Ding Zhen, Bao Xingfu, Chen Tianyan, Zhang Jinming, Xu Chengjing, Tang Nan, Hu Min, Liu Zhen
Beijing Advanced Innovation Center for Soft Matter Science and Engineering, College of Life Science and Technology, Beijing University of Chemical Technology, Beijing, 100029, China.
Jilin Provincial Key Laboratory of Tooth Development and Bone Remodeling, School and Hospital of Stomatology, Jilin University, Changchun, 130021, China.
Adv Healthc Mater. 2025 Feb;14(4):e2403061. doi: 10.1002/adhm.202403061. Epub 2024 Oct 29.
Efficient personal protection has emerged as a crucial approach for reducing pulmonary injury induced by particulate matter (PM). However, current personal protective equipments usually lack essential biosafety concerns and fail to own adsorbing/antioxidant/antibacterial function together, making it a challenge to develop an integrated platform with the above characteristics. Herein, a facile oxygen-free hydrothermal strategy is proposed to synthesize new copper-based metal-organic frameworks, Cu-HHTPs, (HHTP: 2,3,6,7,10,11-hexahydroxytriphenylene), with great adsorbing/antioxidant/antibacterial activity and high biosafety. The Cu-HHTPs can serve as an efficient additive incorporated with various fabrics including cellulose acetate (CA) membrane to achieve novel fabric composites, such as CA@Cu-HHTPs, with ideal scavenging outcome for the main components of PM. Evidenced by the animal experiments, CA@Cu-HHTPs can highly mitigate PM-induced adverse effects via adsorbing PM, scavenging ROS, and killing bacteria, leading to a significant reduction in lung permeability, inflammation and oxidative stress, and pulmonary infection. Last but not least, a two-week exposure of CA@Cu-HHTPs exhibits no obvious damage toward the animals by examining their long-term toxicity. Collectively, this study not only highlights the potential of Cu-HHTPs as attractive additives for the preparation of fabric composites, but also lays out a new concept toward the development of new-generation multifunctional personal protective equipment against PM.
高效的个人防护已成为减少颗粒物(PM)所致肺损伤的关键方法。然而,目前的个人防护装备通常缺乏基本的生物安全性考量,且无法同时具备吸附/抗氧化/抗菌功能,因此开发具有上述特性的集成平台具有挑战性。在此,我们提出一种简便的无氧水热策略来合成新型铜基金属有机框架材料Cu-HHTPs(HHTP:2,3,6,7,10,11-六羟基三亚苯),其具有出色的吸附/抗氧化/抗菌活性和高生物安全性。Cu-HHTPs可作为一种高效添加剂与包括醋酸纤维素(CA)膜在内的各种织物结合,以制备新型织物复合材料,如CA@Cu-HHTPs,对PM的主要成分具有理想的清除效果。动物实验表明,CA@Cu-HHTPs可通过吸附PM、清除活性氧和杀灭细菌来显著减轻PM诱导的不良反应,从而使肺通透性、炎症和氧化应激以及肺部感染显著降低。最后但同样重要的是,通过检测CA@Cu-HHTPs的长期毒性发现,两周的暴露对动物没有明显损害。总体而言,本研究不仅突出了Cu-HHTPs作为制备织物复合材料的有吸引力添加剂的潜力,还为开发新一代抗PM多功能个人防护装备提出了新的概念。