Dhall Atul, Ramjee Ravikiran, Oh Min Jun, Tao Kevin, Hwang Geelsu
Department of Preventive and Restorative Sciences, School of Dental Medicine, University of Pennsylvania, Philadelphia, PA 19104, USA.
Department of Preventive and Restorative Sciences, School of Dental Medicine, University of Pennsylvania, Philadelphia, PA 19104, USA; Department of Bioengineering, School of Engineering and Applied Sciences, University of Pennsylvania, Philadelphia, PA 19104, USA.
Adv Mater Technol. 2022 Jul;7(7). doi: 10.1002/admt.202200138. Epub 2022 Apr 10.
Biofilms are communities of microbes that colonize surfaces. While several biofilm experimental models exist, they often have limited replications of spatiotemporal dynamics surrounding biofilms. For a better understanding dynamic and complex biofilm development, this manuscript presents a customizable platform compatible with off-the-shelf well plates that can monitor microbial adhesion, growth, and associated parameters under various relevant scenarios by taking advantage of 3D printing. The system i) holds any substrate in a stable, vertical position, ii) subjects samples to flow at different angles, iii) switches between static and dynamic modes during an experiment, and iv) allows multiplexing and real-time monitoring of biofilm parameters. Simulated fluid dynamics is employed to estimate flow patterns around discs and shear stresses at disc surfaces. A 3D printed peristaltic pump and a customized pH measurement system for real-time tracking of spent biofilm culture media are equipped with a graphical user interface that grants control over all experimental parameters. The system is tested under static and dynamic conditions with using different carbon sources. By monitoring the effluent pH and characterizing biochemical, microbiological, and morphological properties of cultured biofilms, distinct properties are demonstrated. This novel platform liberates designing experimental strategies for investigations of biofilms under various conditions.
生物膜是定殖于表面的微生物群落。虽然存在几种生物膜实验模型,但它们对生物膜周围时空动态的复制往往有限。为了更好地理解动态且复杂的生物膜发育过程,本文介绍了一个可定制平台,该平台与现成的微孔板兼容,通过利用3D打印技术,能够在各种相关场景下监测微生物的黏附、生长及相关参数。该系统:i)将任何底物保持在稳定的垂直位置;ii)使样品以不同角度流动;iii)在实验过程中在静态和动态模式之间切换;iv)允许对生物膜参数进行多重和实时监测。利用模拟流体动力学来估计圆盘周围的流动模式和圆盘表面的剪切应力。一个3D打印的蠕动泵和一个用于实时跟踪用过的生物膜培养基的定制pH测量系统配备了图形用户界面,可对所有实验参数进行控制。该系统在静态和动态条件下使用不同碳源进行了测试。通过监测流出液的pH值并表征培养生物膜的生化、微生物学和形态学特性,展现出了不同的特性。这个新颖的平台为在各种条件下研究生物膜的实验策略设计提供了便利。