Biotechnology Research Division, Advanced Radiation Technology Institute (ARTI), Korea Atomic Energy Research Institute (KAERI), 1266, Sinjeong-Dong, Jeongeup, Jeonbuk 580-185, Korea.
Department of Textile Engineering and Technology, Yeungnam University, 280 Daehak-ro, Gyeongsan, Gyeongbuk 38541, Korea.
Sensors (Basel). 2017 Apr 8;17(4):803. doi: 10.3390/s17040803.
This paper describes the use of an analytical microfluidic sensor for accelerating chemo-repellent response and strong anti-bacterial 1-(Thien-2-yl)-3-(2, 6-difluoro phenyl) prop-2-en-1-one (1-TDPPO). The chemically-synthesized antimicrobial agent, which included prop-2-en-1-one and difluoro phenyl groups, was moving through an optically transparent polydimethylsiloxane (PDMS) microfluidic sensor with circular obstacles arranged evenly. The response, growth and distribution of fluorescent labeling PAO1 against the antimicrobial agent were monitored by confocal laser scanning microscope (CLSM). The microfluidic sensor along with 1-TDPPOin this study exhibits the following advantages: (i) Real-time chemo-repellent responses of cell dynamics; (ii) Rapid eradication of biofilm by embedded obstacles and powerful antibacterial agents, which significantly reduce the response time compared to classical methods; (iii) Minimal consumption of cells and antimicrobial agents; and (iv) Simplifying the process of the normalization of the fluorescence intensity and monitoring of biofilm by captured images and datasets.
本文描述了一种分析微流传感器在加速化学驱避反应和增强抗菌 1-(噻吩-2-基)-3-(2,6-二氟苯基)丙-2-烯-1-酮(1-TDPPO)方面的应用。该化学合成的抗菌剂包含丙-2-烯-1-酮和二氟苯基基团,通过具有均匀排列的圆形障碍物的光学透明聚二甲基硅氧烷(PDMS)微流传感器移动。通过共聚焦激光扫描显微镜(CLSM)监测荧光标记的 PAO1 对抗菌剂的响应、生长和分布。本研究中的微流传感器和 1-TDPPO 具有以下优点:(i)实时监测细胞动力学的化学驱避反应;(ii)嵌入式障碍物和强力抗菌剂快速消除生物膜,与经典方法相比,大大缩短了响应时间;(iii)细胞和抗菌剂的消耗最小;(iv)通过捕获的图像和数据集简化了荧光强度归一化和生物膜监测的过程。