Boosting disassembly of π–π stacked supramolecular nanodrugs under tumor microenvironment by introducing stimuli-responsive drug-mates

Aggregate Pub Date : 2024-08-20 DOI:10.1002/agt2.648
Wenzhe Xu, Ruixu Yang, Yingke Xue, Yang Chen, Shuwei Liu, Songling Zhang, Yonggang Wang, Yi Liu, Hao Zhang
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Abstract

Numerous reports have demonstrated the construction of supramolecular nanodrugs (SNDs) via the π–π stacking of drug molecules for antitumor applications because most drugs possess aromatic rings or other planar conjugate units. However, the destruction of π–π stacking and the subsequent disassembly of SNDs under tumor microenvironment (TME), which is the precondition for drug release, have not been clearly described. In this work, based on a disassembly model of π–π stacked naphthoquinone SNDs, the influence of co-assembled drugs on disassembly is delineated. Both the experimental observation and computational simulation indicate that the disassembly of SNDs under simulated TME highly depends on the disassembly activation energy (ΔEdis) of neighboring π–π stacked molecules. Owing to the high ΔEdis, the disassembly of self-assembled naphthoquinone SNDs is greatly restricted. Meaningfully, the ΔEdis is the sum of a series of activation energy according to the specific stimuli of TME. Thus, a concept of stimuli-responsive drug-mates is proposed for boosting the disassembly of π–π stacked SNDs, namely the foremost co-assembly of π-conjugated drugs with additional drug molecules that possess relatively weak π–π interaction but high TME responsiveness. Further computational simulation reveals that the introduction of stimuli-responsive drug-mates significantly lowers the ΔEdis, thus accelerating the disassembly of SNDs and the release of drug payloads. Holding the advantages of π-conjugated drug library, the concept of stimuli-responsive drug-mates gives an extensive design of π–π stacked SNDs toward heterogeneous nidus microenvironment responsiveness, which highlights the superiority of widely used drug co-assembly strategy in constructing multifunctional SNDs.

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通过引入刺激响应性药物配体促进π-π叠层超分子纳米药物在肿瘤微环境下的分解
由于大多数药物都具有芳香环或其他平面共轭单元,因此许多报道都证明了通过药物分子的π-π堆积构建超分子纳米药物(SNDs)可用于抗肿瘤。然而,SNDs 在肿瘤微环境(TME)下的π-π堆积破坏和随后的解体(这是药物释放的前提条件)尚未得到清楚的描述。本研究基于π-π堆叠萘醌SNDs的解体模型,探讨了共组装药物对解体的影响。实验观察和计算模拟均表明,在模拟 TME 条件下,SNDs 的拆分高度依赖于相邻 π-π 堆叠分子的拆分活化能(ΔEdis)。由于ΔEdis较高,自组装萘醌 SND 的拆卸受到很大限制。有意义的是,ΔEdis 是根据 TME 的特定刺激而产生的一系列活化能的总和。因此,为了促进π-π叠层 SNDs 的解体,我们提出了刺激响应性药物配体的概念,即π-共轭药物与具有相对弱的π-π相互作用但具有高 TME 响应性的附加药物分子进行最重要的共组装。进一步的计算模拟显示,刺激响应性药物配体的引入大大降低了ΔEdis,从而加速了 SND 的解体和药物载荷的释放。鉴于π-共轭药物库的优势,刺激响应药物配体的概念为π-π叠层SNDs的异质巢微环境响应性提供了广泛的设计思路,凸显了广泛应用的药物共组装策略在构建多功能SNDs方面的优越性。
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