PO.MCB04.02 · 分子与细胞生物学
核内p62-PI4,5P2共定位的发现提示癌症蛋白质稳态中一个新的调控层次
Discovery of nuclear p62-PI4,5P 2 colocalization suggests a new regulatory layer in cancer proteostasis
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
聚集体自噬(aggrephagy)即对蛋白质聚集体的选择性自噬清除,对于维持细胞稳态至关重要,尤其是在经历代谢或蛋白毒性应激的癌细胞中。这一过程由货物受体p62(sequestosome-1,SQSTM1)介导,其经典地识别细胞质中泛素化的蛋白质聚集体,并将其递送至自噬体进行溶酶体降解。有趣的是,p62也在核内凝聚体中被检测到,鉴于自噬传统上被视为一条严格的细胞质通路,这一现象仍知之甚少。
在p62的Phox和Bem1(PB1)结构域内,我们鉴定了一个能够结合核内磷酸肌醇的假定多碱基基序(PBM),以及一个此前被认为参与DNA结合的ZZ结构域。由于核内磷酸肌醇及生成它们的激酶(如1型磷脂酰肌醇4-磷酸5-激酶α,PIP5K1A)调控转录、DNA修复和其他空间组织化的核内过程,我们推测p62可能参与核内由脂质定义的微环境。
为检验这一假设,我们研究了p62与PIP5K1A生成的信号脂质磷脂酰肌醇4,5-二磷酸(PI4,5P2)在核内的相互作用。我们在乳腺癌细胞系中鉴定了此前未被认识的p62与PI4,5P2的核内共定位,这一模式在胰腺导管腺癌(PDAC)模型中未被观察到,提示核内脂质-p62调控具有高度的细胞类型特异性。营养剥夺同时减少了p62点状结构和p62蛋白总丰度,表明p62水平与代谢状态紧密耦合。值得注意的是,PIP5K1A的遗传学缺失在不依赖营养条件的情况下降低了p62总水平,揭示磷酸肌醇信号与代谢线索汇聚以控制p62表达。
综上,这些发现揭示了p62与PI4,5P2之间一种新的核内相互作用,并指向一个涉及PIP5K1A的调控轴,其可能影响核内凝聚体形成和p62依赖性应激反应。正在进行的使用邻位连接测定、溶酶体活性测量和药理学扰动的研究旨在确定这一通路的功能意义,其可能代表依赖p62介导的蛋白质稳态的癌症中一个未被认识的治疗易感性。
查看英文原文 English abstract
Aggrephagy, the selective autophagic clearance of protein aggregates, is essential for maintaining cellular homeostasis, particularly in cancer cells undergoing metabolic or proteotoxic stress. This process is mediated by the cargo receptor p62 (sequestosome-1, SQSTM1), which canonically recognizes ubiquitinated protein aggregates in the cytoplasm and delivers them to autophagosomes for lysosomal degradation. Intriguingly, p62 is also detected within nuclear condensates, a phenomenon that remains poorly understood given that autophagy has traditionally been regarded as a strictly cytoplasmic pathway.
Within the Phox and Bem1 (PB1) domain of p62, we identified a putative polybasic motif (PBM) capable of binding nuclear phosphoinositides, as well as a ZZ domain previously implicated in DNA binding. Because nuclear phosphoinositides and the kinases that generate them, such as phosphatidylinositol 4-phosphate 5-kinase type 1 alpha (PIP5K1A), regulate transcription, DNA repair, and other spatially organized nuclear processes, we hypothesized that p62 may engage lipid-defined microenvironments within the nucleus.
To test this hypothesis, we examined the nuclear interplay of p62 with the signaling lipid phosphatidylinositol 4,5-bisphosphate (PI4,5P 2 ) generated by PIP5K1A. We identified a previously unrecognized nuclear colocalization of p62 and PI4,5P 2 in breast cancer cell lines, a pattern not observed in pancreatic ductal adenocarcinoma (PDAC) models, suggesting that nuclear lipid-p62 regulation is highly cell-type specific. Nutrient deprivation reduced both p62 puncta and total p62 protein abundance, indicating that p62 levels are tightly coupled to metabolic status. Notably, genetic loss of PIP5K1A decreased total p62 levels independent of nutrient conditions, revealing that phosphoinositide signaling and metabolic cues converge to control p62 expression.
Together, these findings uncover a novel nuclear interaction between p62 and PI4,5P 2 and point to a regulatory axis involving PIP5K1A that may influence nuclear condensate formation and p62-dependent stress responses. Ongoing studies using proximity ligation assays, lysosomal activity measurements, and pharmacologic perturbation aim to define the functional significance of this pathway, which may represent an unrecognized therapeutic vulnerability in cancers dependent on p62-mediated proteostasis.
利益披露 Disclosure
A. Gebbia, None..
O. Jung, None..
S. Choi, None.