Battig Mark R, Alferiev Ivan S, Guerrero David T, Fishbein Ilia, Pressly Benjamin B, Levy Robert J, Chorny Michael
Department of Pediatrics, The Children's Hospital of Philadelphia, Philadelphia, PA 19104, USA.
ACS Appl Bio Mater. 2020 Jun 15;3(6):3914-3922. doi: 10.1021/acsabm.0c00466. Epub 2020 May 21.
Magnetic guidance shows promise as a strategy for improving the delivery and performance of cell therapeutics. However, clinical translation of magnetically guided cell therapy requires cell functionalization protocols that provide adequate magnetic properties in balance with unaltered cell viability and biological function. Existing methodologies for characterizing cells functionalized with magnetic nanoparticles (MNP) produce aggregate results, both distorted and unable to reflect variability in either magnetic or biological properties within a preparation. In the present study, we developed an inverted-plate assay allowing determination of these characteristics using a single-platform approach, and applied this method for a comparative analysis of two loading protocols providing highly uniform . uneven MNP distribution across cells. MNP uptake patterns remarkably different between the two protocols were first shown by fluorimetry carried out in a well-scan mode on endothelial cells (EC) loaded with BODIPY558/568-labeled MNP. Using the inverted-plate assay we next demonstrated that, in stark contrast to unevenly loaded cells, more than 50% of uniformly functionalized EC were captured within 5 min over a broad range of MNP doses. Furthermore, magnetically captured cells exhibited unaltered viability, substrate attachment, and proliferation rates. Conducted in parallel, magnetophoretic mobility studies corroborated the markedly superior guidance capacity of uniformly functionalized cells, confirming substantially faster cell capture kinetics on a clinically relevant time scale. Taken together, these results emphasize the importance of optimizing cell preparation protocols with regard to loading uniformity as key to efficient site-specific delivery, engraftment, and expansion of the functionalized cells, essential for both improving performance and facilitating translation of targeted cell therapeutics.
磁导向作为一种改善细胞疗法递送和性能的策略显示出了前景。然而,磁导向细胞疗法的临床转化需要细胞功能化方案,该方案要在保持细胞活力和生物学功能不变的同时提供足够的磁性。现有的用于表征用磁性纳米颗粒(MNP)功能化的细胞的方法产生的结果是综合的,既失真又无法反映制剂中磁性或生物学特性的变异性。在本研究中,我们开发了一种倒置平板测定法,允许使用单一平台方法测定这些特性,并将该方法应用于对两种加载方案的比较分析,这两种方案能在细胞上提供高度均匀但不均匀的MNP分布。首先通过在装载有BODIPY558/568标记的MNP的内皮细胞(EC)上以孔扫描模式进行的荧光测定法显示,两种方案之间的MNP摄取模式有显著差异。接下来,我们使用倒置平板测定法证明,与加载不均匀的细胞形成鲜明对比的是,在广泛的MNP剂量范围内,超过50%的均匀功能化的EC在5分钟内被捕获。此外,磁捕获的细胞表现出未改变的活力、底物附着和增殖率。同时进行的磁泳迁移率研究证实了均匀功能化细胞具有明显优越的导向能力,证实在临床相关的时间尺度上细胞捕获动力学明显更快。综上所述,这些结果强调了优化细胞制备方案中加载均匀性的重要性,这是实现功能化细胞高效位点特异性递送、植入和扩增的关键,对于提高性能和促进靶向细胞疗法的转化都至关重要。