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两亲性肽水凝胶与脂质体的正交自组装产生具有可调释放曲线的复合材料。

Orthogonal Self-Assembly of Amphiphilic Peptide Hydrogels and Liposomes Results in Composite Materials with Tunable Release Profiles.

作者信息

Swain Joseph W R, Yang Claire Y, Hartgerink Jeffrey D

出版信息

Biomacromolecules. 2023 Nov 13;24(11):5018-5026. doi: 10.1021/acs.biomac.3c00664. Epub 2023 Sep 10.

Abstract

Self-assembled nanomaterials are promising candidates for drug delivery by providing a higher degree of spatiotemporal control compared to free drugs. However, challenges such as burst release, inadequate targeting, and drug-nanomaterial incompatibility leave room for improvement. The combination of orthogonal self-assembling systems can result in more useful materials that improve upon these weaknesses. In this work, we investigate an orthogonal self-assembling system of nanofibrous MultiDomain Peptide (MDP) hydrogels encapsulating liposomes. Both positively charged and negatively charged MDPs were prepared and mixed with positively charged, negatively charged, or zwitterionic liposomes for a total of six composites. We demonstrate that, despite both systems being amphiphilic, they are able to mix while retaining their independent identities. We show that changing the charge of either liposomes or MDPs does not hinder the self-assembly of either system or significantly affect their rheological properties. In all six cases, small molecules encapsulated in liposome-MDP composites resulted in slower release than was possible in MDP hydrogels alone. However, in one case, positively charged MDPs destabilized negatively charged liposomes and resulted in a unique release profile. Finally, we show that MDP hydrogels substantially decrease the release of chemotherapeutic doxorubicin from its liposomal formulation, Doxil, for 24 h. This work demonstrates the chemical compatibility of amphiphilic, orthogonally self-assembled systems and the range of their drug-delivering capabilities.

摘要

与游离药物相比,自组装纳米材料通过提供更高程度的时空控制,有望成为药物递送的候选材料。然而,诸如突释、靶向不足和药物 - 纳米材料不相容性等挑战仍有改进空间。正交自组装系统的组合可产生更有用的材料,改善这些弱点。在这项工作中,我们研究了一种包封脂质体的纳米纤维多结构域肽(MDP)水凝胶的正交自组装系统。制备了带正电荷和负电荷的MDP,并将其与带正电荷、负电荷或两性离子脂质体混合,共得到六种复合材料。我们证明,尽管这两种系统都是两亲性的,但它们能够混合并保持各自独立的特性。我们表明,改变脂质体或MDP的电荷不会阻碍任何一种系统的自组装,也不会显著影响其流变学性质。在所有六种情况下,脂质体 - MDP复合材料中包封的小分子释放速度比单独的MDP水凝胶中要慢。然而,在一种情况下,带正电荷的MDP使带负电荷的脂质体不稳定,并导致独特的释放曲线。最后,我们表明MDP水凝胶在24小时内显著降低了化疗药物阿霉素从其脂质体制剂Doxil中的释放。这项工作证明了两亲性正交自组装系统的化学相容性及其药物递送能力的范围。

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