化学
生物膜
生物物理学
失调
化学成像
微生物代谢
纳米技术
细菌
环境化学
肠道菌群
生物化学
材料科学
生物
地质学
高光谱成像
遗传学
遥感
作者
Yiliang Lin,Xiang Gao,Jiping Yue,Yin Fang,Jiuyun Shi,Lingyuan Meng,Clementene Clayton,Xin‐Xing Zhang,Fengyuan Shi,Junjing Deng,Si Chen,Yi Jiang,Fabricio Marin,Jingtian Hu,Hsiu‐Ming Tsai,Qing Tu,Eric W. Roth,Reiner Bleher,Xinqi Chen,Philip J. Griffin
出处
期刊:Nature Chemistry
[Nature Portfolio]
日期:2022-10-24
卷期号:15 (1): 119-128
被引量:23
标识
DOI:10.1038/s41557-022-01064-2
摘要
Interactions between the microbiota and their colonized environments mediate critical pathways from biogeochemical cycles to homeostasis in human health. Here we report a soil-inspired chemical system that consists of nanostructured minerals, starch granules and liquid metals. Fabricated via a bottom-up synthesis, the soil-inspired chemical system can enable chemical redistribution and modulation of microbial communities. We characterize the composite, confirming its structural similarity to the soil, with three-dimensional X-ray fluorescence and ptychographic tomography and electron microscopy imaging. We also demonstrate that post-synthetic modifications formed by laser irradiation led to chemical heterogeneities from the atomic to the macroscopic level. The soil-inspired material possesses chemical, optical and mechanical responsiveness to yield write–erase functions in electrical performance. The composite can also enhance microbial culture/biofilm growth and biofuel production in vitro. Finally, we show that the soil-inspired system enriches gut bacteria diversity, rectifies tetracycline-induced gut microbiome dysbiosis and ameliorates dextran sulfate sodium-induced rodent colitis symptoms within in vivo rodent models.
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