Valdez Jorge, Cook Christi D, Ahrens Caroline Chopko, Wang Alex J, Brown Alexander, Kumar Manu, Stockdale Linda, Rothenberg Daniel, Renggli Kasper, Gordon Elizabeth, Lauffenburger Douglas, White Forest, Griffith Linda
Department of Biological Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Department of Biological Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139, USA; Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Biomaterials. 2017 Jun;130:90-103. doi: 10.1016/j.biomaterials.2017.03.030. Epub 2017 Mar 23.
Methods to parse paracrine epithelial-stromal communication networks are a vital need in drug development, as disruption of these networks underlies diseases ranging from cancer to endometriosis. Here, we describe a modular, synthetic, and dissolvable extracellular matrix (MSD-ECM) hydrogel that fosters functional 3D epithelial-stromal co-culture, and that can be dissolved on-demand to recover cells and paracrine signaling proteins intact for subsequent analysis. Specifically, synthetic polymer hydrogels, modified with cell-interacting adhesion motifs and crosslinked with peptides that include a substrate for cell-mediated proteolytic remodeling, can be rapidly dissolved by an engineered version of the microbial transpeptidase Sortase A (SrtA) if the crosslinking peptide includes a SrtA substrate motif and a soluble second substrate. SrtA-mediated dissolution affected only 1 of 31 cytokines and growth factors assayed, whereas standard protease degradation methods destroyed about half of these same molecules. Using co-encapsulated endometrial epithelial and stromal cells as one model system, we show that the dynamic cytokine and growth factor response of co-cultures to an inflammatory cue is richer and more nuanced when measured from SrtA-dissolved gel microenvironments than from the culture supernate. This system employs accessible, reproducible reagents and facile protocols; hence, has potential as a tool in identifying and validating therapeutic targets in complex diseases.
解析旁分泌上皮-基质通讯网络的方法在药物开发中至关重要,因为这些网络的破坏是从癌症到子宫内膜异位症等多种疾病的基础。在此,我们描述了一种模块化、合成且可溶解的细胞外基质(MSD-ECM)水凝胶,它能促进功能性三维上皮-基质共培养,并且可以按需溶解以完整回收细胞和旁分泌信号蛋白用于后续分析。具体而言,用细胞相互作用粘附基序修饰并与包含细胞介导的蛋白水解重塑底物的肽交联的合成聚合物水凝胶,如果交联肽包含分选酶A(SrtA)底物基序和可溶性第二底物,则可被工程化的微生物转肽酶分选酶A(SrtA)快速溶解。SrtA介导的溶解仅影响所检测的31种细胞因子和生长因子中的1种,而标准蛋白酶降解方法会破坏大约一半的这些相同分子。以共包封的子宫内膜上皮细胞和基质细胞作为一个模型系统,我们表明,与从培养上清液中测量相比,从SrtA溶解的凝胶微环境中测量时,共培养物对炎症信号的动态细胞因子和生长因子反应更丰富、更细微。该系统使用易于获取、可重复的试剂和简便的方案;因此,有潜力作为识别和验证复杂疾病治疗靶点的工具。