Biological & Chemical Technologies Group, MIT Lincoln Laboratory, Lexington, MA, USA.
Biomed Microdevices. 2023 Apr 4;25(2):14. doi: 10.1007/s10544-023-00653-3.
The complex, dynamic environment of the human lower gastrointestinal tract is colonized by hundreds of bacterial species that impact health and performance. Ex vivo study of the functional interactions between microbial community members in conditions representative of those in the gut is an ongoing challenge. We have developed an in vitro 40-plex platform that provides an oxygen gradient to support simultaneous maintenance of microaerobic and anaerobic microbes from the gut microbiome that can aid in rapid characterization of microbial interactions and direct comparison of individual microbiome samples. In this report, we demonstrate that the platform more closely maintained the microbial diversity and composition of human donor fecal microbiome samples than strict anaerobic conditions. The oxygen gradient established in the platform allowed the stratification and subsequent sampling of diverse microbial subpopulations that colonize microaerobic and anaerobic micro-environments. With the ability to run forty samples in parallel, the platform has the potential to be used as a rapid screening tool to understand how the gut microbiome responds to environmental perturbations such as toxic compound exposure, dietary changes, or pharmaceutical treatments.
人类下消化道的复杂、动态环境中定植着数百种细菌,这些细菌会影响健康和性能。在能代表肠道内条件的情况下,对微生物群落成员之间的功能相互作用进行体外研究仍然是一个挑战。我们开发了一种 40 plex 的体外平台,该平台提供了一个氧气梯度,以支持从肠道微生物组中同时维持微需氧和厌氧微生物,这有助于快速表征微生物相互作用,并直接比较单个微生物组样本。在本报告中,我们证明该平台比严格的厌氧条件更能保持人类供体粪便微生物组样本的微生物多样性和组成。平台中建立的氧气梯度允许分层和随后对定植于微需氧和厌氧微环境的不同微生物亚群进行采样。该平台具有同时运行 40 个样本的能力,有潜力成为一种快速筛选工具,用于了解肠道微生物组如何对环境干扰(如有毒化合物暴露、饮食变化或药物治疗)做出反应。