LBPO.TB02 · 肿瘤生物学 · Late-Breaking
靶向内体溶酶体转运以克服三阴性乳腺癌的紫杉醇耐药
Targeting endolysosomal trafficking to overcome paclitaxel resistance in triple-negative breast cancer
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
背景:紫杉烷类治疗是三阴性乳腺癌(TNBC)治疗的支柱,但获得性紫杉醇耐药发生于超过90%的转移性病例,使患者缺乏获批的二线疗法,5年生存率仅为不足30%。耐药TNBC细胞通过上调两条互补的内体溶酶体通路存活:巨胞饮以清除养分,以及保护性自噬以隔离/降解紫杉醇。这两个过程均关键依赖于脂质激酶PIKfyve及其产物PI(3,5)P₂。我们开发了低纳摩尔级PIKfyve抑制剂,利用耐药TNBC细胞对内体溶酶体转运通路的依赖,通过大幅增强巨胞饮性紫杉醇摄取同时阻断自噬流,将这些适应性存活机制转化为对紫杉醇耐药TNBC的选择性致死。
方法:PIKfyve抑制剂经合理设计、合成,并使用ADP-Glo实验评估激酶抑制。紫杉醇耐药TNBC细胞(SUM159PT/PAC200;PTX IC₅₀ >1000 nM)用抑制剂±紫杉醇处理。巨胞饮通过70 kDa FITC-葡聚糖摄取(流式细胞术/共聚焦)±EIPA(25 μM)定量。自噬流通过LC3-II/p62免疫印迹评估。活力通过72小时SRB和MTT实验测定;协同作用采用Chou-Talalay联合指数(CompuSyn)计算。还在SUM159PT/PAC200细胞来源的类器官中评估了PIKfyve抑制剂的紫杉醇增敏和凋亡诱导作用。实验一式三份进行;统计学显著性采用单因素方差分析后接Dunnett事后检验。
结果:先导PIKfyve抑制剂(PSG-06和PSG-09)在10 μM时强效诱导巨胞饮(葡聚糖摄取增加超过3倍),同时完全阻断自噬流(显著的p62积累)。这一双重效应显著增强了细胞内紫杉醇积累并恢复了敏感性,产生低至0.64的联合指数、超过50%的活力降低、细胞周期阻滞,以及在临床相关紫杉醇浓度(5-20 nM)下的凋亡。巨胞饮抑制剂EIPA完全消除了再增敏,证实了靶向机制。值得注意的是,PSG诱导的效应是可逆的,为紫杉醇积累和细胞毒性提供了一个短暂窗口,可能最大限度减少与持续巨胞饮和自噬抑制相关的长期毒性。此外,PSG-6联合紫杉醇在紫杉醇耐药的SUM159PT/PAC200 3D类器官中诱导剂量依赖性凋亡,这通过Western blot检测切割PARP得到证实。
结论:低纳摩尔级PIKfyve抑制剂利用PIKfyve阻断同时驱动巨胞饮性紫杉醇摄取并抑制保护性自噬这一悖论性能力,在原本耐药的TNBC细胞中形成了一种强效的合成致死组合。这一单药、双重打击策略绕过了P-糖蛋白外排,阻止了紫杉醇的自噬隔离和降解,并为紫杉烷难治性TNBC及其他巨胞饮依赖性肿瘤提供了清晰的转化路径。
查看英文原文 English abstract
Background: Taxane therapy is the mainstay for triple-negative breast cancer (TNBC) treatment yet acquired paclitaxel resistance occurs in >90% of metastatic cases, leaving patients without approved second-line therapies and a dismal 5-year survival of <30%. Resistant TNBC cells survive by upregulating two complementary endolysosomal pathways: macropinocytosis to scavenge nutrients and protective autophagy to sequester/degrade paclitaxel. Both processes critically depend on the lipid kinase PIKfyve and its product PI(3,5)P₂. We have developed low-nanomolar PIKfyve inhibitors that exploit the reliance of resistant TNBC cells on endolysosomal trafficking pathways, by substantially enhancing macropinocytic paclitaxel uptake while blocking autophagic flux, converting these adaptive survival mechanisms into selective lethality in paclitaxel-resistant TNBC.
Methods: The PIKfyve inhibitors were rationally designed, synthesized, and evaluated for kinase inhibition using the ADP-Glo assay. Paclitaxel-resistant TNBC cells (SUM159PT/PAC200; PTX IC₅₀ >1000 nM) were treated with inhibitors ± paclitaxel. Macropinocytosis was quantified by 70 kDa FITC-dextran uptake (flow cytometry/confocal) ± EIPA (25 µM). Autophagic flux was assessed by LC3-II/p62 immunoblotting. Viability was determined by 72 h SRB & MTT assays; synergy calculated using Chou-Talalay combination index (CompuSyn). Paclitaxel sensitization and apoptosis induction by PIKfyve inhibitors were also evaluated in organoids derived from SUM159PT/PAC200 cells. Experiments were performed in triplicate; statistical significance by one-way ANOVA followed by Dunnett's post hoc test.
Results: Lead PIKfyve inhibitors (PSG-06 and PSG-09) potently induced macropinocytosis (>3-fold increase in dextran uptake at 10 µM) while completely blocking autophagic flux (marked p62 accumulation). This dual effect dramatically enhanced intracellular paclitaxel accumulation and restored sensitivity, resulting in combination indices as low as 0.64, >50% reduction in viability, cell cycle arrest, and apoptosis at clinically relevant paclitaxel concentrations (5-20 nM). The macropinocytosis inhibitor EIPA completely abolished resensitization, confirming an on-target mechanism. Notably, PSG-induced effects were reversible, providing a transient window for paclitaxel accumulation and cytotoxicity, potentially minimizing long-term toxicity associated with sustained macropinocytosis and autophagy inhibition. Furthermore, PSG-6 combined with paclitaxel induced dose-dependent apoptosis in paclitaxel-resistant SUM159PT/PAC200 3D organoids, as confirmed by Western blot detection of cleaved PARP.
Conclusions: Low-nanomolar PIKfyve inhibitors exploit the paradoxical ability of PIKfyve blockade to simultaneously drive macropinocytic paclitaxel uptake and inhibit protective autophagy, creating a potent synthetic-lethal combination in otherwise resistant TNBC cells. This single-agent, dual-hit strategy bypasses P-glycoprotein efflux, prevents autophagic sequestration and degradation of paclitaxel, and provides a clear translational path for taxane-refractory TNBC and other macropinocytosis-addicted tumors.
利益披露 Disclosure
R. Pathak, None..
P. N. Tripathi, None..
V. Piedra, None..
C. Karthikeyan, None..
A. K. Tiwari, None.