Photoelectric Detection Technologies of Cell-bacterial Interactions Based on The Microfluidic Chips
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1)Key Disciplines Lab of Novel Micro-Nano Devices and System Technology, Key Laboratory of Optoelectronic Technology and Systems, Ministry of Education, Chongqing University, Chongqing 400044, China;2)School of Chemistry and Chemical Engineering, Chongqing University, Chongqing 401331, China;3)School of Optoelectronic Engineering, Chongqing University, Chongqing 400044, China;4.5)School of Continuing Education, Chongqing Aerospace Polytechnic, Chongqing 400021, China;5.4)Key Laboratory of Translational Research for Cancer Metastasis and Individualized Treatment, Chongqing University Cancer Hospital, Chongqing 400030, China

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This work was supported by grants from The National Natural Science Foundation of China (62071072), the National Key Research and Development Plan (2020YFB2009001), the Open Foundation of Key Disciplines Lab of Novel Micro-Nano Devices and System Technology (2020), and Project of Intelligent Sensing and Micro-nano Biochemical System (2019 Graduate Tutor Team).

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    Abstract:

    Cell-bacterial interactions refer to the process in which bacterium or bacterial metabolites act on the host cells, causing cellular and bacterial changes in morphology and functions. Cell-bacterial interactions researches are of vital significance to life sciences fields, such as drug development, disease diagnosis, and medical therapy. Recently, the detection and analysis of cell-bacterial interactions have developed rapidly. Cellular and bacterial morphology, activity, barrier function, and metabolites are the important clues to detect cell-bacterial interactions, which are essential to reveal deeper inflammatory disease mechanisms. Because of the controlled environment, good biocompatibility, multi-detection, and miniaturization, microfluidic analysis technology is developing into a powerful tool of cell-bacterial interaction research. In this review, we first introduce cell-bacterial analysis methods and technologies based on the microfluidic chip analysis briefly. Then the cell-bacterial interactions models based on the microfluidic chip are discussed, and later focusing on cell-bacterial interactions detection by microfluidic analysis technology, especially on the application of optical and electrochemical methods integrated with microfluidic chips. Microfluidic optical analysis system combines the chip with different microscopes, which is widely used for cellular and bacterial morphology imaging, and providing more details about metabolites with spectrometry during cell-bacterial interactions. Microfluidic electrochemical analysis system usually assemble directly microelectrodes on the chip, and its main advantage is monitoring dynamically cell-bacterial interaction through changes in electrical signals. By integrating microfluidics technologies and various detecting modules, microfluidic analysis technology has become an advantageous platform for cell-bacterial interactions analysis. Finally, the challenges and future development for microfluidic photoelectric detection technology in cell-bacterial interactions are discussed and prospected.

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TAN Hao-Lan, HE Hong, GONG Li, GE Chuang, XU Yi. Photoelectric Detection Technologies of Cell-bacterial Interactions Based on The Microfluidic Chips[J]. Progress in Biochemistry and Biophysics,2023,50(6):1308-1318

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History
  • Received:June 07,2022
  • Revised:March 29,2023
  • Accepted:August 12,2022
  • Online: June 20,2023
  • Published: June 20,2023