Rodríguez-González Vicente, Obregón Sergio, Patrón-Soberano Olga A, Terashima Chiaki, Fujishima Akira
Photocatalysis International Research Center, Research Institute for Science & Technology, Faculty of Science and Technology, Tokyo University of Science, 2641 Yamazaki, Noda, Chiba 278-8510, Japan.
Instituto Potosino de Investigación Científica y Tecnológica (IPICYT), División de Materiales Avanzados, Camino a la Presa San José 2055, Lomas 4a, Sección, 78216, San Luis Potosí, Mexico.
Appl Catal B. 2020 Aug 5;270:118853. doi: 10.1016/j.apcatb.2020.118853. Epub 2020 Mar 9.
The approach of this timely review considers the current literature that is focused on the interface nanostructure/cell-wall microorganism to understand the annihilation mechanism. Morphological studies use optical and electronic microscopes to determine the physical damage on the cell-wall and the possible cell lysis that confirms the viability and microorganism death. The key parameters of the tailoring the surface of the photoactive nanostructures such as the metal functionalization with bacteriostatic properties, hydrophilicity, textural porosity, morphology and the formation of heterojunction systems, can achieve the effective eradication of the microorganisms under natural conditions, ranging from practical to applications in environment, agriculture, and so on. However, to our knowledge, a comprehensive review of the microorganism/nanomaterial interface approach has rarely been conducted. The final remarks point the ideal photocatalytic way for the effective prevention/eradication of microorganisms, considering the resistance that the microorganism could develop without the appropriate regulatory aspects for human and ecosystem safety.
这篇及时的综述采用的方法是考虑当前聚焦于纳米结构/微生物细胞壁界面的文献,以了解其歼灭机制。形态学研究使用光学显微镜和电子显微镜来确定细胞壁上的物理损伤以及可能的细胞裂解情况,从而确认微生物的存活能力和死亡情况。定制光活性纳米结构表面的关键参数,如具有抑菌特性的金属功能化、亲水性、结构孔隙率、形态以及异质结系统的形成等,能够在自然条件下有效根除微生物,涵盖从实际应用到环境、农业等领域。然而,据我们所知,很少有人对微生物/纳米材料界面方法进行全面综述。最后的评论指出了有效预防/根除微生物的理想光催化方式,同时考虑到如果没有针对人类和生态系统安全的适当监管措施,微生物可能产生的抗性。