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首页> 外文期刊>PLoS Biology >Structural analyses of the PKA RIIβ holoenzyme containing the oncogenic DnaJB1-PKAc fusion protein reveal protomer asymmetry and fusion-induced allosteric perturbations in fibrolamellar hepatocellular carcinoma
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Structural analyses of the PKA RIIβ holoenzyme containing the oncogenic DnaJB1-PKAc fusion protein reveal protomer asymmetry and fusion-induced allosteric perturbations in fibrolamellar hepatocellular carcinoma

机译:含有致癌DNAJB1-PKC融合蛋白的PKARIIβ全酶的结构分析,揭示了纤维素肝细胞癌中的强子不对称和融合诱导的构成扰动

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When the J-domain of the heat shock protein DnaJB1 is fused to the catalytic (C) subunit of cAMP-dependent protein kinase (PKA), replacing exon 1, this fusion protein, J-C subunit (J-C), becomes the driver of fibrolamellar hepatocellular carcinoma (FL-HCC). Here, we use cryo-electron microscopy (cryo-EM) to characterize J-C bound to RIIβ, the major PKA regulatory (R) subunit in liver, thus reporting the first cryo-EM structure of any PKA holoenzyme. We report several differences in both structure and dynamics that could not be captured by the conventional crystallography approaches used to obtain prior structures. Most striking is the asymmetry caused by the absence of the second cyclic nucleotide binding (CNB) domain and the J-domain in one of the RIIβ:J-C protomers. Using molecular dynamics (MD) simulations, we discovered that this asymmetry is already present in the wild-type (WT) RIIβ _(2)C _(2) but had been masked in the previous crystal structure. This asymmetry may link to the intrinsic allosteric regulation of all PKA holoenzymes and could also explain why most disease mutations in PKA regulatory subunits are dominant negative. The cryo-EM structure, combined with small-angle X-ray scattering (SAXS), also allowed us to predict the general position of the Dimerization/Docking (D/D) domain, which is essential for localization and interacting with membrane-anchored A-Kinase-Anchoring Proteins (AKAPs). This position provides a multivalent mechanism for interaction of the RIIβ holoenzyme with membranes and would be perturbed in the oncogenic fusion protein. The J-domain also alters several biochemical properties of the RIIβ holoenzyme: It is easier to activate with cAMP, and the cooperativity is reduced. These results provide new insights into how the finely tuned allosteric PKA signaling network is disrupted by the oncogenic J-C subunit, ultimately leading to the development of FL-HCC.
机译:当热休克蛋白DNAJB1的J-结构域融合到CAMP依赖性蛋白激酶(PKA)的催化剂(C)亚基时,替换外显子1,这种融合蛋白,JC亚基(JC)成为纤维素肝细胞癌的驾驶员癌(FL-HCC)。这里,我们使用低温电子显微镜(Cryo-EM)来表征肝脏中的主要PKA调节(R)亚基的J-C结合,从而报告了任何PKA全酶的第一个Cryo-EM结构。我们在无法通过用于获得现有结构的传统晶体学方法无法捕获的结构和动态的几个差异。大多数引人注目是由于不存在第二环核苷酸结合(CNB)结构域和R1β:J-C重选酶之一的j-结构域引起的不对称性。使用分子动力学(MD)模拟,我们发现该不对称性已经存在于野生型(WT)Riβ_(2)C _(2)中,但在以前的晶体结构中被掩盖。这种不对称性可能链接到所有PKA全酶的内在体变性调节,也可以解释为什么PKA调节亚基的大多数疾病突变都是显性阴性。 Cryo-EM结构与小角度X射线散射(萨克斯)相结合,也允许我们预测二聚化/对接(D / D)域的一般位置,这对于本地化和与膜固定相互作用至关重要A-激酶锚定蛋白(Akaps)。该位置提供了一种多价机制,用于将Riiβ全酶与膜相互作用,并且在致癌融合蛋白中扰乱。 J-Domain还改变了Riiβ全酶的几种生化特性:用阵营更容易激活,并且合作减少。这些结果对致癌的J-C子单元中断的精细调谐的颠振PKA信号通信网络提供了新的见解,最终导致FL-HCC的开发。

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