Jia Xuewei, Wu Yihong, Liu Zhiyang, Dai Yuxiang, Li Tianxiao, Gao Mingqi, Xu Chunping
Zhengzhou University of Light Industry Zhengzhou Henan China
China Tobacco Henan Industrial Co., Ltd. Zhengzhou Henan China
RSC Adv. 2024 Jun 3;14(25):17814-17823. doi: 10.1039/d4ra01590h. eCollection 2024 May 28.
Polysaccharides are considered to be ideal green raw materials for enhancing biocompatibility and dispersion effects of nanoparticles. In this study, we coated and dispersed ZnO nanoparticles (NPs) using the denaturation-renaturation process of a triple helix glucan lentinan (LNT), induced by changes in pH value within the reaction system. Various ZnO/LNT composites with different particle sizes and crystal morphologies were prepared and characterized. The results demonstrated that renatured LNT (r-LNT) effectively encapsulated the {101̄0} crystal planes of ZnO, preventing crystal growth during the renaturation process and resulting in smaller, uniformly dispersed nanoparticles. Among the samples, ZnO/r-LNT-2 exhibited significantly higher antimicrobial activity, and it had a certain inhibitory effect on various plant pathogens. It also displayed the highest inhibitory effect against , with a minimum inhibitory concentration (MIC) of up to 8 μg mL. Consistently, ZnO/r-LNT-2 generated the highest amount of reactive oxygen species (ROS), thus exhibiting the most effective antimicrobial activity. However, excessive introduction of the dispersant LNT may reduce these activities. This study provides a foundation for further exploring the detailed mechanism of ROS generation catalyzed by ZnO and for harnessing the full potential of this type of antimicrobial agent.
多糖被认为是增强纳米颗粒生物相容性和分散效果的理想绿色原料。在本研究中,我们利用反应体系中pH值的变化诱导三螺旋葡聚糖香菇多糖(LNT)的变性-复性过程,对氧化锌纳米颗粒(NPs)进行包覆和分散。制备并表征了具有不同粒径和晶体形态的各种ZnO/LNT复合材料。结果表明,复性后的LNT(r-LNT)有效地包裹了ZnO的{101̄0}晶面,在复性过程中阻止了晶体生长,从而得到更小、分散均匀的纳米颗粒。在这些样品中,ZnO/r-LNT-2表现出显著更高的抗菌活性,对多种植物病原菌具有一定的抑制作用。它对 也表现出最高的抑制效果,最低抑菌浓度(MIC)高达8 μg mL。同样,ZnO/r-LNT-2产生的活性氧(ROS)量最高,因此表现出最有效的抗菌活性。然而,过量引入分散剂LNT可能会降低这些活性。本研究为进一步探索ZnO催化产生ROS的详细机制以及充分发挥这类抗菌剂的潜力提供了基础。