Department of Chemistry and Carolina Center for Genome Science, University of North Carolina at Chapel Hill, Chapel Hill, North Carolina 27599-3290, USA.
J Am Chem Soc. 2011 Jun 8;133(22):8704-13. doi: 10.1021/ja2022569. Epub 2011 May 11.
Proper cell-cell communication through physical contact is crucial for a range of fundamental biological processes including, cell proliferation, migration, differentiation, and apoptosis and for the correct function of organs and other multicellular tissues. The spatial and temporal arrangements of these cellular interactions in vivo are dynamic and lead to higher-order function that is extremely difficult to recapitulate in vitro. The development of three-dimensional (3D), in vitro model systems to investigate these complex, in vivo interconnectivities would generate novel methods to study the biochemical signaling of these processes, as well as provide platforms for tissue engineering technologies. Herein, we develop and employ a strategy to induce specific and stable cell-cell contacts in 3D through chemoselective cell-surface engineering based on liposome delivery and fusion to display bio-orthogonal functional groups from cell membranes. This strategy uses liposome fusion for the delivery of ketone or oxyamine groups to different populations of cells for subsequent cell assembly via oxime ligation. We demonstrate how this method can be used for several applications including, the delivery of reagents to cells for fluorescent labeling and cell-surface engineering, the formation of small, 3D spheroid cell assemblies, and the generation of large and dense, 3D multilayered tissue-like structures for tissue engineering applications.
通过物理接触实现适当的细胞间通讯对于一系列基本的生物学过程至关重要,包括细胞增殖、迁移、分化和凋亡,以及器官和其他多细胞组织的正常功能。这些细胞间相互作用在体内的空间和时间排列是动态的,导致了高度复杂的功能,这在体外极难重现。开发用于研究这些复杂的体内连通性的三维(3D)体外模型系统,将产生研究这些过程生化信号的新方法,并为组织工程技术提供平台。在这里,我们开发并采用了一种策略,通过基于脂质体递送和融合的化学选择性细胞表面工程,在 3D 中诱导特定且稳定的细胞-细胞接触,从而展示细胞膜上的生物正交功能基团。该策略使用脂质体融合将酮基或氧胺基团递送到不同细胞群中,然后通过肟键合进行细胞组装。我们展示了该方法如何用于多种应用,包括将试剂递送到细胞中进行荧光标记和细胞表面工程、形成小的 3D 球形细胞组装体,以及生成用于组织工程应用的大型密集 3D 多层组织样结构。