PO.CH01.07 · 化学
针对纤维板层型肝细胞癌和蛋白酶体依赖性多发性骨髓瘤的平行药物开发策略
Parallel drug development strategies for fibrolamellar hepatocellular carcinoma and proteasome-dependent multiple myeloma
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
纤维板层型肝细胞癌(FLC)是一种罕见的肝癌,主要发生于年龄小于40岁的年轻成人和儿童。在FLC中,一条19号染色体拷贝上发生了400,000个碱基对的缺失,导致形成一种融合蛋白,该蛋白由热休克蛋白DNAJB1的一个结构域和蛋白激酶A的催化亚基组成(DNAJB1-PRKACA)。患者在早期通常无症状,5年生存率仍低于50%。由于手术是唯一部分有效的治疗手段且尚无获批的全身性疗法,因此迫切需要新的治疗药物。本项目的主要模型化合物Napabucasin是一种萘醌类天然产物,已显示出广谱的抗癌活性。在药物筛选中发现Napabucasin是一个顶级命中化合物,对FLC患者来源异种移植(PDX)模型和直接来自患者的FLC肿瘤细胞具有强效活性。已知Napabucasin作用于多条信号通路,包括蛋白翻译、活性氧的生成、抑制肿瘤细胞干性以及阻断肿瘤细胞的凋亡逃逸。我们预期,优化的Napabucasin类似物的有机合成与开发,以及其相比母体化合物Napabucasin的细胞毒性和抗增殖效力的评价,将产生具有改善的生物利用度和疗效的化合物,尤其是在FLC模型细胞系(Huh7-Chimera)中。作为癌症药物开发的另一种途径,我们正在评估有前景的下一代蛋白酶体抑制剂的疗效。在真核细胞中,蛋白质稳态通过受控的合成与降解得以维持,其中泛素-蛋白酶体系统(UPS)是受调控蛋白水解的主要途径。癌细胞增加UPS活性以应对快速增殖带来的蛋白毒性应激,导致抑瘤蛋白的降解和致癌通路的激活。靶向抑制UPS功能会导致泛素化蛋白的累积、G2/M期阻滞和凋亡,确立了蛋白酶体作为一个经验证的抗癌靶点。蛋白酶体的20S核心含有三个催化性beta亚基(beta1、beta2、beta5)。在这三者中,糜蛋白酶样的beta5活性仍是bortezomib、carfilzomib等临床获批抑制剂细胞毒性的主要驱动因素;然而,其治疗应用受到毒性的限制。肽类beta-内酯(cystargolide家族)是有前景的下一代蛋白酶体抑制剂。本项目评估新合成的cystargolide类似物在RPMI-8226骨髓瘤细胞中的细胞毒性、生物利用度和蛋白酶体抑制作用。通过基于细胞的实验和IC₅₀测定,我们旨在建立构效关系,并推进具有改善治疗潜力的优化beta-内酯抑制剂。
查看英文原文 English abstract
Fibrolamellar Hepatocellular carcinoma (FLC) is a rare liver cancer which occurs primarily in young adults and children under the age of 40. In FLC, a deletion of 400,000 base pairs occurs in one chromosome 19 copy, leading to the formation of a fusion protein comprised of a domain of the heat shock protein DNAJB1 and the catalytic subunit of Protein Kinase A (DNAJB1-PRKACA). Patients are typically asymptomatic at early stages, and 5-year survival remains below 50%. With surgery as the only partially effective treatment and no approved systemic therapies, there is a critical need for new therapeutics. The primary model compound of this project, Napabucasin, is a naphthoquinone natural product that has shown wide spectrum anti-cancer activities. Napabucasin was found to be a top hit in drug screening showing potency against FLC patient derived xenografts (PDX) models and direct-from-patient FLC tumor cells. Napabucasin is known to work in multiple signaling pathways including protein translation, the generation of reactive oxygen species, suppression of tumor cell stemness, and blocking tumor cell apoptotic escape. We anticipate the organic synthesis and development of optimized Napabucasin analogues, along with the evaluation of their cytotoxicity and proliferation effectiveness compared to the parent compound, Napabucasin, will result in compounds with improved bioavailability and efficacy, particularly in FLC model cell lines (Huh7-Chimera). In an additional approach to cancer drug development, we are evaluating the efficacy of promising next generation proteasome inhibitors. In eukaryotic cells, protein homeostasis is maintained through controlled synthesis and degradation, with the Ubiquitin Proteasome System (UPS) serving as the major pathway for regulated proteolysis. Cancer cells increase UPS activity to manage proteotoxic stress from rapid proliferation, leading to degradation of tumor-suppressive proteins and activation of oncogenic pathways. Targeted inhibition of UPS function causes accumulation of ubiquitinated proteins, G2/M arrest, and apoptosis, establishing the proteasome as a validated anticancer target. The 20S core of proteasome contains three catalytic beta subunits (beta1, beta2, beta5). Among all three, the chymotrypsin-like beta5 activity remains the primary driver of cytotoxicity for clinically approved inhibitors such as bortezomib, carfilzomib; however, their therapeutic use is limited by toxicity. Peptidic beta-lactones (the cystargolide family), are promising next-generation proteasome inhibitors. This project evaluates newly synthesized cystargolide analogs for cytotoxicity, bioavailability, and proteasome inhibition in RPMI-8226 myeloma cells. Using cell-based assays and IC₅₀ determination, we aim to establish structure activity relationships and advance optimized beta-lactone inhibitors with improved therapeutic potential.
利益披露 Disclosure
S. Rawat, None..
N. Rahimi, None..
J. Alderman, None..
C. Villasenor, None..
R. Tello-Aburto, None..
B. Lyons, None.