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超微孔 Fe-MOF 在生物介质中具有延长的 NO 释放,可用于治疗应用。

Ultra-Microporous Fe-MOF with Prolonged NO Delivery in Biological Media for Therapeutic Application.

机构信息

CERENA, Departamento de Engenharia Química, Instituto Superior Técnico, Universidade de Lisboa, Lisboa, 1049-001, Portugal.

CQE -Centro de Química Estrutural, Institute of Molecular Sciences, Departamento de Química e Bioquímica, Faculdade de Ciências, Universidade de Lisboa, Lisboa, 1749-016, Portugal.

出版信息

Small. 2024 Nov;20(48):e2405649. doi: 10.1002/smll.202405649. Epub 2024 Sep 12.

Abstract

Nitric oxide (NO), a key element in the regulation of essential biological mechanisms, presents huge potential as therapeutic agent in the treatment and prevention of chronic diseases. Metal-organic frameworks (MOFs) with open metal sites are promising carriers for NO therapies but delivering it over an extended period in biological media remains a great challenge due to i) a fast degradation of the material in body fluids and/or ii) a rapid replacement of NO by water molecules onto the Lewis acid sites. Here, a new ultra-narrow pores Fe bisphosphonate MOF, denoted MIP-210(Fe) or Fe(HO)(Hmbpa) (Hmbpa = p-xylenediphosphonic acid) is described that adsorbs NO due to an unprecedented sorption mechanism: coordination of NO through the Fe(III) sites is unusually preferred, replacing bound water, and creating a stable interaction with the free HO and P-OH groups delimiting the ultra-narrow pores. This, associated with the high chemical stability of the MOF in body fluids, enables an unprecedented slow replacement of NO by water molecules in biological media, achieving an extraordinarily extended NO delivery time over at least 70 h, exceeding by far the NO kinetics release reported with others porous materials, paving the way for the development of safe and successful gas therapies.

摘要

一氧化氮(NO)是调节基本生物机制的关键元素,作为治疗和预防慢性疾病的治疗剂具有巨大的潜力。具有开放金属位点的金属-有机骨架(MOFs)是治疗 NO 的有前途的载体,但由于以下原因,在生物介质中长时间输送它仍然是一个巨大的挑战:i)在体液中材料的快速降解和/或 ii)水分子在路易斯酸位点上对 NO 的快速取代。在这里,描述了一种新的超窄孔 Fe 双膦酸盐 MOF,称为 MIP-210(Fe)或 Fe(HO)(Hmbpa)(Hmbpa = 对苯二甲酸二膦酸),由于一种前所未有的吸附机制,它可以吸附 NO:通过 Fe(III)位点的配位非常优先,取代结合水,并与限定超窄孔的游离 HO 和 P-OH 基团形成稳定的相互作用。这与 MOF 在体液中的高化学稳定性相关联,使得在生物介质中水分子对 NO 的取代速度异常缓慢,实现了至少 70 小时的非凡延长的 NO 输送时间,远远超过了其他多孔材料报告的 NO 动力学释放,为安全有效的气体治疗铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/04b9/11600697/43ed11c6120d/SMLL-20-2405649-g004.jpg

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