Mu Yixian, Li Weijie, Yang Xinlei, Chen Junying, Weng Yajun
Key Laboratory of Advanced Technologies of Materials, Ministry of Education, School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu 610031, People's Republic of China.
ACS Biomater Sci Eng. 2022 Nov 14;8(11):4777-4788. doi: 10.1021/acsbiomaterials.2c00959. Epub 2022 Oct 18.
Carbon monoxide (CO) is a bioactive molecule with high potential as it shows promising efficacy for regulating inflammation. Materials capable of storing and delivering CO are of great potential therapeutic value. Although CO-releasing molecules (CORMs) have been developed to deliver CO, the short CO duration of minutes to 2 h confines their practical use. In this study, partially reduced MIL-100(Fe) as a new CO-releasing nanoMOF was developed and used for sustained CO release and macrophage (MA) phenotypic polarization regulation. MIL-100(Fe) was synthesized and mildly annealed in vacuum for partial reduction. When the annealing temperature was lower than 250 °C, less Fe(II) present in MIL-100(Fe) and the subsequent CO adsorption and desorption profiles displayed typical features of physisorption. While it was annealed at 250 °C, it showed about 20% of Fe(III) was reduced, which resulted in chemisorption of CO due to the high coordination affinity of Fe(II) to CO. The loading amount of CO was increased, and the CO release was prolonged for about 24 h. Furthermore, the CO release from this nanoMOF could alter the lipopolysaccharide (LPS)-induced macrophage from M1 to the alternative M2 phenotype and promoted the growth of endothelial cells (ECs) by paracrine regulation of MA. It can be envisioned as a promising CO-releasing solid for biomedical application.
一氧化碳(CO)是一种具有巨大潜力的生物活性分子,因其在调节炎症方面显示出有前景的功效。能够储存和释放CO的材料具有巨大的治疗价值。尽管已经开发出CO释放分子(CORMs)来释放CO,但CO持续时间仅几分钟到2小时,这限制了它们的实际应用。在本研究中,开发了部分还原的MIL-100(Fe)作为一种新型的CO释放纳米金属有机框架,并将其用于持续的CO释放和巨噬细胞(MA)表型极化调节。合成了MIL-100(Fe)并在真空中进行温和退火以实现部分还原。当退火温度低于250°C时,MIL-100(Fe)中存在的Fe(II)较少,随后的CO吸附和解吸曲线显示出典型的物理吸附特征。当在250°C退火时,约20%的Fe(III)被还原,由于Fe(II)对CO的高配位亲和力,导致了CO的化学吸附。CO的负载量增加,CO释放延长至约24小时。此外,这种纳米金属有机框架释放的CO可以将脂多糖(LPS)诱导的巨噬细胞从M1型转变为替代性M2型,并通过MA的旁分泌调节促进内皮细胞(ECs)的生长。它有望成为一种用于生物医学应用的有前景的CO释放固体。