Miller Michael A, Medina Scott
Department of Biomedical Engineering, Pennsylvania State University, University Park, PA, USA, 16802-4400.
Huck Institutes of the Life Sciences, Pennsylvania State University, University Park, PA, USA, 16802-4400.
Adv Funct Mater. 2024 Sep 18;34(38). doi: 10.1002/adfm.202402514. Epub 2024 Mar 13.
The human colon is home to trillions of microorganisms that modulate gastrointestinal physiology. Our understanding of how this gut ecosystem impacts human health, although evolving, has been slowed by the lack of accessible tools suitable to studying complex host-mucus-microbe interactions. Here, we report a synthetic gel-like material capable of recapitulating the varied structural, mechanical, and biochemical profiles of native human colonic mucus to develop compositionally simple microbiome screening platforms with utility in microbiology and drug discovery. The viscous fibrillar material is realized through templated assembly of a fluorine-rich amino acid at liquid-liquid interphases. The fluorine-assisted mucus surrogate (FAMS) can be decorated with mucins to serve as a habitat for microbial colonization and integrated with human colorectal cells to generate artificial mucosae, referred to as a microbiome organoid. Notably, FAMS are made with inexpensive and commercially available materials, and can be generated using simple protocols and standard laboratory hardware. As a result, this platform can be broadly incorporated into various laboratory settings to advance probiotic research and inform in vivo approaches. If implemented into high throughput screening approaches, FAMS may represent a valuable tool to study compound metabolism and gut permeability, with an exemplary demonstration of this utility presented here.
人类结肠是数万亿调节胃肠生理的微生物的家园。尽管我们对这种肠道生态系统如何影响人类健康的理解仍在不断发展,但由于缺乏适用于研究复杂的宿主-黏液-微生物相互作用的便捷工具,其进展一直较为缓慢。在此,我们报告了一种合成凝胶状材料,它能够重现天然人类结肠黏液的各种结构、力学和生化特征,从而开发出在微生物学和药物发现方面具有实用性的成分简单的微生物组筛选平台。这种粘性纤维状材料是通过富含氟的氨基酸在液-液界面的模板组装实现的。氟辅助黏液替代物(FAMS)可以用黏蛋白进行修饰,作为微生物定殖的栖息地,并与人类结肠直肠细胞整合,以生成人工黏膜,即微生物组类器官。值得注意的是,FAMS由廉价且可商购的材料制成,并且可以使用简单的方案和标准实验室硬件生成。因此,该平台可以广泛应用于各种实验室环境,以推进益生菌研究并为体内研究方法提供信息。如果应用于高通量筛选方法,FAMS可能是研究化合物代谢和肠道通透性的有价值工具,本文在此展示了其效用的一个示例。