...
首页> 外文期刊>Nanoscale >Culturing human iPSC-derived neural progenitor cells on nanowire arrays: mapping the impact of nanowire length and array pitch on proliferation, viability, and membrane deformation
【24h】

Culturing human iPSC-derived neural progenitor cells on nanowire arrays: mapping the impact of nanowire length and array pitch on proliferation, viability, and membrane deformation

机译:人类iPSC-derived神经祖细胞培养细胞在纳米线阵列:映射的影响纳米线长度和数组在扩散,生存能力和膜变形

获取原文
获取原文并翻译 | 示例

摘要

Nanowire arrays used as cell culture substrates build a potent tool for advanced biological applications such as cargo delivery and biosensing. The unique topography of nanowire arrays, however, renders them a challenging growth environment for cells and explains why only basic cell lines have been employed in existing studies. Here, we present the culturing of human induced pluripotent stem cell-derived neural progenitor cells on rectangularly arranged nanowire arrays: In detail, we mapped the impact on proliferation, viability, and topography-induced membrane deformation across a multitude of array pitches (1, 3, 5, 10 μm) and nanowire lengths (1.5, 3, 5 μm). Against the intuitive expectation, a reduced proliferation was found on the arrays with the smallest array pitch of 1 μm and long NWs. Typically, cells settle in a fakir-like state on such densely-spaced nanowires and thus experience no substantial stress caused by nanowires indenting the cell membrane. However, imaging of F-actin showed a distinct reorganization of the cytoskeleton along the nanowire tips in the case of small array pitches interfering with regular proliferation. For larger pitches, the cell numbers depend on the NW lengths but proliferation generally continued although heavy deformations of the cell membrane were observed caused by the encapsulation of the nanowires. Moreover, we noticed a strong interaction of the nanowires with the nucleus in terms of squeezing and indenting. Remarkably, the cell viability is maintained at about 85% despite the massive deformation of the cells. Considering the enormous potential of human induced stem cells to study neurodegenerative diseases and the high cellular viability combined with a strong interaction with nanowire arrays, we believe that our results pave the way to apply nanowire arrays to human stem cells for future applications in stem cell research and regenerative medicine.
机译:纳米线阵列作为细胞培养基质建立一个强有力的工具,先进的生物应用,如货物交付和若。然而,数组,使他们具有挑战性为细胞生长环境,解释了为什么只有基本的细胞系一直忙着现有的研究。的人类诱导多能干细胞神经祖细胞在矩形的安排纳米线阵列:详细,我们绘制了影响在增殖、生存能力和在一个topography-induced膜变形大量的数组球(1、3、5、10μm)纳米线的长度(1.5,3、5μm)。直观的期望,降低扩散在最小的数组的数组被发现吗距1μm, NWs长。解决fakir-like状态等密集纳米线,因此没有经验大量的压力造成的纳米线缩进细胞膜。显示不同的重组细胞骨架在纳米线的技巧小数组的音调干扰规律扩散。但数字依赖于NW长度扩散通常持续尽管沉重变形的细胞膜被观察到由于纳米线的封装。此外,我们注意到的强相互作用纳米线与细胞核挤压和缩进。保持在85%左右,尽管巨大的细胞的变形。人类诱导干细胞的潜力巨大研究神经退行性疾病和高细胞生存能力加上强劲与纳米线阵列,我们相信我们的研究结果应用纳米线阵列铺平了道路为未来的应用对人类干细胞干细胞和再生医学的研究。

著录项

获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号