化学
矿化(土壤科学)
拉曼光谱
纳米技术
表征(材料科学)
显微镜
拉曼散射
化学成像
生命系统
原位
生物系统
生化工程
计算机科学
材料科学
人工智能
光学
物理
有机化学
工程类
氮气
高光谱成像
生物
作者
Chenxi Qian,Hanwei Liu,Priya K. Chittur,Rahuljeet Chadha,Yuxing Yao,Julia A. Kornfield,David A. Tirrell,Lu Wei
标识
DOI:10.1021/acs.analchem.3c03736
摘要
Composite materials built in part from living organisms have the potential to exhibit useful autonomous, adaptive, and self-healing behavior. The physicochemical, biological, and mechanical properties of such materials can be engineered through the genetic manipulation of their living components. Successful development of living materials will require not only new methods for design and preparation but also new analytical tools that are capable of real-time noninvasive mapping of chemical compositions. Here, we establish a strategy based on stimulated Raman scattering microscopy to monitor phosphatase-catalyzed mineralization of engineered bacterial films in situ. Real-time label-free imaging elucidates the mineralization process, quantifies both the organic and inorganic components of the material as functions of time, and reveals spatial heterogeneity at multiple scales. In addition, we correlate the mechanical performance of films with the extent of mineralization. This work introduces a promising strategy for quantitatively analyzing living materials, which should contribute to the accelerated development of such materials in the future.
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