MXene-Based Composites as Nanozymes in Biomedicine: A Perspective

IF 36.3 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Siavash Iravani, Rajender S. Varma
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引用次数: 0

Abstract

MXene-based nanozymes have garnered considerable attention because of their potential environmental and biomedical applications. These materials encompass alluring and manageable catalytic performances and physicochemical features, which make them suitable as (bio)sensors with high selectivity/sensitivity and efficiency. MXene-based structures with suitable electrical conductivity, biocompatibility, large surface area, optical/magnetic properties, and thermal/mechanical features can be applied in designing innovative nanozymes with area-dependent electrocatalytic performances. Despite the advances made, there is still a long way to deploy MXene-based nanozymes, especially in medical and healthcare applications; limitations pertaining the peroxidase-like activity and sensitivity/selectivity may restrict further practical applications of pristine MXenes. Thus, developing an efficient surface engineering tactic is still required to fabricate multifunctional MXene-based nanozymes with excellent activity. To obtain MXene-based nanozymes with unique physicochemical features and high stability, some crucial steps such as hybridization and modification ought to be performed. Notably, (nano)toxicological and long-term biosafety analyses along with clinical translation studies still need to be comprehensively addressed. Although very limited reports exist pertaining to the biomedical potentials of MXene-based nanozymes, the future explorations should transition toward the extensive research and detailed analyses to realize additional potentials of these structures in biomedicine with a focus on clinical and industrial aspects. In this perspective, therapeutic, diagnostic, and theranostic applications of MXene-based nanozymes are deliberated with a focus on future perspectives toward more successful clinical translational studies. The current state-of-the-art biomedical advances in the use of MXene-based nanozymes, as well as their developmental challenges and future prospects are also highlighted. In view of the fascinating properties of MXene-based nanozymes, these materials can open significant new opportunities in the future of bio- and nanomedicine.

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作为生物医学中的纳米酶的 MXene 基复合材料:透视。
基于 MXene 的纳米酶因其潜在的环境和生物医学应用而备受关注。这些材料具有诱人且易于管理的催化性能和理化特性,因此适合用作具有高选择性/灵敏度和高效率的(生物)传感器。基于 MXene 的结构具有合适的导电性、生物相容性、大表面积、光学/磁性能和热/机械特性,可用于设计具有区域电催化性能的创新型纳米酶。尽管取得了这些进展,但要部署基于二氧化二烯的纳米酶,特别是在医疗和保健应用方面,还有很长的路要走;过氧化物酶样活性和灵敏度/选择性方面的限制可能会限制原始二氧化二烯的进一步实际应用。因此,仍然需要开发一种高效的表面工程策略,以制造出具有优异活性的多功能 MXene 基纳米酶。要获得具有独特理化特性和高稳定性的 MXene 基纳米酶,必须进行杂化和修饰等关键步骤。值得注意的是,(纳米)毒理学和长期生物安全性分析以及临床转化研究仍有待全面解决。尽管有关基于 MXene 的纳米酶的生物医学潜力的报道非常有限,但未来的探索应转向广泛的研究和详细的分析,以实现这些结构在生物医学中的更多潜力,重点是临床和工业方面。从这个角度出发,讨论了基于 MXene 的纳米酶在治疗、诊断和治疗方面的应用,并重点探讨了成功开展临床转化研究的未来前景。此外,还重点介绍了目前在使用基于 MXene 的纳米酶方面取得的最先进的生物医学进展及其发展挑战和未来前景。鉴于基于 MXene 的纳米酶的迷人特性,这些材料可为未来的生物和纳米医学带来重要的新机遇。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Nano-Micro Letters
Nano-Micro Letters NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
42.40
自引率
4.90%
发文量
715
审稿时长
13 weeks
期刊介绍: Nano-Micro Letters is a peer-reviewed, international, interdisciplinary and open-access journal that focus on science, experiments, engineering, technologies and applications of nano- or microscale structure and system in physics, chemistry, biology, material science, pharmacy and their expanding interfaces with at least one dimension ranging from a few sub-nanometers to a few hundreds of micrometers. Especially, emphasize the bottom-up approach in the length scale from nano to micro since the key for nanotechnology to reach industrial applications is to assemble, to modify, and to control nanostructure in micro scale. The aim is to provide a publishing platform crossing the boundaries, from nano to micro, and from science to technologies.
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