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利用确定性侧向位移对原代人成骨祖细胞进行无标记富集。

Label-free enrichment of primary human skeletal progenitor cells using deterministic lateral displacement.

机构信息

Faculty of Physical Sciences and Engineering, and Institute for Life Sciences, University of Southampton, SO17 1BJ, UK.

出版信息

Lab Chip. 2019 Jan 29;19(3):513-523. doi: 10.1039/c8lc01154k.

Abstract

Skeletal stem cells (SSCs) are present in bone marrow (BM) and offer great potential for bone regenerative therapies. However, in the absence of a unique marker, current sorting approaches remain challenging in the quest for simple strategies to deliver SSCs with consistent regeneration and differentiation capacities. Microfluidics offers the possibility to sort cells marker-free, based on intrinsic biophysical properties. Recent studies indicate that SSCs are stiffer than leukocytes and are contained within the larger cell fraction in BM. This paper describes the use of deterministic lateral displacement (DLD) to sort SSCs based on cell size and stiffness. DLD is a technology that uses arrays of micropillars to sort cells based on their diameter. Cell deformation within the device can change the cell size and affect sorting - here evidenced using human cell lines and by fractionation of expanded SSCs. Following sorting, SSCs remained viable and retained their capacity to form clonogenic cultures (CFU-F), indicative of stem cell potential. Additionally, larger BM cells showed enhanced capacity to form CFU-F. These findings support the theory that SSCs are more abundant within the larger BM cell fraction and that DLD, or other size-based approaches, could be used to provide enriched SSC populations with significant implications for stem cell research and translation to the clinic.

摘要

骨骼干细胞 (SSCs) 存在于骨髓 (BM) 中,为骨再生治疗提供了巨大的潜力。然而,由于缺乏独特的标记物,目前的分选方法仍然具有挑战性,难以寻求简单的策略来输送具有一致再生和分化能力的 SSCs。微流控技术提供了基于固有生物物理特性进行无标记细胞分选的可能性。最近的研究表明,SSCs 比白细胞更硬,并且包含在 BM 中的较大细胞部分中。本文描述了使用确定性侧向位移 (DLD) 根据细胞大小和刚度对 SSCs 进行分选。DLD 是一种使用微柱阵列根据细胞直径对细胞进行分选的技术。细胞在设备内的变形会改变细胞大小并影响分选 - 这里使用人细胞系和扩展 SSCs 的分馏来证明。分选后,SSCs 仍然保持活力并保留形成集落形成单位 (CFU-F) 的能力,这表明具有干细胞潜力。此外,较大的 BM 细胞显示出增强形成 CFU-F 的能力。这些发现支持了 SSCs 在较大的 BM 细胞部分中更为丰富的理论,并且 DLD 或其他基于尺寸的方法可用于提供富含 SSC 的群体,这对干细胞研究和转化为临床应用具有重要意义。

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