Li Lei, Tian Feng, Chang Hao, Zhang Jie, Wang Cheng, Rao Wei, Hu Huan
CAS Key Lab of Cryogenics, Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, Beijing, China.
ZJU-UIUC Institute (ZJUI), Zhejiang University, Haining, China.
Front Chem. 2019 Jul 12;7:483. doi: 10.3389/fchem.2019.00483. eCollection 2019.
This paper presents a new strategy of integrating lateral silicon nanospikes using metal-assisted chemical etching (MacEtch) on the sidewall of micropillars for on-chip bacterial study. Silicon nanospikes have been reported to be able to kill bacteria without using chemicals and offer a new route to kill bacteria and can prevent the overuse of antibiotics to reduce bacteria. We demonstrated a new methodology to fabricate a chip with integrated silicon nanospikes onto the sidewalls of micropillars inside the microfluidic channel and attested its interactions with the representative gram-negative bacteria . The results of colony-forming unit (CFU) calculation showed that 80% bacteria lost their viability after passing through the chip. Moreover, the results of adenosine triphosphate (ATP) measurement indicated that the chip with lateral silicon nanospikes could extract more than two times ATP contents compared with the chip without lateral silicon nanospikes, showing potential for using the chip with lateral silicon nanospikes as a bacterial lysing module.
本文提出了一种新策略,即在微柱侧壁上使用金属辅助化学蚀刻(MacEtch)集成横向硅纳米尖峰,用于芯片上的细菌研究。据报道,硅纳米尖峰能够在不使用化学物质的情况下杀死细菌,为杀死细菌提供了一条新途径,并可防止过度使用抗生素来减少细菌。我们展示了一种新方法,用于在微流控通道内的微柱侧壁上制造集成有硅纳米尖峰的芯片,并证明了其与代表性革兰氏阴性菌的相互作用。菌落形成单位(CFU)计算结果表明,80%的细菌在通过芯片后失去了活力。此外,三磷酸腺苷(ATP)测量结果表明,与没有横向硅纳米尖峰的芯片相比,带有横向硅纳米尖峰的芯片能够提取的ATP含量多出两倍以上,这表明带有横向硅纳米尖峰的芯片有潜力用作细菌裂解模块。