用于激活 3D 打印微流体中脂肪衍生细胞的低成本脉冲发生系统

IF 2.2 Q2 ENGINEERING, MULTIDISCIPLINARY
Marlene Wahlmueller , Bianca Buchegger , Cyrill Slezak , Heinz Redl , Susanne Wolbank , Eleni Priglinger , Armin Hochreiner
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引用次数: 0

摘要

细胞疗法的成功很大程度上取决于患者来源细胞的再生能力,而再生能力差异很大。因此,增强细胞效力至关重要,特别是对于自体应用。生物物理治疗,如体外冲击波治疗(ESWT)已成为一种有前途的工具,以提高细胞的再生潜力,并已在临床实践中应用于治疗多种疾病。我们开发了一种新颖,低成本,小型和适应性强的多模式脉冲产生系统(PGS),可以直接处理3d打印微流体装置中的细胞。我们的新型PGS对脂肪来源细胞的处理首次显示出有希望的结果,包括显著增加细胞三磷酸腺苷(ATP)的释放和增殖。细胞功能的增强可以通过显著增加的成脂分化潜力和向成骨和软骨谱系的趋势来观察。这种新颖的方法具有独特的特点,尺寸小,重量轻,在现有系统中具有更高的灵活性和高可集成性,因此可以克服传统生物物理方法面临的局限性。它使细胞治疗过程和细胞实时监测相结合,因此可能出现在生物打印领域,芯片实验室应用以及未来在许多不同治疗领域的基于细胞治疗的临床应用中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Low-cost pulse generating system for activating adipose-derived cells in 3D-printed microfluidics
The success of cell-based therapies strongly depends on the regenerative capacity of patient-derived cells, which can vary widely. Enhancing cell potency is therefore critical, especially for autologous applications. Biophysical treatment e.g. extracorporeal shockwave therapy (ESWT) has emerged as a promising tool to enhance the regenerative potential of cells and has been applied in clinical practice for the treatment of several diseases. We developed a novel, low-cost, small and adaptable multi-mode pulse generating system (PGS) that enables direct treatment of cells in 3D-printed microfluidic devices. Adipose-derived cell treatment by our novel PGS showed first promising results, including significantly increased cellular adenosine triphosphate (ATP) release and proliferation. Enhanced cell functionality could be observed through a significantly increased adipogenic differentiation potential and a trend towards osteogenic and chondrogenic lineages. This novel approach offers unique characteristics achieved by its small dimensions and light weight that come along with increased flexibility and high integrability in existing systems and could therefore overcome limitations faced by conventional biophysical methods. It enables the combination of the process of cell treatment and live monitoring of cells and could therefore emerge in the field of bioprinting, in lab-on-a-chip applications as well as future clinical applications in cell-based therapies for many different therapeutic fields.
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来源期刊
Applications in engineering science
Applications in engineering science Mechanical Engineering
CiteScore
3.60
自引率
0.00%
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审稿时长
68 days
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