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Ultrasound-triggered therapeutic microbubbles enhance the efficacy of cytotoxic drugs by increasing circulation and tumor drug accumulation and limiting bioavailability and toxicity in normal tissues

微气泡 伊立替康 体内分布 医学 药物输送 治疗指标 药理学 药代动力学 癌症研究 超声波 癌症 结直肠癌 药品 化学 体外 内科学 放射科 有机化学 生物化学
作者
Nicola Ingram,Laura E. McVeigh,Radwa H. Abou-Saleh,Juliana Maynard,Sally A. Peyman,James R. McLaughlan,Michael Fairclough,Gemma Marston,Elizabeth M. A. Valleley,Jorge Jimenez Macias,Antonia Charalambous,William A. Townley,Malcolm Haddrick,Antonia Wierzbicki,Alexander Wright,Milène Volpato,Peter B. Simpson,Darren Treanor,Neil H. Thomson,Paul M. Loadman,Richard J. Bushby,Benjamin Johnson,Pamela F. Jones,JA Evans,Steven Freear,Alexander F. Markham,Stephen D. Evans,P. Louise Coletta
出处
期刊:Theranostics [Ivyspring International Publisher]
卷期号:10 (24): 10973-10992 被引量:46
标识
DOI:10.7150/thno.49670
摘要

Most cancer patients receive chemotherapy at some stage of their treatment which makes improving the efficacy of cytotoxic drugs an ongoing and important goal. Despite large numbers of potent anti-cancer agents being developed, a major obstacle to clinical translation remains the inability to deliver therapeutic doses to a tumor without causing intolerable side effects. To address this problem, there has been intense interest in nanoformulations and targeted delivery to improve cancer outcomes. The aim of this work was to demonstrate how vascular endothelial growth factor receptor 2 (VEGFR2)-targeted, ultrasound-triggered delivery with therapeutic microbubbles (thMBs) could improve the therapeutic range of cytotoxic drugs. Methods: Using a microfluidic microbubble production platform, we generated thMBs comprising VEGFR2-targeted microbubbles with attached liposomal payloads for localised ultrasound-triggered delivery of irinotecan and SN38 in mouse models of colorectal cancer. Intravenous injection into tumor-bearing mice was used to examine targeting efficiency and tumor pharmacodynamics. High-frequency ultrasound and bioluminescent imaging were used to visualise microbubbles in real-time. Tandem mass spectrometry (LC-MS/MS) was used to quantitate intratumoral drug delivery and tissue biodistribution. Finally, 89Zr PET radiotracing was used to compare biodistribution and tumor accumulation of ultrasound-triggered SN38 thMBs with VEGFR2-targeted SN38 liposomes alone. Results: ThMBs specifically bound VEGFR2 in vitro and significantly improved tumor responses to low dose irinotecan and SN38 in human colorectal cancer xenografts. An ultrasound trigger was essential to achieve the selective effects of thMBs as without it, thMBs failed to extend intratumoral drug delivery or demonstrate enhanced tumor responses. Sensitive LC-MS/MS quantification of drugs and their metabolites demonstrated that thMBs extended drug exposure in tumors but limited exposure in healthy tissues, not exposed to ultrasound, by persistent encapsulation of drug prior to elimination. 89Zr PET radiotracing showed that the percentage injected dose in tumors achieved with thMBs was twice that of VEGFR2-targeted SN38 liposomes alone. Conclusions: thMBs provide a generic platform for the targeted, ultrasound-triggered delivery of cytotoxic drugs by enhancing tumor responses to low dose drug delivery via combined effects on circulation, tumor drug accumulation and exposure and altered metabolism in normal tissues.
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