Key Laboratory of Functional Materials Physics and Chemistry of the Ministry of Education, Jilin Normal University, Changchun 130103, China.
Department of Chemistry, Towson University, Towson, MD 21252, USA.
Int J Mol Sci. 2024 Jul 12;25(14):7675. doi: 10.3390/ijms25147675.
Sensitive detection and efficient inactivation of pathogenic bacteria are crucial for halting the spread and reproduction of foodborne pathogenic bacteria. Herein, a novel Apt-modified PDMS-ZnO/Ag multifunctional biosensor has been developed for high-sensitivity surface-enhanced Raman scattering (SERS) detection along with photocatalytic sterilization towards Salmonella typhimurium (). The distribution of the electric field in PDMS-ZnO/Ag with different Ag sputtering times was analyzed using a finite-difference time-domain (FDTD) algorithm. Due to the combined effect of electromagnetic enhancement and chemical enhancement, PDMS-ZnO/Ag exhibited outstanding SERS sensitivity. The limit of detection (LOD) for 4-MBA on the optimal SERS substrate (PZA-40) could be as little as 10 M. After PZA-40 was modified with the aptamer, the LOD of the PZA-40-Apt biosensor for detecting was only 10 cfu/mL. Additionally, the PZA-40-Apt biosensor could effectively inactivate under visible light irradiation within 10 min, with a bacterial lethality rate (L) of up to 97%. In particular, the PZA-40-Apt biosensor could identify in food samples in addition to having minimal cytotoxicity and powerful biocompatibility. This work provides a multifunctional nanoplatform with broad prospects for selective SERS detection and photocatalytic sterilization of pathogenic bacteria.
灵敏检测和有效灭活致病菌对于阻止食源性病原体的传播和繁殖至关重要。本文构建了一种新型的适体修饰的聚二甲基硅氧烷-氧化锌/银多功能生物传感器,用于高灵敏度表面增强拉曼散射(SERS)检测以及对鼠伤寒沙门氏菌()的光催化灭菌。采用时域有限差分(FDTD)算法分析了不同银溅射时间的 PDMS-ZnO/Ag 中的电场分布。由于电磁增强和化学增强的协同作用,PDMS-ZnO/Ag 表现出优异的 SERS 灵敏度。在最佳 SERS 基底(PZA-40)上,4-MBA 的检测限(LOD)低至 10 M。PZA-40 经适体修饰后,PZA-40-Apt 生物传感器检测的 LOD 仅为 10 cfu/mL。此外,PZA-40-Apt 生物传感器在可见光照射下 10 min 内即可有效灭活,细菌致死率(L)高达 97%。特别是,PZA-40-Apt 生物传感器除了具有较小的细胞毒性和强大的生物相容性外,还可以识别食品样品中的。这项工作为选择性 SERS 检测和致病菌光催化灭菌提供了一种多功能纳米平台,具有广阔的应用前景。