Jayasinghe Suwan N, Irvine Scott, McEwan Jean R
University College London, Department of Mechanical Engineering, Torrington Place, London, UK.
Nanomedicine (Lond). 2007 Aug;2(4):555-67. doi: 10.2217/17435889.2.4.555.
We recently pioneered the cell electrospinning of living cells as viable biological threads and scaffolds. In that study, we demonstrated the process with an immortalized human brain astrocytoma (1321N1, European Collection of Cell Cultures) cell line at a cell concentration of 10(6) cells/ml. The next stage was to demonstrate the ability to cell electrospin primary living cells at cell concentrations of 10(7) cells/ml (the highest-ever cell concentration threaded by any threading methodology). Furthermore, the post-threaded cells needed their viability assessed over a long period of time by way of flow cytometry, which accurately assesses the viable cell populations.
MATERIALS & METHODS: In this work, we employ primary porcine vascular and rabbit aorta smooth-muscle cells prepared as cellular suspensions at cell concentrations of 10(7) cells/ml. The cell electrospinning device employs a coaxial needle arrangement that enables the flow of either highly concentrated cellular suspension in the inner needle while the outer needle accommodates the flow of a viscoelasticity medical-grade polydimethylsiloxane medium. Cell viability was assessed over a long timeframe by way of flow cytometry in comparison with controls.
RESULTS & DISCUSSION: The work reported here demonstrates the ability to cell electrospin primary living organisms as highly concentrated cellular suspensions. The viable population of cells post-cell electrospinning are significant and remain viable over both the short and long term, as assessed by flow cytometry.
Our work elucidates the ability to cell electrospin primary cells as highly concentrated cellular suspensions. The post-cell electrospun organisms are viable over long periods of time, demonstrating a significant active cell population when compared with controls.
我们最近开创了将活细胞进行电纺丝制成可行的生物纤维和支架的方法。在那项研究中,我们使用永生化的人脑星形细胞瘤(1321N1,欧洲细胞培养物保藏中心)细胞系,以10⁶ 个细胞/毫升的细胞浓度展示了该过程。下一阶段是要证明能够以10⁷ 个细胞/毫升的细胞浓度对原代活细胞进行电纺丝(这是任何纺丝方法所纺丝的最高细胞浓度)。此外,纺丝后的细胞需要通过流式细胞术在很长一段时间内评估其活力,流式细胞术能准确评估活细胞群体。
在这项工作中,我们使用原代猪血管平滑肌细胞和兔主动脉平滑肌细胞,将其制备成细胞浓度为10⁷ 个细胞/毫升的细胞悬液。细胞电纺丝装置采用同轴针配置,使得高浓度细胞悬液在内针中流动,而外针容纳粘弹性医用级聚二甲基硅氧烷介质的流动。与对照组相比,通过流式细胞术在较长时间范围内评估细胞活力。
此处报道的工作证明了能够将原代活生物体作为高浓度细胞悬液进行电纺丝。通过流式细胞术评估,电纺丝后活细胞群体数量可观,并且在短期和长期内均保持活力。
我们的工作阐明了将原代细胞作为高浓度细胞悬液进行电纺丝的能力。电纺丝后的生物体在很长一段时间内保持活力,与对照组相比显示出大量的活性细胞群体。