Laboratory of Statistical Thermodynamics and Macromolecules, Department of Chemical Engineering, University of Patras & FORTH/ICE-HT, 26504 Patras, Greece.
Biological Computation & Process Lab, Chemical Process & Energy Resources Institute, Centre for Research & Technology Hellas, 57001 Thessaloniki, Greece.
Molecules. 2020 Oct 19;25(20):4787. doi: 10.3390/molecules25204787.
The ubiquitin pathway required for most proteins' targeted degradation involves three classes of enzymes: E1-activating enzyme, E2-conjugating enzyme, and E3-ligases. The human Ark2C is the single known E3 ligase that adopts an alternative, Ub-dependent mechanism for the activation of Ub transfer in the pathway. Its RING domain binds both E2-Ub and free Ub with high affinity, resulting in a catalytic active Ub-RING-E2-Ub complex formation. We examined potential changes in the conformational plasticity of the Ark2C RING domain and its ligands in their complexed form within the ubiquitin pathway through molecular dynamics (MD). Three molecular mechanics force fields compared to previous NMR relaxation studies of RING domain of Arkadia were used for effective and accurate assessment of MDs. Our results suggest the Ark2C Ub-RING docking site has a substantial impact on maintaining the conformational rigidity of E2-E3 assembly, necessary for the E3's catalytic activity. In the Ub-RING-E2-Ub catalytic complex, the Ub molecule was found to have greater mobility than the other Ub, bound to E2. Furthermore, network-based bioinformatics helped us identify E3 RING ligase candidates which potentially exhibit similar structural modules as Ark2C, along with predicted substrates targeted by the Ub-binding RING Ark2C. Our findings could trigger a further exploration of related unrevealed functions of various other E3 RING ligases.
泛素途径是大多数蛋白质靶向降解所必需的,涉及三类酶:E1 激活酶、E2 连接酶和 E3 连接酶。人类 Ark2C 是唯一已知的 E3 连接酶,它采用替代的、依赖 Ub 的机制来激活途径中的 Ub 转移。其 RING 结构域以高亲和力结合 E2-Ub 和游离 Ub,导致催化活性 Ub-RING-E2-Ub 复合物的形成。我们通过分子动力学 (MD) 研究了泛素途径中 Ark2C RING 结构域及其配体在复合物形式下的构象可塑性的潜在变化。与之前对 Arkadia RING 结构域的 NMR 弛豫研究相比,我们使用了三种分子力学力场来有效和准确地评估 MD。我们的结果表明,Ark2C Ub-RING 对接位点对维持 E2-E3 组装的构象刚性有很大影响,这对于 E3 的催化活性是必要的。在 Ub-RING-E2-Ub 催化复合物中,发现 Ub 分子比与 E2 结合的另一个 Ub 分子具有更大的流动性。此外,基于网络的生物信息学帮助我们确定了 E3 RING 连接酶候选物,这些候选物可能具有与 Ark2C 相似的结构模块,以及预测的 Ub 结合 RING Ark2C 靶向的底物。我们的发现可能会引发对各种其他 E3 RING 连接酶未揭示功能的进一步探索。