PO.MCB03.01 · 分子与细胞生物学
p53 诱导的 FBXL20 抑制 PP2A 调节亚基 PR55alpha
p53-induced FBXL20 suppresses the PP2A regulatory subunit PR55alpha
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
背景:蛋白磷酸酶 2A(PP2A)是一种主要的丝氨酸/苏氨酸磷酸酶,可调控细胞存活和增殖。每个 PP2A 全酶由一个支架亚基、一个催化亚基和一个调节亚基组成,其中调节亚基决定底物特异性和细胞定位。我们课题组及其他研究团队的工作表明,PR55alpha 调节亚基通过 YAP、c-Myc、beta-catenin 和 ERK 通路促进致癌信号传导。尽管其在支持肿瘤发生和进展中的作用已被确立,但控制 PR55alpha 表达和活性的上游机制仍知之甚少。胰腺癌(PC)是人类最致命的癌症之一,其特征是 p53 功能频繁丧失,突变发生率超过 75%。我们近期发现 p53 诱导 F-box 蛋白 FBXL20,后者进而降低 PR55alpha 的稳定性和表达。这一发现揭示了一种此前未被认识的机制,即 p53 通过 SCF 介导的泛素化和蛋白酶体降解来抑制 PR55alpha。阐明这一调控相互作用对于理解 p53 缺失如何增强 PR55alpha 驱动的致癌信号传导至关重要。
方法:为鉴定 FBXL20 在 PR55alpha 上的相互作用位点,我们构建了 Myc 标记的 PR55alpha 截短体,并进行了共免疫沉淀实验。目前正在进行更多免疫沉淀实验,通过评估 SKP1 和 CUL1-4 的结合,以确定 FBXL20 是否在已组装的 SCF 复合体内结合 PR55alpha。为评估功能后果,我们正在构建破坏 FBXL20 结合的 PR55alpha 点突变体,并将检测其对 PR55alpha 稳定性和下游信号通路的生物学效应。
结果:定位研究表明,FBXL20 结合于 PR55alpha 的 WD40 结构域 5-6 之间的区域,可能涉及一个 alpha 螺旋连接子。FBXL20 也与异三聚体 PR55alpha-PP2A 复合体结合,表明 PR55alpha 与 PP2A 的结合并不阻碍其被 SCF 连接酶识别。正在进行的实验正在检测 SCF 核心组分是否与 PR55alpha 共沉淀,这将决定是否形成有功能的泛素连接酶复合体。使用 PR55alpha 点突变构建体的平行研究正在检测 p53/FBXL20 相互作用的丧失如何改变 PR55alpha 的稳定性和下游信号传导。
结论:我们的研究确立了一种新机制,即 p53 通过 FBXL20 介导的泛素化和蛋白酶体降解来约束 PR55alpha 的丰度。鉴定 FBXL20 在 PR55alpha 上的识别位点为界定其周转所需的磷酸降解决定子(phosphodegron)及其对 PR55alpha 稳定性和致癌活性的意义奠定了基础。理解这一调控通路有助于深入认识 p53 因突变而缺失如何使 PC 及其他恶性肿瘤中不受抑制的 PR55alpha/PP2A 驱动的致癌信号传导得以进行,并可能揭示新的基于 PR55alpha 的治疗策略。
查看英文原文 English abstract
Background :Protein phosphatase 2A (PP2A) is a major serine/threonine phosphatase that regulates cell survival and proliferation. Each PP2A holoenzyme consists of a scaffolding subunit, a catalytic subunit, and a regulatory subunit, with the regulatory subunit determining substrate specificity and cellular localization. Work from our group and others has shown that the PR55alpha regulatory subunit promotes oncogenic signaling through YAP, c-Myc, beta-catenin, and ERK pathways. Despite its established role in supporting tumorigenesis and progression, the upstream mechanisms controlling PR55alpha expression and activity remain poorly understood. Pancreatic cancer (PC), one of the most lethal human cancers, is characterized by frequent loss of p53 function, with mutations occurring in more than 75% of cases. We recently discovered that p53 induces the F-box protein FBXL20, which in turn reduces PR55alpha stability and expression. This finding reveals a previously unrecognized mechanism whereby p53 restrains PR55alpha through SCF-mediated ubiquitination and proteasomal degradation. Defining this regulatory interaction is essential for understanding how p53 loss enhances PR55alpha-driven oncogenic signaling in PC.
Methods :To identify the FBXL20 interaction site on PR55alpha, we generated Myc-tagged PR55alpha truncation constructs and performed co-immunoprecipitation assays. Additional immunoprecipitations are underway to determine whether FBXL20 engages PR55alpha within an assembled SCF complex by assessing SKP1 and CUL1-4 association. To evaluate functional consequences, we are generating PR55alpha point mutations that disrupt FBXL20 binding and will examine their biological effects on PR55alpha stability and downstream signaling pathways.
Results :Mapping studies indicate that FBXL20 binds to a region between WD40 domains 5-6 of PR55alpha, potentially involving an alpha-helical linker. FBXL20 also associates with the heterotrimeric PR55alpha-PP2A complex, suggesting that PR55alpha engagement with PP2A does not block its recognition by the SCF ligase. Ongoing experiments are testing whether core SCF components co-precipitate with PR55alpha, which will determine whether a functional ubiquitin ligase complex forms. Parallel studies using PR55alpha point-mutation constructs are examining how loss of p53/FBXL20 interaction alters PR55alpha stability and downstream signaling.
Conclusions :Our findings establish a novel mechanism by which p53 constrains PR55alpha abundance through FBXL20-mediated ubiquitination and proteasomal degradation. Identifying the FBXL20 recognition site on PR55alpha provides a foundation for defining the phosphodegron required for its turnover and significance on PR55alpha stability and oncogenic activity. Understanding this regulatory pathway offers insight into how p53 loss through mutations enables unchecked PR55alpha/PP2A-driven oncogenic signaling in PC and other malignancies and may uncover new PR55alpha-based therapeutic strategies.
利益披露 Disclosure
A. L. Camero, None..
M. Ouellette, None..
K. Johnson, None..
Y. Yan, None.