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Thermo-responsive cell culture carrier: Effects on macrophage functionality and detachment efficiency

机译:热响应细胞培养载体:对巨噬细胞功能和分离效率的影响

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摘要

Harvesting cultivated macrophages for tissue engineering purposes by enzymatic digestion of cell adhesion molecules can potentially result in unintended activation, altered function, or behavior of these cells. Thermo-responsive polymer is a promising tool that allows for gentle macrophage detachment without artificial activation prior to subculture within engineered tissue constructs. We therefore characterized different species of thermo-responsive polymers for their suitability as cell substrate and to mediate gentle macrophage detachment by temperature shift. Primary human monocyte- and THP-1-derived macrophages were cultured on thermo-responsive polymers and characterized for phagocytosis and cytokine secretion in response to lipopolysaccharide stimulation. We found that both cell types differentially respond in dependence of culture and stimulation on thermo-responsive polymers. In contrast to THP-1 macrophages, primary monocyte–derived macrophages showed no signs of impaired viability, artificial activation, or altered functionality due to culture on thermo-responsive polymers compared to conventional cell culture. Our study demonstrates that along with commercially available UpCell carriers, two other thermo-responsive polymers based on poly(vinyl methyl ether) blends are attractive candidates for differentiation and gentle detachment of primary monocyte–derived macrophages. In summary, we observed similar functionality and viability of primary monocyte–derived macrophages cultured on thermo-responsive polymers compared to standard cell culture surfaces. While this first generation of custom-made thermo-responsive polymers does not yet outperform standard culture approaches, our results are very promising and provide the basis for exploiting the unique advantages offered by custom-made thermo-responsive polymers to further improve macrophage culture and recovery in the future, including the covalent binding of signaling molecules and the reduction of centrifugation and washing steps. Optimizing these and other benefits of thermo-responsive polymers could greatly improve the culture of macrophages for tissue engineering applications.
机译:通过酶消化细胞粘附分子来收获用于组织工程目的的培养巨噬细胞可能会导致这些细胞的意外激活,功能改变或行为。热响应性聚合物是一种有前途的工具,可以在工程组织构建体中进行继代培养之前,实现轻柔的巨噬细胞分离而无需人工激活。因此,我们表征了不同种类的热响应性聚合物,因为它们适合作为细胞底物并通过温移介导温和的巨噬细胞脱离。将原代人单核细胞和THP-1衍生的巨噬细胞培养在热响应性聚合物上,并对响应脂多糖刺激的吞噬作用和细胞因子分泌进行表征。我们发现,两种细胞类型都依赖于对热响应性聚合物的培养和刺激而不同地响应。与THP-1巨噬细胞相反,与传统的细胞培养相比,原代单核细胞衍生的巨噬细胞没有因热响应性聚合物上的培养而导致活力,人工激活或功能改变的迹象。我们的研究表明,与市售的UpCell载体一起,另外两种基于聚(乙烯基甲基醚)共混物的热响应性聚合物对于原代单核细胞衍生的巨噬细胞的分化和轻度分离是有吸引力的候选物。总之,与标准细胞培养表面相比,我们观察到在热响应性聚合物上培养的原代单核细胞衍生巨噬细胞具有相似的功能和活力。尽管第一代定制的热响应性聚合物尚不及标准培养方法,但我们的结果非常有希望,并为利用定制的热响应性聚合物提供的独特优势进一步改善巨噬细胞的培养和回收率提供了基础。未来,包括信号分子的共价结合以及减少离心和洗涤步骤。优化热响应性聚合物的这些和其他好处可以极大地改善用于组织工程应用的巨噬细胞的培养。

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