State Key Laboratory of Quality Research in Chinese Medicine, Institute of Chinese Medical Sciences, University of Macau, Taipa, Macau 999078, China.
Department of Pharmaceutical Sciences, Faculty of Health Sciences, University of Macau, Taipa, Macau 999078, China.
ACS Appl Mater Interfaces. 2023 Jun 21;15(24):29012-29022. doi: 10.1021/acsami.3c06025. Epub 2023 Jun 8.
A cell-based drug delivery system has emerged as a promising drug delivery platform. Due to their innate inflammatory tropism, natural and engineered macrophages have exhibited targeted accumulation in inflammatory tissues, which has allowed targeted delivery of medicine for the treatment of a variety of inflammatory diseases. Nevertheless, live macrophages may take up the medicine and metabolize it during preparation, storage, and in vivo delivery, sometimes causing unsatisfactory therapeutic efficacy. In addition, live macrophage-based drug delivery systems are usually freshly prepared and injected, due to the poor stability that does not allow storage. "Off-the-shelf" products would be indeed conducive to the timely therapy of acute diseases. Herein, a cryo-shocked macrophage-based drug delivery system was developed via supramolecular conjugation of cyclodextrin (CD)-modified "zombie" macrophages and adamantane (ADA)-functionalized nanomedicine. "Zombie" macrophages exhibited a much better storage stability over time than their counterpart live macrophage drug carriers and maintained cell morphology, membrane integrity, and biological functions. In an acute pneumonia mouse model, "zombie" macrophages carried quercetin-loaded nanomedicine, hand-in-hand, to the inflammatory lung tissues and effectively alleviated the inflammation in mice.
一种基于细胞的药物输送系统已成为一种有前途的药物输送平台。由于其固有的炎症趋向性,天然和工程化的巨噬细胞在炎症组织中表现出靶向积累,从而实现了针对各种炎症性疾病的药物靶向递送。然而,活巨噬细胞在制备、储存和体内递送过程中可能会摄取药物并代谢药物,有时会导致治疗效果不理想。此外,由于稳定性差,不允许储存,基于活巨噬细胞的药物输送系统通常是新鲜制备和注射的。“现成的”产品确实有利于急性疾病的及时治疗。在此,通过超分子缀合环糊精(CD)修饰的“僵尸”巨噬细胞和金刚烷(ADA)功能化纳米药物,开发了一种冷冻休克巨噬细胞药物输送系统。“僵尸”巨噬细胞的储存稳定性随着时间的推移明显优于其对应的活巨噬细胞药物载体,并保持细胞形态、膜完整性和生物功能。在急性肺炎小鼠模型中,“僵尸”巨噬细胞携载槲皮素负载的纳米药物,共同靶向炎症肺组织,并有效缓解了小鼠的炎症。