| Literature DB >> 33500771 |
Hecheng Han1, Jingjing Yang1, Xiaoyan Li2, Yuan Qi1, Zhengyi Yang1, Zejun Han1, Yanyan Jiang1,3,4, Martina Stenzel5, Hui Li1, Yixin Yin6, Yi Du6, Jiurong Liu1, Fenglong Wang1,4.
Abstract
Globally, millions of people die of microbial infection-related diseases every year. The more terrible situation is that due to the overuse of antibiotics, especially in developing countries, people are struggling to fight with the bacteria variation. The emergence of super-bacteria will be an intractable environmental and health hazard in the future unless novel bactericidal weapons are mounted. Consequently, it is critical to develop viable antibacterial approaches to sustain the prosperous development of human society. Recent researches indicate that transition metal sulfides (TMSs) represent prominent bactericidal application potential owing to the meritorious antibacterial performance, acceptable biocompatibility, high solar energy utilization efficiency, and excellent photo-to-thermal conversion characteristics, and thus, a comprehensive review on the recent advances in this area would be beneficial for the future development. In this review article, we start with the antibacterial mechanisms of TMSs to provide a preliminary understanding. Thereafter, the state-of-the-art research progresses on the strategies for TMSs materials engineering so as to promote their antibacterial properties are systematically surveyed and summarized, followed by a summary of the practical application scenarios of TMSs-based antibacterial platforms. Finally, based on the thorough survey and analysis, we emphasize the challenges and future development trends in this area. © Tsinghua University Press and Springer-Verlag GmbH Germany, part of Springer Nature 2021.Entities:
Keywords: antibacterial mechanisms; metabolism and toxicology; strain-selective bactericidal strategies; surface functionalization; transition metal sulfides
Year: 2021 PMID: 33500771 PMCID: PMC7818700 DOI: 10.1007/s12274-021-3293-3
Source DB: PubMed Journal: Nano Res ISSN: 1998-0000 Impact factor: 10.269