PO.MCB03.03 · 分子与细胞生物学
Pdcd4/mTORC2轴通过PFKFB3调控NSCLC中的糖酵解
Pdcd4/mTORC2 axis regulates glycolysis via PFKFB3 in NSCLC
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
程序性细胞死亡4(PDCD4)是一种在非小细胞肺癌(NSCLC)中常下调的抑癌因子,然而其在代谢调控中的作用仍知之甚少。利用反相蛋白质芯片分析,我们发现PDCD4的缺失显著上调糖酵解酶PFKFB3,后者产生果糖-2,6-二磷酸以激活限速酶PFK1。PFKFB3在NSCLC中高表达并与肿瘤晚期分期相关。由于PDCD4抑制mTORC2活性,我们研究了mTORC2是否调控PFKFB3。共免疫沉淀和体外激酶实验显示mTORC2直接与PFKFB3相互作用并使其磷酸化,定位分析确定Ser461为其靶向磷酸化位点。为确定其功能意义,我们构建了磷酸化缺陷型(S461A)和磷酸模拟型(S461D)PFKFB3突变体。蛋白稳定性实验显示S461A发生快速的蛋白酶体降解,而S461D与野生型(WT)PFKFB3相比表现出增强的稳定性。Seahorse XF糖酵解应激试验表明WT和S461D显著增加基础和最大糖酵解活性,而S461A显著损害糖酵解和代谢能力。与这些效应一致,WT和S461D促进增殖和集落形成,而S461A抑制细胞生长。这些发现确定mTORC2介导的PFKFB3在Ser461位点的磷酸化是PFKFB3稳定性和糖酵解功能的关键调控因子,并表明PDCD4缺失增强mTORC2活性以驱动NSCLC中的糖酵解重编程。靶向PDCD4-mTORC2-PFKFB3轴可能为破坏肺癌肿瘤代谢提供一种有前景的治疗策略。
查看英文原文 English abstract
Programmed cell death 4 (PDCD4) is a tumor suppressor frequently downregulated in non-small cell lung cancer (NSCLC), yet its role in metabolic regulation remains poorly understood. Using reverse-phase protein array analysis, we found that loss of PDCD4 significantly upregulates the glycolytic enzyme PFKFB3, which produces fructose-2,6-bisphosphate to activate the rate-limiting enzyme PFK1. PFKFB3 is highly expressed in NSCLC and correlates with advanced tumor stage. Because PDCD4 suppresses mTORC2 activity, we investigated whether mTORC2 regulates PFKFB3. Co-immunoprecipitation and in vitro kinase assays showed that mTORC2 directly interacts with and phosphorylates PFKFB3, and mapping analysis identified Ser461 as the targeted phosphorylation site. To determine its functional significance, we generated phosphorylation-deficient (S461A) and phospho-mimetic (S461D) PFKFB3 mutants. Protein stability assays revealed that S461A undergoes rapid proteasomal degradation, whereas S461D exhibits enhanced stability compared with wild-type (WT) PFKFB3. Seahorse XF glycolysis stress tests demonstrated that WT and S461D significantly increased basal and maximal glycolytic activity, while S461A markedly impaired glycolysis and metabolic capacity. Consistent with these effects, WT and S461D promoted proliferation and colony formation, whereas S461A suppressed cell growth. These findings identify mTORC2-mediated phosphorylation of PFKFB3 at Ser461 as a critical regulator of PFKFB3 stability and glycolytic function and show that PDCD4 loss enhances mTORC2 activity to drive glycolytic reprogramming in NSCLC. Targeting the PDCD4-mTORC2-PFKFB3 axis may offer a promising therapeutic approach to disrupt tumor metabolism in lung cancer.
利益披露 Disclosure
E. Zokaei, None.