纳米技术
纳米工程
生化工程
纳米医学
计算机科学
材料科学
工程类
纳米颗粒
作者
Miaomiao Ding,Bin Chen,Daniela A. Wilson,Yingfeng Tu,Fei Peng
标识
DOI:10.1002/anie.202423207
摘要
Abstract Developing micro‐/nanomotors that convert a chemical energy input into a local gradient field and motion is an appealing but challenging task that holds particular promise for the intersection of materials and nanoengineering. Over the past two decades, remarkable advancements have refined these out‐of‐equilibrium chemically powered micro‐/nanomotors, enabling them to orchestrate in situ chemical transformations that dynamically change local environments. The ionic products, radicals, gases, and electric fields from these active materials reshape the microenvironment, paving the way for ecofriendly disease interventions. This review discusses the state‐of‐the‐art reactions that propel these energy‐consuming micro‐/nanomotors and elucidates the emerging implications of their products on biological systems. Particular emphasis has been placed on their potential for neural modulation, reactive oxygen species (ROS) regulation, synergistic tumor therapy, antibacterial strategies, and tissue regeneration. Collectively, these sketches provide a landscape of therapeutic modalities, heralding a new era of biomedicine. By harnessing the in situ product field of this active matter, we envision a paradigm shift toward active therapies that transcend conventional approaches, promising breakthroughs in disease diagnosis, treatment, and prevention.
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