de Hoyos-Vega Jose M, Gonzalez-Suarez Alan M, Garcia-Cordero Jose L
Unidad Monterrey, Centro de Investigación y de Estudios Avanzados del IPN, Via del conocimiento 201, Parque PIIT, Apodaca, NL 66628 Mexico.
Microsyst Nanoeng. 2020 Jun 29;6:40. doi: 10.1038/s41378-020-0156-0. eCollection 2020.
Precision-cut tissue slices are an important in vitro system to study organ function because they preserve most of the native cellular microenvironments of organs, including complex intercellular connections. However, during sample manipulation or slicing, some of the natural surface topology and structure of these tissues is lost or damaged. Here, we introduce a microfluidic platform to perform multiple assays on the surface of a tissue section, unhindered by surface topography. The device consists of a valve on one side and eight open microchannels located on the opposite side, with the tissue section sandwiched between these two structures. When the valve is actuated, eight independent microfluidic channels are formed over a tissue section. This strategy prevents cross-contamination when performing assays and enables parallelization. Using irregular tissues such as an aorta, we conducted multiple in vitro and ex vivo assays on tissue sections, including short-term culturing, a drug toxicity assay, a fluorescence immunohistochemistry staining assay, and an immune cell assay, in which we observed the interaction of neutrophils with lipopolysaccharide (LPS)-stimulated endothelium. Our microfluidic platform can be employed in other disciplines, such as tissue physiology and pathophysiology, morphogenesis, drug toxicity and efficiency, metabolism studies, and diagnostics, enabling the conduction of several assays with a single biopsy sample.
精密切割组织切片是研究器官功能的重要体外系统,因为它们保留了器官的大部分天然细胞微环境,包括复杂的细胞间连接。然而,在样本处理或切片过程中,这些组织的一些天然表面拓扑结构和结构会丢失或受损。在这里,我们介绍一种微流控平台,用于在组织切片表面进行多种检测,不受表面形貌的阻碍。该装置一侧有一个阀门,另一侧有八个开放的微通道,组织切片夹在这两个结构之间。当阀门启动时,在组织切片上会形成八个独立的微流控通道。这种策略在进行检测时可防止交叉污染,并实现并行化。我们使用诸如主动脉等不规则组织,对组织切片进行了多种体外和离体检测,包括短期培养、药物毒性检测、荧光免疫组织化学染色检测和免疫细胞检测,其中我们观察了中性粒细胞与脂多糖(LPS)刺激的内皮细胞之间的相互作用。我们的微流控平台可应用于其他学科,如组织生理学和病理生理学、形态发生、药物毒性和效率、代谢研究以及诊断学,从而能够用单个活检样本进行多种检测。