Bains Deepak, Singh Gagandeep, Singh Narinder
Department of Chemistry, Indian Institute of Technology Ropar, Rupnagar 140001, Punjab, India.
Department of Biomedical Engineering, Indian Institute of Technology Ropar, Rupnagar 140001, Punjab, India.
ACS Appl Bio Mater. 2022 Mar 21;5(3):1239-1251. doi: 10.1021/acsabm.1c01258. Epub 2022 Feb 17.
Zinc oxide (ZnO)-derived materials exhibit unique antibacterial, antifungal, and photochemical activities and are widely used in antibacterial formulations. In this work, ZnO nanosheets were prepared by green and cost-effective synthesis via a hydrothermal method, and the prepared ZnO nanosheets were further functionalized with an eco-friendly ionic liquid (IL). Thus, a sustainable approach was established to synthesize ZnO nanosheets. The functionalization of ZnO with the synthesized IL was fully characterized by advanced spectroscopic and microscopic techniques. The prepared ionic liquid-functionalized ZnO (IL@ZnO) showed self-organized layered-sheet arrangements caused by the intercalation of the IL onto the surface of ZnO nanosheets as revealed by scanning electron microscopy (SEM). The design of the IL comprised a carboxylic acid moiety for functionalization onto the surface of ZnO, whereas the hydrophobicity was tuned through the incorporation of a long alkyl chain. The developed IL@ZnO material was also tested against both Gram-positive and Gram-negative pathogenic bacteria for potential antibacterial activity by colony-forming unit (CFU) and minimum inhibitory concentration tests. The results revealed that the IL@ZnO exhibits significant antibacterial activity against tested strains. In particular, potent activity was observed against the Gram-positive skin-specific bacteria strain. The mechanism of bactericidal activity against bacteria was also explored along with the cytotoxicity toward mammalian cells, which reveals that the IL@ZnO is nontoxic in nature. To utilize the developed material owing to its bactericidal activity for practical applications, the IL@ZnO was fabricated onto the surface of cotton fabric, and its surface morphology was examined by SEM; the activity of IL@ZnO-treated cotton fabric was evaluated by the zone of inhibition assay. Additionally, the IL@ZnO-treated cotton fabric exhibited remarkable stability along with significant hydrophobicity and breathability and thus can be utilized as a biomaterial for biomedical applications, especially in medical masks, for reducing the risk of transmission of infectious diseases.
氧化锌(ZnO)衍生材料具有独特的抗菌、抗真菌和光化学活性,广泛应用于抗菌配方中。在本研究中,通过水热法以绿色且经济高效的方式合成了ZnO纳米片,并使用环保型离子液体(IL)对制备的ZnO纳米片进行了进一步功能化。因此,建立了一种可持续的方法来合成ZnO纳米片。通过先进的光谱和显微镜技术对合成的IL对ZnO的功能化进行了全面表征。扫描电子显微镜(SEM)显示,制备的离子液体功能化ZnO(IL@ZnO)呈现出自组织的层状片层排列,这是由于IL插入到ZnO纳米片表面所致。IL的设计包含一个用于在ZnO表面进行功能化的羧酸部分,而疏水性则通过引入长烷基链进行调节。还通过菌落形成单位(CFU)和最低抑菌浓度测试,对开发的IL@ZnO材料针对革兰氏阳性和革兰氏阴性致病细菌的潜在抗菌活性进行了测试。结果表明,IL@ZnO对测试菌株具有显著的抗菌活性。特别是,对革兰氏阳性皮肤特异性细菌菌株观察到了强效活性。还探讨了对细菌的杀菌活性机制以及对哺乳动物细胞的细胞毒性,结果表明IL@ZnO本质上是无毒的。为了将开发的具有杀菌活性的材料用于实际应用,将IL@ZnO制备在棉织物表面,并通过SEM检查其表面形态;通过抑菌圈试验评估了经IL@ZnO处理的棉织物的活性。此外,经IL@ZnO处理的棉织物表现出显著的稳定性以及明显的疏水性和透气性,可以用作生物医学应用的生物材料,特别是在医用口罩中,以降低传染病传播的风险。