Revolutionizing biomedicine: Metal-organic frameworks combating multi-drug resistance

被引:2
作者
Gautam, Sanjeev [1 ]
Kaur, Simranpreet [1 ]
机构
[1] Panjab Univ, Adv Funct Mat Lab, Dr SS Bhatnagar Univ Inst Chem Engn & Technol, Chandigarh 160014, India
关键词
Porous materials; Biomaterials; Antimicrobial Resistance (AMR); ANTIBACTERIAL;
D O I
10.1016/j.matlet.2023.135306
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Antimicrobial resistance (AMR) has emerged as one of the major risks to public health, seriously compromising efforts to prevent and treat chronic diseases. The trends of global AMR show no evidence of slowing down, despite various measures implemented in the past few decades. The main causes of the rise of resistant bacteria are thought to be the misuse and overuse of various antimicrobial drugs in the healthcare sector as well as in the agricultural business. One of the key strategies to combat AMR is the creation of new antimicrobial agents. When pitted against the capacity for the evolution of multi-drug resistant (MDR) bacteria, it indicates that the science world is lagging behind in the race to develop alternative strategies to fight AMR. AMR has been listed as among the top ten worldwide public health threats. There is no perfect cure, and the drawbacks of current approaches call for more advancement in the field of antimicrobials. Recent advancements in nanotechnology position them as hopeful therapeutics and a powerful substitute for synthetic drugs and traditional antibiotics. The antimicrobial category recently gained better properties of the metal-organic framework (MOF). Many MOFs are biocompatible and have antimicrobial effects on a variety of species due to their porous architecture which also enables them to carry biomolecules and medications for synergistic antimicrobial effects. This feature letter discusses the causes as well as implications of AMR and also offers insight into a novel-emerging class of mesoporous nanostructures of MOF as the potential candidate to combat the spread of AMR.
引用
收藏
页数:6
相关论文
共 50 条
[21]   Electrically Conductive Porous Metal-Organic Frameworks [J].
Sun, Lei ;
Campbell, Michael G. ;
Dinca, Mircea .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2016, 55 (11) :3566-3579
[22]   The utility of the template effect in metal-organic frameworks [J].
Guo, Xiuxiu ;
Geng, Shubo ;
Zhuo, Mingjing ;
Chen, Yao ;
Zaworotko, Michael J. ;
Cheng, Peng ;
Zhang, Zhenjie .
COORDINATION CHEMISTRY REVIEWS, 2019, 391 :44-68
[23]   Switched Proton Conduction in Metal-Organic Frameworks [J].
Xiang, Fahui ;
Chen, Shimin ;
Yuan, Zhen ;
Li, Lu ;
Fan, Zhiwen ;
Yao, Zizhu ;
Liu, Chulong ;
Xiang, Shengchang ;
Zhang, Zhangjing .
JACS AU, 2022, 2 (05) :1043-1053
[24]   Multivariate Metal-Organic Frameworks for Programming Functions [J].
Jiang, Wentao ;
Liang, Cong-Cong ;
Zhang, Yue-Biao .
ADVANCED FUNCTIONAL MATERIALS, 2024, 34 (43)
[25]   Antibacterial applications of metal-organic frameworks and their composites [J].
Shen, Mofei ;
Forghani, Fereidoun ;
Kong, Xueqian ;
Liu, Donghong ;
Ye, Xingqian ;
Chen, Shiguo ;
Ding, Tian .
COMPREHENSIVE REVIEWS IN FOOD SCIENCE AND FOOD SAFETY, 2020, 19 (04) :1397-1419
[26]   METAL-ORGANIC FRAMEWORKS Improving pore performance [J].
Cooper, Andrew I. ;
Rosseinsky, Matthew J. .
NATURE CHEMISTRY, 2009, 1 (01) :26-27
[27]   Defect-Engineered Metal-Organic Frameworks [J].
Fang, Zhenlan ;
Bueken, Bart ;
De Vos, Dirk E. ;
Fischer, Roland A. .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2015, 54 (25) :7234-7254
[28]   Macrocycle-based metal-organic frameworks [J].
Zhang, Huacheng ;
Zou, Ruqiang ;
Zhao, Yanli .
COORDINATION CHEMISTRY REVIEWS, 2015, 292 :74-90
[29]   Functionalized Coordination Space in Metal-Organic Frameworks [J].
Fischer, Roland A. ;
Woell, Christof .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2008, 47 (43) :8164-8168
[30]   Pore Space Partition in Metal-Organic Frameworks [J].
Zhai, Quan-Guo ;
Bu, Xianhui ;
Zhao, Xiang ;
Li, Dong-Sheng ;
Feng, Pingyun .
ACCOUNTS OF CHEMICAL RESEARCH, 2017, 50 (02) :407-417