Exploring the multifaceted roles of metal-organic frameworks in ecosystem regulation.

Wanjing Li, Jing Chen, Jian Guo, Ka Teng Chan, Yini Liang, Meixuan Chen, Jing Wang, Srinivas Gadipelli, Xuedong Zhou, Lei Cheng
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Abstract

Achieving microecological balance is a complex environmental challenge. This is because the equilibrium of microecological systems necessitates both the eradication of harmful microorganisms and preservation of the beneficial ones. Conventional materials predominantly target the elimination of pathogenic microorganisms and often neglect the protection of advantageous microbial species. Metal-organic frameworks (MOFs) with excellent physicochemical properties (such as crystalline particles of various dimensions with highly porous network topology, variable local networking structures, diverse compositions with functional groups, high specific surface areas and pore volumes for surface and porous guest molecular adsorption/adhesion/affinity/binding and separation) have been extensively studied as a type of bactericidal material. However, only recently, studies on using MOFs to protect microorganisms have been reported. This review provides a comprehensive analysis of the mechanisms and applications of various MOFs (such as ZIF-8, ZIF-90, HKUST-1, MOF-5, and MIL-101) in both microbial eradication and protection. Insights into previous studies on MOF development, the material-bacteria interaction mechanisms, and potential clinical and environmental applications are also elucidated. MOFs with different framework structures/topologies (zeolite, sodalite, scaffolding, diamond, one-dimensional, and spherical/cylindrical cavities/pore networks), particle dimensions, polyhedral, cubic, rod and open/uncoordinated metal centers or fully coordinated metal centers, and ligand functional groups are discussed to understand the varying degrees of activation and interaction of microorganisms. This review holds potential in guiding future research on the design, synthesis, utilization, and integration of MOFs for the targeted eradication and protection of microorganisms and generating novel MOFs with selective antimicrobial and protective properties. Moreover, this review delivers a timely update and outlines future prospects for MOFs and their interaction with microorganisms, emphasizing their potential as a promising candidate among the next generation of smart materials in the field of ecosystem regulation.

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探索金属有机框架在生态系统调节中的多方面作用。
实现微生态平衡是一项复杂的环境挑战。这是因为微生态系统的平衡既需要消灭有害微生物,又需要保存有益微生物。传统材料主要针对病原微生物的消除,往往忽视了对有利微生物物种的保护。金属有机框架(MOFs)具有优异的物理化学性质(如具有高多孔网络拓扑的各种尺寸的晶体颗粒,可变的局部网络结构,具有功能基团的多种成分,具有表面和多孔客体分子吸附/粘附/亲和/结合和分离的高比表面积和孔体积),作为一种杀菌材料被广泛研究。然而,利用mof保护微生物的研究直到最近才有报道。本文综述了ZIF-8、ZIF-90、HKUST-1、MOF-5和MIL-101等MOF-5在微生物清除和保护方面的作用机制和应用。本文还对MOF的发展、材料-细菌相互作用机制以及潜在的临床和环境应用进行了综述。讨论了具有不同框架结构/拓扑结构(沸石、钠石、脚手架、金刚石、一维和球形/圆柱形空腔/孔网络)、颗粒尺寸、多面体、立方、棒状和开放/不配位金属中心或完全配位金属中心以及配体官能团的mof,以了解微生物的不同程度的活化和相互作用。这一综述对今后设计、合成、利用和整合mof用于靶向清除和保护微生物,以及产生具有选择性抗菌和保护性能的新型mof具有指导意义。此外,这篇综述提供了及时的更新,概述了mof及其与微生物相互作用的未来前景,强调了它们作为生态系统调节领域下一代智能材料的潜力。
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来源期刊
Journal of materials chemistry. B
Journal of materials chemistry. B 化学科学, 工程与材料, 生命科学, 分析化学, 高分子组装与超分子结构, 高分子科学, 免疫生物学, 免疫学, 生化分析及生物传感, 组织工程学, 生物力学与组织工程学, 资源循环科学, 冶金与矿业, 生物医用高分子材料, 有机高分子材料, 金属材料的制备科学与跨学科应用基础, 金属材料, 样品前处理方法与技术, 有机分子功能材料化学, 有机化学
CiteScore
12.00
自引率
0.00%
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0
审稿时长
1 months
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