Mathieu Varache, Siân Rizzo, Edward J. Sayers, Lucy Newbury, Anna Mason, Chia-Te Liao, Emilie Chiron, Nathan Bourdiec, Adam Jones, Donald J. Fraser, Philip R. Taylor, Arwyn T. Jones, David W. Thomas and Elaine L. Ferguson
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Whilst it was evident <em>in vitro</em> that polymer conjugation can reduce toxicity and prolong plasma half-life, without significant reduction in antimicrobial activity of colistin, it was unclear how dextrin conjugation would alter cellular uptake and localisation of colistin in renal tubular cells <em>in vivo</em>. We discovered that dextrin conjugation effectively reduced colistin's toxicity towards human kidney proximal tubular epithelial cells (HK-2) <em>in vitro</em>, which was mirrored by significantly less cellular uptake of Oregon Green (OG)-labelled dextrin–colistin conjugate, when compared to colistin. Using live-cell confocal imaging, we revealed localisation of both, free and dextrin-bound colistin in endolysosome compartments of HK-2 and NRK-52E cells. Using a murine AKI model, we demonstrated dextrin–colistin conjugation dramatically diminishes both proximal tubular injury and renal accumulation of colistin. 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引用次数: 0
摘要
20%-60%的患者在全身服用可乐定后会出现急性肾损伤(AKI)和剂量限制性肾毒性,这对有效治疗耐多药革兰氏阴性菌感染构成了挑战。为了降低可乐定的临床毒性并改善对感染/发炎组织的靶向性,我们之前开发了糊精-可乐定共轭物,通过增强的渗透性和滞留效应被动靶向后,在感染和发炎组织中通过淀粉酶触发的糊精降解释放可乐定。虽然体外实验表明,聚合物共轭可以降低毒性并延长血浆半衰期,同时不会显著降低可乐定的抗菌活性,但目前还不清楚糊精共轭会如何改变细胞对可乐定的吸收以及可乐定在肾小管细胞中的定位。我们发现,在体外,糊精共轭可有效降低可乐定对人肾近曲小管上皮细胞(HK-2)的毒性,与可乐定相比,细胞对俄勒冈绿(OG)标记的糊精-可乐定共轭物的摄取明显减少,这反映了这一点。利用活细胞共聚焦成像技术,我们揭示了游离和与糊精结合的可乐定在 HK-2 和 NRK-52E 细胞溶酶体内的定位情况。通过使用小鼠 AKI 模型,我们证明了糊精-可乐定共轭可显著减轻近端肾小管损伤和可乐定在肾脏的蓄积。这些发现揭示了糊精共轭克服可乐定肾毒性的新机制,并显示了聚合物共轭改善肾毒性药物副作用的潜力。
Dextrin conjugation to colistin inhibits its toxicity, cellular uptake and acute kidney injury in vivo†
The acute kidney injury (AKI) and dose-limiting nephrotoxicity, which occurs in 20–60% of patients following systemic administration of colistin, represents a challenge in the effective treatment of multi-drug resistant Gram-negative infections. To reduce clinical toxicity of colistin and improve targeting to infected/inflamed tissues, we previously developed dextrin–colistin conjugates, whereby colistin is designed to be released by amylase-triggered degradation of dextrin in infected and inflamed tissues, after passive targeting by the enhanced permeability and retention effect. Whilst it was evident in vitro that polymer conjugation can reduce toxicity and prolong plasma half-life, without significant reduction in antimicrobial activity of colistin, it was unclear how dextrin conjugation would alter cellular uptake and localisation of colistin in renal tubular cells in vivo. We discovered that dextrin conjugation effectively reduced colistin's toxicity towards human kidney proximal tubular epithelial cells (HK-2) in vitro, which was mirrored by significantly less cellular uptake of Oregon Green (OG)-labelled dextrin–colistin conjugate, when compared to colistin. Using live-cell confocal imaging, we revealed localisation of both, free and dextrin-bound colistin in endolysosome compartments of HK-2 and NRK-52E cells. Using a murine AKI model, we demonstrated dextrin–colistin conjugation dramatically diminishes both proximal tubular injury and renal accumulation of colistin. These findings reveal new insight into the mechanism by which dextrin conjugation can overcome colistin's renal toxicity and show the potential of polymer conjugation to improve the side effect profile of nephrotoxic drugs.