Controlling bacterial growth and inactivation using thin film-based surface acoustic waves

Hui Ling Ong, Yunhong Jiang, Yihao Guo, Jian Zhou, Jikai Zhang, Jingting Luo*, Ran Tao, Meng Zhang, Lynn Dover, Darren Smith, Kunyapat Thummavichai, Yogendra Kumar Mishra, Qiang Wu, Yongqing Fu*

*Corresponding author for this work

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Abstract

Formation of bacterial films on structural surfaces often leads to severe contamination of medical devices, hospital equipment, implant materials, etc., and antimicrobial resistance of microorganisms has indeed become a global health issue. Therefore, effective therapies for controlling infectious and pathogenic bacteria are urgently needed. Being a promising active method for this purpose, surface acoustic waves (SAWs) have merits such as nanoscale earthquake-like vibration/agitation/radiation, acoustic streaming induced circulations, and localised acoustic heating effect in liquids. However, only a few studies have explored controlling bacterial growth and inactivation behaviour using SAWs. In this study, we proposed utilising piezoelectric thin film-based SAW devices on a silicon substrate for controlling bacterial growth and inactivation with and without using ZnO micro/nanostructures. Effects of SAW powers on bacterial growth for two types of bacteria, i.e., E. coli and S. aureus, were evaluated. Varied concentrations of ZnO tetrapods were also added into the bacterial culture to study their effects and the combined antimicrobial effects along with SAW agitation. Our results showed that when the SAW power was below a threshold (e.g., about 2.55 W in this study), the bacterial growth was apparently enhanced, whereas the further increase of SAW power to a high power caused inactivation of bacteria. Combination of thin film SAWs with ZnO tetrapods led to significantly decreased growth or inactivation for both E. coli and S. aureus, revealing their effectiveness for antimicrobial treatment. Mechanisms and effects of SAW interactions with bacterial solutions and ZnO tetrapods have been systematically discussed.
Original languageEnglish
Pages (from-to)4344-4356
Number of pages13
JournalLab on a Chip - Miniaturisation for Chemistry and Biology
Volume24
Issue number18
Early online date8 Aug 2024
DOIs
Publication statusPublished - 21 Sept 2024

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