Department of Pathology & Laboratory Medicine, University of Wisconsin, Madison, WI, USA.
Department of Biomedical Engineering, University of Wisconsin, Madison, WI, USA.
Commun Biol. 2023 Sep 9;6(1):925. doi: 10.1038/s42003-023-05282-3.
Biological tissues are highly organized structures where spatial-temporal gradients (e.g., nutrients, hypoxia, cytokines) modulate multiple physiological and pathological processes including inflammation, tissue regeneration, embryogenesis, and cancer progression. Current in vitro technologies struggle to capture the complexity of these transient microenvironmental gradients, do not provide dynamic control over the gradient profile, are complex and poorly suited for high throughput applications. Therefore, we have designed Griddent, a user-friendly platform with the capability of generating controllable and reversible gradients in a 3D microenvironment. Our platform consists of an array of 32 microfluidic chambers connected to a 384 well-array through a diffusion port at the bottom of each reservoir well. The diffusion ports are optimized to ensure gradient stability and facilitate manual micropipette loading. This platform is compatible with molecular and functional spatial biology as well as optical and fluorescence microscopy. In this work, we have used this platform to study cancer progression.
生物组织是高度组织化的结构,其中时空梯度(例如营养物质、缺氧、细胞因子)调节多种生理和病理过程,包括炎症、组织再生、胚胎发生和癌症进展。当前的体外技术难以捕捉这些瞬态微环境梯度的复杂性,无法对梯度分布进行动态控制,而且复杂且不适合高通量应用。因此,我们设计了 Griddent,这是一个用户友好的平台,能够在 3D 微环境中产生可控和可逆的梯度。我们的平台由 32 个微流控室组成,通过每个储液器底部的扩散口与 384 孔阵列连接。扩散口经过优化,可确保梯度稳定并便于手动微量移液器加载。该平台与分子和功能空间生物学以及光学和荧光显微镜兼容。在这项工作中,我们使用该平台研究了癌症进展。