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胶束临界浓度在超分子聚合物功效和毒性中的作用。

The role of critical micellization concentration in efficacy and toxicity of supramolecular polymers.

机构信息

Department of Chemical and Biomolecular Engineering, The Johns Hopkins University, Baltimore, MD 21218.

Institute for NanoBioTechnology, The Johns Hopkins University, Baltimore, MD 21218.

出版信息

Proc Natl Acad Sci U S A. 2020 Mar 3;117(9):4518-4526. doi: 10.1073/pnas.1913655117. Epub 2020 Feb 18.

Abstract

The inception and development of supramolecular chemistry have provided a vast library of supramolecular structures and materials for improved practice of medicine. In the context of therapeutic delivery, while supramolecular nanostructures offer a wide variety of morphologies as drug carriers for optimized targeting and controlled release, concerns are often raised as to how their morphological stability and structural integrity impact their in vivo performance. After intravenous (i.v.) administration, the intrinsic reversible and dynamic feature of supramolecular assemblies may lead them to dissociate upon plasma dilution to a concentration below their critical micellization concentration (CMC). As such, CMC represents an important characteristic for supramolecular biomaterials design, but its pharmaceutical role remains elusive. Here, we report the design of a series of self-assembling prodrugs (SAPDs) that spontaneously associate in aqueous solution into supramolecular polymers (SPs) with varying CMCs. Two hydrophobic camptothecin (CPT) molecules were conjugated onto oligoethylene-glycol (OEG)-decorated segments with various OEG repeat numbers (2, 4, 6, 8). Our studies show that the lower the CMC, the lower the maximum tolerated dose (MTD) in rodents. When administrated at the same dosage of 10 mg/kg (CPT equivalent), SAPD 1, the one with the lowest CMC, shows the best efficacy in tumor suppression. These observations can be explained by the circulation and dissociation of SAPD SPs and the difference in molecular and supramolecular distribution between excretion and organ uptake. We believe these findings offer important insight into the role of supramolecular stability in determining their therapeutic index and in vivo efficacy.

摘要

超分子化学的出现和发展为医学实践的改进提供了大量的超分子结构和材料。在治疗药物传递的背景下,虽然超分子纳米结构为药物载体提供了广泛的形态,以实现优化的靶向和控制释放,但人们常常关注它们的形态稳定性和结构完整性如何影响其体内性能。在静脉注射 (i.v.) 给药后,超分子组装体的固有可逆和动态特性可能导致它们在血浆稀释至低于临界胶束浓度 (CMC) 时解离。因此,CMC 是超分子生物材料设计的一个重要特征,但它的药物作用仍然难以捉摸。在这里,我们报告了一系列自组装前药 (SAPD) 的设计,这些前药在水溶液中自发缔合成具有不同 CMC 的超分子聚合物 (SP)。两个疏水喜树碱 (CPT) 分子被连接到具有不同 OEG 重复数 (2、4、6、8) 的寡聚乙二醇 (OEG) 修饰的片段上。我们的研究表明,CMC 越低,啮齿动物的最大耐受剂量 (MTD) 越低。当以 10 mg/kg(CPT 当量)的相同剂量给药时,CMC 最低的 SAPD1 在肿瘤抑制方面表现出最佳疗效。这些观察结果可以通过 SAPD SP 的循环和解离以及排泄和器官摄取之间的分子和超分子分布差异来解释。我们相信这些发现为超分子稳定性在决定其治疗指数和体内疗效方面的作用提供了重要的见解。

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