论文标题

深层学习揭示了蛋白酶体自动调节的隐藏动态

Deep manifold learning reveals hidden dynamics of proteasome autoregulation

论文作者

Wu, Zhaolong, Zhang, Shuwen, Wang, Wei Li, Ma, Yinping, Dong, Yuanchen, Mao, Youdong

论文摘要

2.5-MDA 26S蛋白酶体维持蛋白质抑制剂并调节各种细胞过程。多泛素化的底物相互作用如何调节蛋白酶体活性。在这里,我们介绍了一个名为Alphacryo4D的深层多种学习框架,该框架可以使原子水平的低温电子显微镜(Cryo-EM)重建非平衡构象连续体的重建,并重新构建蛋白酶体自动调节的隐藏动力学在底物降解的行为中。 Alphacryo4D将3D深度学习与自由能景观的歧管嵌入,该学习通过基于能量的粒子投票算法指导3D聚类。在使用模拟异质Cryo-EM数据集的盲评估中,Alphacryo4D在3D分类的准确性中达到了3D分类的精度,是Sub-3-Angstrom分辨率下130 kDa蛋白的常规方法和重建连续构象变化的三倍。通过使用Alphacryo4D分析单个实验性的冷冻EM数据集,我们确定了64个构造底物结合的人26S蛋白酶体的构象异构体,揭示了在双层封顶的全酶中两个调节颗粒的构型纠缠,并且它们与人为封盖的构型及其能量差异。在RPN2,RPN10和α5亚基上发现了新型的泛素结合位点,以重塑多泛素链以进行去泛素化和回收。重要的是,在易位开始期间,α4D编舞蛋白酶体AAA-ATPase运动的单核苷酸 - 交换动力学,这通过变构促进核生粉攻击来上调蛋白水解活性。我们的系统分析阐明了蛋白酶体自动调节的大层次变构。

The 2.5-MDa 26S proteasome maintains proteostasis and regulates myriad cellular processes. How polyubiquitylated substrate interactions regulate proteasome activity is not understood. Here we introduce a deep manifold learning framework, named AlphaCryo4D, which enables atomic-level cryogenic electron microscopy (cryo-EM) reconstructions of nonequilibrium conformational continuum and reconstitutes hidden dynamics of proteasome autoregulation in the act of substrate degradation. AlphaCryo4D integrates 3D deep residual learning with manifold embedding of free-energy landscapes, which directs 3D clustering via an energy-based particle-voting algorithm. In blind assessments using simulated heterogeneous cryo-EM datasets, AlphaCryo4D achieved 3D classification accuracy three times that of conventional method and reconstructed continuous conformational changes of a 130-kDa protein at sub-3-angstrom resolution. By using AlphaCryo4D to analyze a single experimental cryo-EM dataset, we identified 64 conformers of the substrate-bound human 26S proteasome, revealing conformational entanglement of two regulatory particles in the doubly capped holoenzymes and their energetic differences with singly capped ones. Novel ubiquitin-binding sites are discovered on the RPN2, RPN10 and Alpha5 subunits to remodel polyubiquitin chains for deubiquitylation and recycle. Importantly, AlphaCryo4D choreographs single-nucleotide-exchange dynamics of proteasomal AAA-ATPase motor during translocation initiation, which upregulates proteolytic activity by allosterically promoting nucleophilic attack. Our systemic analysis illuminates a grand hierarchical allostery for proteasome autoregulation.

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