微流控
抗生素
材料科学
抗菌剂
感染控制
纳米技术
细菌
协议(科学)
微流控芯片
微生物学
拉曼光谱
拉曼散射
医学
生物
重症监护医学
病理
光学
物理
遗传学
替代医学
作者
Cheng-Chieh Liao,Yi‐Zih Chen,Shang-Jyun Lin,Ho‐Wen Cheng,Juen-Kai Wang,Yuh‐Lin Wang,Yin‐Yi Han,Nien‐Tsu Huang
标识
DOI:10.1016/j.bios.2021.113483
摘要
Abstract Bloodstream infection (BSI) is a serious public health issue worldwide. Timely and effective antibiotics for controlling infection are crucial towards patient outcomes. However, the current culture-based methods of identifying bacteria and antimicrobial susceptibility testing (AST) remain labor-intensive and time-consuming, and are unable to provide early support to physicians in critical hours. To improve the effectiveness of early antibiotic therapy, Surface-enhanced Raman scattering (SERS) technology, has been used in bacterial detection and AST based on its high specificity and label-free features. To simplify sample preparation steps in SERS-AST, we proposed an automated microfluidic control system to integrate all required procedures into a single device. Our preliminary results demonstrated the system can achieve on-chip reagent replacement, bacteria trapping, and buffer exchange. Finally, in-situ SERS-AST was performed within 3.5 h by loading isolates of ampicilin susceptible and resistant E. coli and clear discrimination of two strains under antibiotic treatment was demonstrated. Overall, our system can standardize and simplify the SERS-AST protocol and implicate parallel bacterial detection. This prototypical integration demonstrates timely microbiological support to optimize early antibiotic therapy for fighting bacteremia.
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