Bioengineering College, Chongqing University, Chongqing, China.
PLoS One. 2011;6(10):e26029. doi: 10.1371/journal.pone.0026029. Epub 2011 Oct 7.
Neural crest stem cells (NCSCs) play an important role in the development and represent a valuable cell source for tissue engineering. However, how mechanical factors in vivo regulate NCSC differentiation is not understood. Here NCSCs were derived from induced pluripotent stem cells and used as a model to determine whether vascular mechanical strain modulates the differentiation of NCSCs into smooth muscle (SM) lineage. NCSCs were cultured on micropatterned membranes to mimic the organization of smooth muscle cells (SMCs), and subjected to cyclic uniaxial strain. Mechanical strain enhanced NCSC proliferation and ERK2 phosphorylation. In addition, mechanical strain induced contractile marker calponin-1 within 2 days and slightly induced SM myosin within 5 days. On the other hand, mechanical strain suppressed the differentiation of NCSCs into Schwann cells. The induction of calponin-1 by mechanical strain was inhibited by neural induction medium but further enhanced by TGF-β. For NCSCs pre-treated with TGF-β, mechanical strain induced the gene expression of both calponin-1 and SM myosin. Our results demonstrated that mechanical strain regulates the differentiation of NCSCs in a manner dependent on biochemical factors and the differentiation stage of NCSCs. Understanding the mechanical regulation of NCSC differentiation will shed light on the development and remodeling of vascular tissues, and how transplanted NCSCs respond to mechanical factors.
神经嵴干细胞 (NCSCs) 在发育中起着重要作用,是组织工程中非常有价值的细胞来源。然而,体内的力学因素如何调节 NCSC 的分化尚不清楚。本研究中,我们从诱导多能干细胞中分离出 NCSCs 作为模型,以确定血管力学应变是否调节 NCSC 向平滑肌 (SM) 谱系分化。我们将 NCSCs 培养在微图案化膜上,以模拟平滑肌细胞 (SMCs) 的组织,然后对其施加循环单轴应变。力学应变增强了 NCSC 的增殖和 ERK2 磷酸化。此外,力学应变在 2 天内诱导收缩标志物钙调蛋白 1,在 5 天内轻微诱导 SM 肌球蛋白。另一方面,力学应变抑制 NCSC 向施万细胞分化。神经诱导培养基可抑制力学应变诱导的钙调蛋白 1 表达,但可进一步增强 TGF-β的诱导作用。对于 TGF-β预处理的 NCSCs,力学应变诱导钙调蛋白 1 和 SM 肌球蛋白的基因表达。我们的研究结果表明,力学应变以依赖于生化因素和 NCSC 分化阶段的方式调节 NCSC 的分化。了解 NCSC 分化的力学调节机制将有助于阐明血管组织的发育和重塑,以及移植的 NCSC 如何响应力学因素。