Minervini Giovanni, Mazzotta Gabriella M, Masiero Alessandro, Sartori Elena, Corrà Samantha, Potenza Emilio, Costa Rodolfo, Tosatto Silvio C E
Department of Biomedical Sciences, University of Padova.
Department of Biology, University of Padova.
Sci Rep. 2015 Jul 27;5:12605. doi: 10.1038/srep12605.
Deregulation of the von Hippel-Lindau tumor suppressor protein (pVHL) is considered one of the main causes for malignant renal clear-cell carcinoma (ccRCC) insurgence. In human, pVHL exists in two isoforms, pVHL19 and pVHL30 respectively, displaying comparable tumor suppressor abilities. Mutations of the p53 tumor suppressor gene have been also correlated with ccRCC insurgence and ineffectiveness of treatment. A recent proteomic analysis linked full length pVHL30 with p53 pathway regulation through complex formation with the p14ARF oncosuppressor. The alternatively spliced pVHL19, missing the first 53 residues, lacks this interaction and suggests an asymmetric function of the two pVHL isoforms. Here, we present an integrative bioinformatics and experimental characterization of the pVHL oncosuppressor isoforms. Predictions of the pVHL30 N-terminus three-dimensional structure suggest that it may exist as an ensemble of structured and disordered forms. The results were used to guide Yeast two hybrid experiments to highlight isoform-specific binding properties. We observed that the physical pVHL/p14ARF interaction is specifically mediated by the 53 residue long pVHL30 N-terminal region, suggesting that this N-terminus acts as a further pVHL interaction interface. Of note, we also observed that the shorter pVHL19 isoform shows an unexpected high tendency to form homodimers, suggesting an additional isoform-specific binding specialization.
VHL抑癌蛋白(pVHL)失调被认为是恶性肾透明细胞癌(ccRCC)发生的主要原因之一。在人类中,pVHL以两种异构体形式存在,分别为pVHL19和pVHL30,具有相当的肿瘤抑制能力。p53抑癌基因的突变也与ccRCC的发生和治疗无效相关。最近的蛋白质组学分析表明,全长pVHL30通过与p14ARF抑癌蛋白形成复合物来调节p53通路。选择性剪接的pVHL19缺少前53个残基,缺乏这种相互作用,这表明两种pVHL异构体具有不对称功能。在此,我们对pVHL抑癌异构体进行了综合生物信息学和实验表征。对pVHL30 N端三维结构的预测表明,它可能以结构化和无序形式的集合存在。这些结果被用于指导酵母双杂交实验,以突出异构体特异性结合特性。我们观察到,pVHL/p14ARF的物理相互作用是由53个残基长的pVHL30 N端区域特异性介导的,这表明该N端作为另一个pVHL相互作用界面。值得注意的是,我们还观察到较短的pVHL19异构体显示出意外的高同源二聚体形成倾向,这表明存在额外的异构体特异性结合特化。