Institute of Biomedical Engineering, National Tsing Hua University, Hsinchu 30013, Taiwan.
Department of Emergency Medicine, Taipei Veterans General Hospital, Taipei 11217, Taiwan.
ACS Appl Mater Interfaces. 2022 Feb 9;14(5):6343-6357. doi: 10.1021/acsami.1c20802. Epub 2022 Jan 26.
Nitric oxide (NO) is an essential endogenous signaling molecule regulating multifaceted physiological functions in the (cardio)vascular, neuronal, and immune systems. Due to the short half-life and location-/concentration-dependent physiological function of NO, translational application of NO as a novel therapeutic approach, however, awaits a strategy for spatiotemporal control on the delivery of NO. Inspired by the magnetic hyperthermia and magneto-triggered drug release featured by FeO conjugates, in this study, we aim to develop a magnetic responsive NO-release material (MagNORM) featuring dual NO-release phases, namely, burst and steady release, for the selective activation of NO-related physiology and treatment of bacteria-infected cutaneous wound. After conjugation of NO-delivery [Fe(μ--thioglycerol)(NO)] with a metal-organic framework (MOF)-derived porous FeO@C, encapsulation of obtained conjugates within the thermo-responsive poly(lactic--glycolic acid) (PLGA) microsphere completes the assembly of MagNORM. Through continuous/pulsatile/no application of the alternating magnetic field (AMF) to MagNORM, moreover, burst/intermittent/slow release of NO from MagNORM demonstrates the AMF as an ON/OFF switch for temporal control on the delivery of NO. Under continuous application of the AMF, in particular, burst release of NO from MagNORM triggers an effective anti-bacterial activity against both Gram-positive () and Gram-negative (). In addition to the magneto-triggered bactericidal effect of MagNORM against -infected cutaneous wound in mice, of importance, steady release of NO from MagNORM without the AMF promotes the subsequent collagen formation and wound healing in mice.
一氧化氮(NO)是一种重要的内源性信号分子,调节心血管、神经元和免疫系统的多种生理功能。由于 NO 的半衰期短且位置/浓度依赖性生理功能,因此将 NO 作为一种新型治疗方法的转化应用需要一种对 NO 传递进行时空控制的策略。受 FeO 配合物的磁热疗和磁触发药物释放的启发,本研究旨在开发一种具有双重 NO 释放相的磁响应型一氧化氮释放材料(MagNORM),即爆发和稳定释放,用于选择性激活与 NO 相关的生理学和治疗细菌感染的皮肤伤口。在将 NO 输送物 [Fe(μ--硫代甘油)(NO)]与金属有机骨架(MOF)衍生的多孔 FeO@C 进行缀合后,将所得缀合物封装在热响应性聚(乳酸-乙醇酸)(PLGA)微球内,完成 MagNORM 的组装。此外,通过连续/脉冲/不应用交变磁场(AMF)于 MagNORM,NO 从 MagNORM 中爆发/间歇性/缓慢释放,证明 AMF 是控制 NO 传递的时间开关。特别是,在连续应用 AMF 的情况下,NO 从 MagNORM 的爆发释放触发了对革兰氏阳性菌()和革兰氏阴性菌()的有效抗菌活性。除了 MagNORM 对感染的皮肤伤口的磁触发杀菌作用外,重要的是,在没有 AMF 的情况下,NO 从 MagNORM 的稳定释放促进了随后在小鼠中的胶原蛋白形成和伤口愈合。