细胞生物学
细胞
内质网
生物素化
应力颗粒
生物
细胞内
细胞膜
细胞外
转运蛋白
蛋白质组
膜蛋白
细胞室
化学
分泌物
癌细胞
细胞周期
细胞培养
肿瘤微环境
胞浆
未折叠蛋白反应
抗体
细胞质
高尔基体
分泌途径
细胞外基质
蛋白质-蛋白质相互作用
细胞迁移
蛋白质组学
视网膜母细胞瘤样蛋白1
细胞结
生物化学
血浆蛋白结合
电池类型
蛋白质亚细胞定位预测
作者
Tomasz Slezak,Kelly M. O’Leary,Tanya Guevara Avella,Natalia Musial,Jinyang Li,Anna Andrzejczak,Elizabeth F. Scott,Duc Anh Le,Anthony A. Kossiakoff
标识
DOI:10.1073/pnas.2529493123
摘要
Inside-Out (I-O) protein display, the noncanonical surface localization of intracellular proteins, represents an underexplored feature of tumor cell biology. Here, we map the molecular landscape and trafficking mechanisms that control the presentation of I-O proteins on cancer cell membranes. Employing APEX2-mediated proximity biotinylation and a custom antibody generation and validation platform, we identified approximately 140 high-confidence I-O proteins, primarily ribosomal, proteasomal, chaperone, and translation factors, notably enriched in protein families associated with stress-response pathways. Validation of 500 antibodies encompassing 40 I-O targets across seven tumor cell lines confirmed selective and robust surface localization, while in vivo imaging in mouse xenografts demonstrated pronounced and tumor-specific antibody accumulation. I-O proteins were absent on peripheral blood mononuclear cells (PBMCs) and in normal tissues, indicating cancer cell selectivity. Functional analyses revealed that I-O protein tethering to the membrane is dependent on heparan sulfate interactions; enzymatic removal of these glycans led to the clearance of I-O proteins from the cell surface. Notably, the removed proteins returned to baseline levels within 6 h, indicating a dynamic balance related to Endoplasmic Reticulum (ER)-Golgi trafficking and cellular stress. Nearly half of these I-O proteins overlapped with known stress granule (SG) components; however, stress elements that promote SG formation do not similarly affect surface display of I-O proteins. Furthermore, I-O proteins are present on standard cancer cell lines under lower stress levels needed to induce SG formation, suggesting parallel yet mechanistically distinct aspects of the stress response. These findings position I-O display as a paradigm in protein trafficking, different from traditional secretion pathways and closely linked to stress response.
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