Wu Yanggui, Chen Senbin, Zhu Jintao
Key Laboratory of Materials Chemistry for Energy Conversion and Storage, Ministry of Education (HUST), School of Chemistry and Chemical Engineering, Huazhong University of Science and Technology (HUST), Wuhan 430074, China.
Biomacromolecules. 2022 Oct 10;23(10):4230-4240. doi: 10.1021/acs.biomac.2c00717. Epub 2022 Sep 8.
Complete cancer cure and healing are still difficult, owing to its complexity and heterogeneity. Integration of supramolecular forces, for example, hydrogen bonds (H-bonds), to anti-cancer nanomedicine affords new scaffolds for biomedical material decoration, featuring the advantages of dynamic property and easier processability. Here, we target the construction of H-bond-mediated supramolecular polymer micelles, loaded with a chemotherapeutic drug along with a photothermal agent for synergistic chemo-/photothermal therapies (CT/PTT). To do so, we design and synthesize an amphiphilic ABA-type triblock copolymer, bearing H-bonding moiety (barbiturate, Ba) within the middle hydrophobic B block. The presence of pendant Ba moieties within the hydrophobic core promotes the loading capability of methotrexate (MTX) and transportation stability, benefitting from the formation of specific Ba/MTX H-bonding interactions. IR780, a photothermal agent, concomitantly encapsulated hydrophobic interactions, facilitates the development of a synergistic CT/PTT modalities, where MTX can be released on demand owing to the dissociation of Ba/MTX H-bonding interactions induced by elevated temperature. Such H-bonding nanomedicine possesses enhanced drug loading capacity and transport performance and can also trigger stimuli-responsive drug release in the tumor zone. We believe that H-bonded nanomedicines provide a fine toolbox that is conducive to attaining biomedical requirements with remarkable values in theranostics that are highly promising in clinical applications.
由于癌症的复杂性和异质性,实现完全治愈和康复仍然困难重重。将超分子作用力,例如氢键,整合到抗癌纳米药物中,可为生物医学材料修饰提供新的支架,具有动态特性和易于加工的优点。在此,我们旨在构建氢键介导的超分子聚合物胶束,负载化疗药物以及光热剂,用于协同化疗/光热疗法(CT/PTT)。为此,我们设计并合成了一种两亲性ABA型三嵌段共聚物,在中间的疏水B嵌段中带有氢键部分(巴比妥酸盐,Ba)。疏水核心中存在的侧链Ba部分促进了甲氨蝶呤(MTX)的负载能力和运输稳定性,这得益于特定的Ba/MTX氢键相互作用的形成。光热剂IR780通过疏水相互作用同时被包裹,促进了协同CT/PTT模式的发展,其中由于温度升高引起的Ba/MTX氢键相互作用的解离,MTX可以按需释放。这种氢键纳米药物具有增强的载药能力和运输性能,还能在肿瘤区域触发刺激响应性药物释放。我们相信,氢键纳米药物提供了一个很好的工具箱,有助于满足生物医学需求,在诊疗中具有显著价值,在临床应用中前景广阔。