNA expression levels of 3 lineage differentiation markers, including PPARγ2, C/EBPα, adipsin, collagen 1a, osteopontin, ALP, collagen 11a, collagen 2a, and aggrecan, were significantly higher in AQP5(-/-) -differentiating BMMSCs, supporting an increased differentiation capacity of AQP5(-/-) BMMSCs. Furthermore, a bone-healing process was accelerated in AQP5(-/-) mice in a drill-hole injury model. Mechanistic studies indicated a significantly lower apoptosis rate in AQP5(-/-) than AQP5(+/+) BMMSCs. Apoptosis inhibitor Z-VAD-FMK increased the differentiation capacity to a greater extent in AQP5(+/+) than AQP5(-/-) BMMSCs. We conclude that AQP5-mediated high plasma membrane water permeability enhances the apoptosis rate of differentiating BMMSCs, thus decreasing their differentiation capacity. These data implicate AQP5 as a novel determinant of differentiation of BMMSCs and therefore a new molecular target for regulating differentiation of BMMSCs during tissue repair and regeneration.
间充质干细胞(MSCs)是具有自我更新和多能性的成体干细胞,广泛表达于多种组织中。我们发现水通道蛋白 aquaporin-5(AQP5)在骨髓来源的间充质干细胞(BMMSCs)的质膜上表达。AQP5(-/-)小鼠的 BMMSCs 的质膜水通透性明显低于 AQP5(+/+)小鼠的 BMMSCs。在对 AQP5(-/-)和 AQP5(+/+)小鼠的 BMMSCs 进行培养特性研究时,我们发现 2 种基因型间的形态和增殖没有明显差异。然而,AQP5(-/-)BMMSCs 的多向分化能力明显高于 AQP5(+/+)BMMSCs,这表现在定向诱导后油红 O(成脂分化)、茜素红 S 和碱性磷酸酶(ALP;成骨分化)、Ⅱ型胶原和番红 O(软骨分化)的代表性染色中。3 种谱系分化标志物(包括 PPARγ2、C/EBPα、脂联素、胶原 1a、骨桥蛋白、ALP、胶原 11a、胶原 2a 和聚集蛋白聚糖)的相对 mRNA 表达水平在 AQP5(-/-)分化的 BMMSCs 中显著升高,支持 AQP5(-/-)BMMSCs 的分化能力增加。此外,在钻孑 L 损伤模型中,AQP5(-/-)小鼠的骨愈合过程加快。机制研究表明,AQP5(-/-)BMMSCs 的细胞凋亡率明显低于 AQP5(+/+)BMMSCs。凋亡抑制剂 Z-VAD-FMK 使 AQP5(+/+)BMMSCs 的分化能力增加的幅度大于 AQP5(-/-)BMMSCs。我们的结论是,AQP5 介导的高质膜水通透性增加了分化中的 BMMSCs 的凋亡率,从而降低了其分化能力。这些数据表明 AQP5 是 BMMSCs 分化的新决定因素,因此是调节组织修复和再生过程中 BMMSCs 分化的新分子靶点。