PO.ET02.08 · 实验与分子治疗

用于癌症治疗的自协同互向前药脂质体共靶向氧化还原稳态与PIN1

Self-synergizing mutual prodrug liposomes co-targeting redox homeostasis and PIN1 for cancer therapy

海报缩略图:用于癌症治疗的自协同互向前药脂质体共靶向氧化还原稳态与PIN1
编号 3025 展板 16 时间 4/20 02:00–05:00 区域 Section 14 主讲 Nuri Kim, BS;MS
分会场 Nanocarriers and Drug Delivery Systems
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作者与单位 Authors & Affiliations

Nuri Kim, Dongwon Lee

Jeonbuk National Univ., Jeonju-si, Korea, Republic of

摘要 Abstract

中文摘要
PIN1是一种脯氨酰异构酶,催化磷酸化Ser/Thr-Pro基序的顺反异构化,在多种癌症类型中过表达,作为放大致癌信号的关键调控因子发挥作用。PIN1通过稳定多种癌蛋白并破坏p53等抑癌通路,促进癌细胞增殖、存活和转移,其活性对细胞内氧化还原状态高度敏感,在响应氧化应激水平变化时以氧化还原依赖的方式失活。在本研究中,我们开发了一种互向前药,将全反式维甲酸(atRA)整合到一个单一分子中,与一种通过谷胱甘肽(GSH)耗竭放大氧化应激的醌甲基化物(QM)前体相连,以同时最大化atRA介导的PIN1抑制和活性氧(ROS)介导的抗癌活性。我们首先通过计算联合指数并采用Western blot评估PIN1及其下游效应因子cyclin D1的变化,评估了atRA与QM前体在MCF-7乳腺癌细胞中的协同细胞毒性。为利用这种协同作用,我们设计并合成了一种将atRA共价连接至QM前体的互向前药,并通过1H NMR和LC-MS/MS分析确认了其结构。由于其两亲性分子结构,该互向前药可与DPPC一起以高负载量(约40%)稳定地掺入脂质双分子层,从而实现了基于前药的脂质体制剂。脂质体表面随后涂覆靶向γ-谷氨酰转移酶(GGT)的γ-聚(谷氨酸)(gammaPGA),得到平均直径约150 nm的颗粒。我们随后检测了酯酶触发的atRA和QM释放,并评估了MCF-7细胞中的细胞内GSH耗竭和ROS放大以及线粒体功能障碍。我们进一步通过qPCR和Western blot分析了氧化还原响应性、PIN1相关及凋亡相关信号。在MCF-7异种移植小鼠模型中评估了gammaPGA涂覆前药脂质体的靶向性和体内抗肿瘤疗效,额外的生物安全性评价显示无明显的全身毒性。总的来说,整合atRA和QM前体的互向前药脂质体制剂破坏了细胞内氧化还原稳态并抑制了PIN1依赖的致癌信号,从而增强了抗癌疗效并降低了全身毒性。因此,该平台提供了一种下一代精准纳米药物候选物,在单一、可临床转化的系统内统一了高药物负载、肿瘤选择性递送和自协同机制。
查看英文原文 English abstract
PIN1 is a prolyl isomerase that catalyzes the cis-trans isomerization of phosphorylated Ser/Thr-Pro motifs and is overexpressed in various cancer types, where it functions as a key regulator that amplifies oncogenic signaling. PIN1 promotes cancer cell proliferation, survival, and metastasis by stabilizing diverse oncoproteins and disrupting tumor-suppressive pathways such as p53, and its activity is highly sensitive to the intracellular redox state, becoming inactivated in a redox-dependent manner in response to changes in oxidative stress levels. In this study, we developed a mutual prodrug in which all-trans retinoic acid (atRA) is integrated into a single molecule with a quinone methide (QM) precursor that amplifies oxidative stress via glutathione (GSH) depletion, to simultaneously maximize atRA-mediated PIN1 inhibition and reactive oxygen species (ROS)-mediated anticancer activity. We first evaluated the synergistic cytotoxicity of atRA and the QM precursor in MCF-7 breast cancer cells by calculating the combination index and assessing changes in PIN1 and its downstream effector cyclin D1 by Western blotting. To exploit this synergy, we designed and synthesized a mutual prodrug in which atRA is covalently linked to the QM precursor, and confirmed its structure by 1 H NMR and LC-MS/MS analysis. Owing to its amphiphilic molecular structure, the mutual prodrug could be stably incorporated into the lipid bilayer at a high loading (~40%) together with DPPC, which enabled the formulation of prodrug-based liposomes. The liposomal surface was subsequently coated with gamma-poly(glutamic acid) (gammaPGA) targeting gamma-glutamyl transferase (GGT), yielding particles with a mean diameter of approximately 150 nm. We then examined esterase-triggered release of atRA and QM and evaluated intracellular GSH depletion and ROS amplification, as well as mitochondrial dysfunction, in MCF-7 cells. We further analyzed redox-responsive, PIN1-related, and apoptosis-related signaling by qPCR and Western blotting. Targeting and in vivo antitumor efficacy of the gammaPGA-coated prodrug liposomes were assessed in an MCF-7 xenograft mouse model, and additional biosafety evaluation revealed no apparent systematic toxicity. Collectively, the mutual prodrug liposomal formulation integrating atRA and the QM precursor disrupted intracellular redox homeostasis and suppressed PIN1-dependent oncogenic signaling, resulting in enhanced anticancer efficacy and reduced systematic toxicity. Thus, this platform offers a next-generation precision nanomedicine candidate that unifies high drug loading, tumor-selective delivery, and self-synergistic mechanisms within a single, clinically translatable system.
利益披露 Disclosure
N. Kim, None.. D. Lee, None.

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