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两性霉素B与季铵化生物可还原类脂质体配方的研究

and Study of Amphotericin B Formulation with Quaternized Bioreducible Lipidoids.

作者信息

Liu Fang, Yang Liu, Li Yamin, Junier Ashlee, Ma Feihe, Chen Jinjin, Han Haobo, Glass Zachary, Zhao Xuewei, Kumamoto Carol A, Sang Hong, Xu Qiaobing

机构信息

Department of Biomedical Engineering, Tufts University, Medford, Massachusetts 02155, United States.

Southern Medical University, Jinling Hospital Department of Dermatology, Nanjing, 210002, China.

出版信息

ACS Biomater Sci Eng. 2020 Feb 10;6(2):1064-1073. doi: 10.1021/acsbiomaterials.9b01722. Epub 2020 Jan 22.

Abstract

Invasive fungal infections are well-known causes of morbidity and mortality in immunocompromised patients. Amphotericin B (AmB) is a polyene fungicidal agent with excellent properties of the broad antifungal spectrum, high activity, and relatively rare drug resistance. However, significant toxicities limit the clinical application of AmB and its conventional formulation AmB deoxycholate (Fungizone). Here we investigated nanoparticle formulations of AmB using synthetic biodegradable lipidoids and evaluated their stability, antifungal efficacy, and toxicity and pharmacokinetics. We found that the AmB formulated using a mixture of quaternized lipidoid (Q78-O14B) and DSPE-PEG2000 has the size around 70-100 nm and is stable during storage. The formulation showed no hemotoxicity to red blood cells (RBCs) . It also possesses the highest antifungal activity () and lowest toxicity (both and ). These metrics are significantly superior to the commercial antifungal product Fungizone. Meanwhile, AmB/Q78-O14B-P exhibited prolonged blood circulation in comparison to Fungizone In AmB/Q78-O14B-P formulation, AmB was still detectable in the liver, spleen, and lung tissues with a concentration above the minimum inhibitory concentrations 72 h after low-dose intravenous injection. Based on these results, AmB in lipidoid nanoparticle formulation may produce sustained antifungal activity against blood-borne and systemic organ infections. Moreover, the new AmB formulation showed low nephrotoxicity and hepatotoxicity in rats even at high doses, allowing a dramatically wider and safer therapeutic window than Fungizone. This method provides a means to develop much needed antifungal agents that will be more therapeutically efficacious, more affordable (than AmBisome), and less toxic (than Fungizone) for the treatment of systemic fungal infections.

摘要

侵袭性真菌感染是免疫功能低下患者发病和死亡的常见原因。两性霉素B(AmB)是一种多烯类杀菌剂,具有抗真菌谱广、活性高、耐药性相对少见等优良特性。然而,其显著的毒性限制了AmB及其传统制剂两性霉素B脱氧胆酸盐(Fungizone)的临床应用。在此,我们研究了使用合成可生物降解类脂的AmB纳米颗粒制剂,并评估了它们的稳定性、抗真菌疗效、毒性和药代动力学。我们发现,使用季铵化类脂(Q78-O14B)和DSPE-PEG2000的混合物配制的AmB粒径约为70-100nm,在储存过程中稳定。该制剂对红细胞(RBC)无血液毒性。它还具有最高的抗真菌活性()和最低的毒性(和)。这些指标明显优于市售抗真菌产品Fungizone。同时,与Fungizone相比,AmB/Q78-O14B-P表现出更长的血液循环时间。在AmB/Q78-O14B-P制剂中,低剂量静脉注射72小时后,在肝脏、脾脏和肺组织中仍可检测到浓度高于最低抑菌浓度的AmB。基于这些结果,类脂纳米颗粒制剂中的AmB可能对血行感染和全身器官感染产生持续的抗真菌活性。此外,新的AmB制剂在大鼠中即使高剂量也显示出低肾毒性和肝毒性,与Fungizone相比具有更宽、更安全的治疗窗。该方法为开发急需的抗真菌药物提供了一种手段,这些药物在治疗系统性真菌感染方面将更具治疗效果、更经济实惠(比安必素)且毒性更低(比Fungizone)。

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