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Metal ion-assisted self-assembly of complexes for controlled and sustained release of minocycline for biomedical applications

机译:金属离子辅助自组装复合物用于生物医学应用中的米诺环素的控制和持续释放

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摘要

This study reports the development of novel drug delivery complexes self-assembled by divalent metal ion-assisted coacervation for controlled and sustained release of a hydrophilic small drug molecule minocycline (MH). MH is a multifaceted agent that has demonstrated therapeutic effects in infection, inflammation, tumor, as well as cardiovascular, renal, and neurological disorders due to its anti-microbial, anti-inflammatory, and cytoprotective properties. However, the inability to translate the high doses used in experimental animals to tolerable doses in human patients limits its clinical application. Localized delivery can potentially expose the diseased tissue to high concentrations of MH that systemic delivery cannot achieve, while minimizing the side effects from systemic exposure. The strong metal ion binding-assisted interaction enabled high drug entrapment and loading efficiency, and stable long term release for more than 71 days. Released MH demonstrated potent anti-biofilm, anti-inflammatory, and neuroprotective activities. Furthermore, MH release from the complexes is pH-sensitive as the chelation between minocycline and metal ions decreases with pH, allowing ‘smart’ drug release in response to the severity of pathology-induced tissue acidosis. This novel metal ion binding-mediated drug delivery mechanism can potentially be applied to other drugs that have high binding affinity for metal ions and may lead to the development of new delivery systems for a variety of drugs.
机译:这项研究报告了新型的药物递送复合物的开发,该复合物通过二价金属离子辅助凝聚而自组装,用于控制和持续释放亲水性小药物分子米诺环素(MH)。 MH是一种多方面的药物,由于其抗微生物,抗炎和细胞保护特性,已在感染,炎症,肿瘤以及心血管,肾脏和神经系统疾病中显示出治疗作用。然而,不能将用于实验动物的高剂量转化为人类患者的可耐受剂量限制了其临床应用。局部递送可能使患病组织暴露于全身性递送无法达到的高浓度MH,同时将全身性暴露的副作用降至最低。强大的金属离子结合辅助相互作用可实现更高的药物截留率和负载效率,以及稳定的长期释放超过71天。释放的MH表现出有效的抗生物膜,抗炎和神经保护活性。此外,由于米诺环素和金属离子之间的螯合作用随pH的降低而降低,从复合物中释放的MH对pH敏感,从而可根据病理学引起的组织酸中毒的严重程度释放“智能”药物。这种新颖的金属离子结合介导的药物递送机制可以潜在地应用于对金属离子具有高结合亲和力的其他药物,并且可以导致开发用于多种药物的新的递送系统。

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