State Key Laboratory of Bioelectronics, School of Biological Science and Medical Engineering, Southeast University, Nanjing, Jiangsu 210096, China.
State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing, Jiangsu 210023, China.
J Am Chem Soc. 2022 Jul 6;144(26):11897-11910. doi: 10.1021/jacs.2c05743. Epub 2022 Jun 22.
Metastasis-induced high mortality of cancers urgently demands new approaches to simultaneously inhibit primary tumor metastasis and distant tumor growth. Herein, by rational design of a trident molecule Nap-Phe-Phe-Lys(SA-CPT)-Lys(SA-HCQ)-Tyr(HPO)-OH (---) with three functional "spears" (i.e., a phosphotyrosine motif for enzymatic self-assembly, camptothecin (CPT) motif for chemotherapy, and hydroxychloroquine (HCQ) motif for autophagy inhibition) and nanobrush-nanoparticle-nanofiber transition property, we propose a novel strategy of intracellular enzymatic nanofiber formation and synergistic autophagy inhibition-enhanced chemotherapy and immunotherapy for spatial suppression of tumor metastasis. Under sequential alkaline phosphatase catalysis and carboxylesterase hydrolysis, --- undergoes nanobrush-nanoparticle-nanofiber transition, accompanied by the releases of CPT and HCQ. The formed intracellular nanofibers effectively inhibit the metastasis and invasion behaviors of cancer cells. Meanwhile, the released CPT and HCQ synergistically induce a prominent therapeutic effect through autophagy inhibition-enhanced chemotherapy. Furthermore, chemotherapy of --- enhances immunogenic cell death, resulting in the activation of toxic T-cells. Finally, a combination of checkpoint blockade therapy and ----mediated chemotherapy elicits systemic antitumor immunity, thereby achieving efficient inhibitions of primary tumors as well as distant tumors in a breast tumor model. Our work offers a simple and feasible strategy for the design of "smart" multifunctional prodrugs to spatially suppress tumor metastasis.
转移诱导的癌症高死亡率迫切需要新的方法来同时抑制原发肿瘤转移和远处肿瘤生长。在此,通过合理设计一种三叉分子 Nap-Phe-Phe-Lys(SA-CPT)-Lys(SA-HCQ)-Tyr(HPO)-OH(---),其具有三个功能“矛头”(即用于酶促自组装的磷酸酪氨酸基序、用于化学疗法的喜树碱(CPT)基序和用于自噬抑制的羟氯喹(HCQ)基序)和纳米刷-纳米颗粒-纳米纤维转变特性,我们提出了一种通过细胞内酶促纳米纤维形成和协同自噬抑制增强化疗和免疫疗法来空间抑制肿瘤转移的新策略。在顺序碱性磷酸酶催化和羧酸酯酶水解下,---经历纳米刷-纳米颗粒-纳米纤维的转变,同时释放 CPT 和 HCQ。形成的细胞内纳米纤维有效抑制癌细胞的转移和侵袭行为。同时,释放的 CPT 和 HCQ 通过自噬抑制增强化疗协同诱导显著的治疗效果。此外,---的化疗增强免疫原性细胞死亡,导致毒性 T 细胞的激活。最后,联合检查点阻断治疗和 ---介导的化疗引发全身抗肿瘤免疫,从而在乳腺癌模型中有效抑制原发肿瘤和远处肿瘤。我们的工作为设计“智能”多功能前药以空间抑制肿瘤转移提供了一种简单可行的策略。