Patil Pravin D, Gargate Niharika, Tiwari Manishkumar S, Nadar Shamraja S
Department of Basic Science & Humanities, Mukesh Patel School of Technology Management & Engineering, SVKM's Narsee Monjee Institute of Management Studies (NMIMS) Deemed-to-University, Mumbai 400056, India.
Department of Biotechnology Engineering, Kolhapur Institute of Technology's College of Engineering, Kolhapur 416 234, India.
Int J Biol Macromol. 2025 Feb;291:138984. doi: 10.1016/j.ijbiomac.2024.138984. Epub 2024 Dec 18.
In the realm of carriers for enzyme immobilization, the use of MOFs has accelerated owing to their exceptional porosity and stability. Among these, 2D metal-organic frameworks (2D-MOFs) have emerged as promising supports for enzyme immobilization. This review highlights advancements in their synthesis, structural properties, and functional characteristics, focusing on enhancing catalytic performance and stability. Brief insights into computational approaches for optimizing these nanostructures and their catalytic efficiency are provided. The unique synergy between 2D MOF-based nanozymes and enzymes is discussed, showcasing their potential in diverse applications. Challenges in their practical implementation, prospective solutions, and future research directions are also outlined. This review emphasizes the transformative potential of 2D MOFs, focusing on their design and bioapplications and paving the way for innovative and sustainable strategies.
在酶固定化载体领域,由于其卓越的孔隙率和稳定性,金属有机框架(MOF)的应用加速发展。其中,二维金属有机框架(2D-MOF)已成为酶固定化的有前景的载体。本综述重点介绍了它们在合成、结构性质和功能特性方面的进展,着重于提高催化性能和稳定性。简要介绍了优化这些纳米结构及其催化效率的计算方法。讨论了基于二维MOF的纳米酶与酶之间独特的协同作用,展示了它们在各种应用中的潜力。还概述了它们实际应用中的挑战、潜在解决方案和未来研究方向。本综述强调了二维MOF的变革潜力,重点关注其设计和生物应用,为创新和可持续战略铺平道路。