Laboratory of Molecular Imaging and Nanomedicine , National Institute of Biomedical Imaging and Bioengineering, National Institutes of Health , Bethesda , Maryland 20892 , United States.
Department of Surgery , First Affiliated Hospital of Zhejiang University , Hangzhou 310027 , People's Republic of China.
J Am Chem Soc. 2018 Jun 27;140(25):8005-8019. doi: 10.1021/jacs.8b04400. Epub 2018 Jun 14.
Nanomedicines have achieved several breakthroughs in cancer treatment over the past decades; however, their potential immunotoxicities are ignored, which results in serious adverse effects and greatly reduces the potential in clinical translation. Herein, we innovatively develop a theranostic supramolecular polymer using β-cyclodextrin as the host and camptothecin (CPT) as the guest linked by a glutathione-cleavable disulfide bond. The supramolecular polymerization remarkably increases the solubility of CPT by a factor of 232 and effectively inhibits its lactone ring opening in physiological environment, which is favorable for intravenous formulation and maintenance of the therapeutic efficacy. Supramolecular nanoparticles can be prepared through orthogonal self-assembly driven by π-π stacking interaction, host-guest complexation, and hydrogen bonds. The sophisticated nanomedicine constructed from the obtained supramolecular polymer can be specifically delivered to tumor sites and rapidly excreted from body after drug release, thus effectively avoiding systemic toxicity, especially long-term immunotoxicity. In vivo investigations demonstrate this supramolecular nanomedicine possesses superior antitumor performance and antimetastasis capability. This pioneering example integrating the advantages of the dynamic nature of supramolecular chemistry and nanotechnology provides a promising platform for cancer theranostics.
在过去的几十年中,纳米医学在癌症治疗方面取得了多项突破;然而,其潜在的免疫毒性被忽视了,这导致了严重的副作用,并大大降低了其在临床转化中的潜力。在此,我们创新性地开发了一种治疗一体化的超分子聚合物,该聚合物以β-环糊精作为主体,喜树碱(CPT)作为客体,通过一个谷胱甘肽可裂解的二硫键连接。超分子聚合作用将 CPT 的溶解度显著提高了 232 倍,并有效地抑制了其在生理环境下的内酯环开环,有利于静脉制剂的形成和治疗效果的维持。超分子纳米粒子可以通过π-π堆积相互作用、主客体络合和氢键的正交自组装来制备。所得超分子聚合物构建的复杂纳米药物可以特异性地递送到肿瘤部位,并在药物释放后迅速从体内排出,从而有效避免了全身毒性,特别是长期的免疫毒性。体内研究表明,这种超分子纳米药物具有优异的抗肿瘤性能和抗转移能力。这个将超分子化学和纳米技术的动态特性优势结合起来的开创性范例,为癌症的治疗一体化提供了一个很有前途的平台。