Biophysics and Nanoscience Centre, CNISM, Facoltà di Scienze, Università della Tuscia, Viterbo, Italy.
J Mol Recognit. 2010 Jul-Aug;23(4):343-51. doi: 10.1002/jmr.999.
Azurin, a bacterial protein, can be internalized in cancer cells and induce apoptosis. Such anticancer effect is coupled to the formation of a complex with the tumour-suppressor p53. The mechanism by which azurin stabilizes p53 and the binding sites of their complex are still under investigation. It is also known that the predominant mechanism for p53 down-regulation implies its association to Mdm2, the main ubiquitin ligase affecting its stability. However, the p53/Mdm2 interaction, occurring at the level of both their N-terminal domains, has been characterized so far by experiments involving only partial domains of these proteins. The relevance of the p53/Mdm2 complex as a possible target of the anticancer therapies requires a deeper study of this complex as made up of the two entire proteins. Moreover, the apparent antagonist action of azurin against Mdm2, with respect of p53 regulation, might suggest the possibility that azurin binds p53 at the same site of Mdm2, preventing in such a way p53 and Mdm2 from association and thus p53 from degradation. By following the interaction of the two entire proteins by atomic force spectroscopy, we have assessed the formation of a specific complex between p53 and Mdm2. We found for it a binding strength and a dissociation rate constant typical of dynamical protein-protein interactions and we observed that azurin, even if capable to bind p53, does not compete with Mdm2 for the same binding site on p53. The formation of the p53/Mdm2/azurin ternary complex might suggest an alternative anti-cancer mechanism adopted by azurin.
天青蛋白是一种细菌蛋白,可以被癌细胞内化,并诱导细胞凋亡。这种抗癌作用与肿瘤抑制因子 p53 形成复合物有关。天青蛋白稳定 p53 的机制及其复合物的结合位点仍在研究中。已知下调 p53 的主要机制是其与 Mdm2 结合,Mdm2 是影响其稳定性的主要泛素连接酶。然而,p53/Mdm2 相互作用,发生在它们的 N 端结构域的水平上,到目前为止,这种相互作用的实验只涉及这些蛋白质的部分结构域。p53/Mdm2 复合物作为抗癌治疗的潜在靶点的相关性,需要对由两个完整蛋白质组成的复合物进行更深入的研究。此外,天青蛋白对 Mdm2 的调节作用与 p53 相反,表现出明显的拮抗作用,这可能表明天青蛋白与 Mdm2 的结合位点与 p53 结合,从而阻止 p53 和 Mdm2 结合,防止 p53 降解。通过原子力光谱法跟踪两个完整蛋白质的相互作用,我们评估了 p53 和 Mdm2 之间形成特定复合物的情况。我们发现它的结合强度和离解速率常数是典型的动态蛋白质-蛋白质相互作用,并且我们观察到天青蛋白虽然能够结合 p53,但不会与 Mdm2 竞争 p53 上的相同结合位点。p53/Mdm2/天青蛋白三元复合物的形成可能提示了天青蛋白采用的另一种抗癌机制。