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聚乙烯和水凝微载体的比较,用于附着细胞的光学成像
Oscar R Benavides1, Berkley P White1, Holly C Gibbs1,2
1Texas A&M University, Department of Biomedical Engineering, College Station, Texas, United States.
Journal of biomedical optics
|June 14, 2024
概括
定制的凝甲基烯基 (gelMA) 微载体使细胞的非破坏性3D成像成为可能,克服了传统聚烯微载体的局限性,以改善细胞培养监测.
科学领域:
- 生物技术和生物医学工程 生物技术和生物医学工程
- 细胞生物学 细胞生物学
- 光学成像技术的成像
背景情况:
- 监测细胞密度和形态是高质量的细胞培养的关键.
- 传统的显微镜与用于大规模扩张的厚厚,不透明的微载体基培养不兼容.
- 现有的方法阻碍了微载体系统中细胞健康和产量的评估.
研究的目的:
- 为了评估聚乙烯与定制的凝甲基 (gelMA) 微载体的光学成像兼容性.
- 为了使细胞在微载体上的非破坏性,非侵入性可视化.
- 为了实现直接的细胞计数和亚细胞可视化.
主要方法:
- 模拟了聚钢和凝MA微载体的Mie散射和波面误差.
- 适应光片显微镜用于光片断层扫描与平面侧照明.
- 使用无标签的弹性散射对比光学切割和3D重建.
主要成果:
- 聚乙烯微载体阻碍了对其远半部分细胞的可视化.
- 凝MA微载体提供了细胞形态和密度的高保真可视化.
- 光片光显微镜和断层扫描能够在凝MA上对细胞进行详细的成像.
结论:
- 光学质量的GelMA微载体适用于先进的细胞培养成像.
- 无标签的光片断层扫描增强了微载体上细胞的可视化.
- 这种组合可以改善对基于生物反应器的细胞培养过程的控制.
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