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螺旋介导的TDP-43 C末端结构域多聚化的结构细节。

Structural details of helix-mediated TDP-43 C-terminal domain multimerization.

作者信息

Rizuan Azamat, Shenoy Jayakrishna, Mohanty Priyesh, Dos Passos Patricia M S, Mercado Ortiz José F, Bai Leanna, Viswanathan Renjith, Wang Szu-Huan, Johnson Victoria, Mamede Lohany D, Ayala Yuna M, Ghirlando Rodolfo, Mittal Jeetain, Fawzi Nicolas L

机构信息

Artie McFerrin Department of Chemical Engineering, Texas A&M University, College Station, TX 77843.

Department of Molecular Biology, Cell Biology & Biochemistry, Brown University, Providence, RI 02912.

出版信息

bioRxiv. 2024 Jul 5:2024.07.05.602258. doi: 10.1101/2024.07.05.602258.

Abstract

The primarily disordered C-terminal domain (CTD) of TAR DNA binding protein-43 (TDP-43), a key nuclear protein in RNA metabolism, forms neuronal inclusions in several neurodegenerative diseases. A conserved region (CR, spanning residues 319-341) in CTD forms transient helix-helix contacts important for its higher-order oligomerization and function that are disrupted by ALS-associated mutations. However, the structural details of CR assembly and the explanation for several ALS-associated variants' impact on phase separation and function remain unclear due to challenges in analyzing the dynamic association of TDP-43 CTD using traditional structural biology approaches. By employing an integrative approach, combining biophysical experiments, biochemical assays, AlphaFold2-Multimer (AF2-Multimer), and atomistic simulations, we generated structural models of helical oligomerization of TDP-43 CR. Using NMR, we first established that the native state of TDP-43 CR under physiological conditions is α-helical. Next, alanine scanning mutagenesis revealed that while hydrophobic residues in the CR are important for CR assembly, phase separation and TDP-43 nuclear retention function, polar residues down regulate these processes. Finally, pairing AF2-Multimer modeling with AAMD simulations indicated that dynamic, oligomeric assemblies of TDP-43 that are stabilized by a methionine-rich core with specific contributions from a tryptophan/leucine pair. In conclusion, our results advance the structural understanding of the mechanisms driving TDP-43 function and provide a window into the initial stages of its conversion into pathogenic aggregates.

摘要

TAR DNA结合蛋白43(TDP - 43)是RNA代谢中的关键核蛋白,其主要紊乱的C末端结构域(CTD)在几种神经退行性疾病中形成神经元包涵体。CTD中的一个保守区域(CR,跨越319 - 341位氨基酸残基)形成短暂的螺旋 - 螺旋接触,这对其高阶寡聚化和功能很重要,但被与肌萎缩侧索硬化症(ALS)相关的突变破坏。然而,由于使用传统结构生物学方法分析TDP - 43 CTD的动态缔合存在挑战,CR组装的结构细节以及几种与ALS相关的变体对相分离和功能影响的解释仍不清楚。通过采用综合方法,结合生物物理实验、生化分析、AlphaFold2 - Multimer(AF2 - Multimer)和原子模拟,我们生成了TDP - 43 CR螺旋寡聚化的结构模型。利用核磁共振(NMR),我们首先确定在生理条件下TDP - 43 CR的天然状态是α - 螺旋。接下来,丙氨酸扫描诱变表明,虽然CR中的疏水残基对CR组装、相分离和TDP - 43核保留功能很重要,但极性残基会下调这些过程。最后,将AF2 - Multimer建模与AAMD模拟相结合表明,TDP - 43的动态寡聚体组装由富含蛋氨酸的核心稳定,并由色氨酸/亮氨酸对做出特定贡献。总之,我们的结果推进了对驱动TDP - 43功能机制的结构理解,并为其转化为致病聚集体的初始阶段提供了一个窗口。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c920/11245101/c938885c9752/nihpp-2024.07.05.602258v1-f0001.jpg

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