Uncovering Intermolecular Interactions Driving the Liquid-Liquid Phase Separation of the TDP-43 Low-Complexity Domain via Atomistic Dimerization Simulations

被引:3
作者
Tang, Huayuan [1 ,2 ]
Sun, Yunxiang [2 ,3 ]
Wang, Lei [1 ]
Ke, Pu Chun [4 ,5 ]
Ding, Feng [2 ]
机构
[1] Hohai Univ, Dept Engn Mech, Nanjing 210098, Peoples R China
[2] Clemson Univ, Dept Phys & Astron, Clemson, SC 29634 USA
[3] Ningbo Univ, Sch Phys Sci & Technol, Ningbo 315211, Peoples R China
[4] Monash Univ, Monash Inst Pharmaceut Sci, Drug Delivery Disposit & Dynam, Parkville, Vic 3052, Australia
[5] Natl Inst Nanotechnol Innovat, Nanomed Ctr, Guangzhou 510700, Peoples R China
基金
中国国家自然科学基金;
关键词
ALPHA-HELICAL STRUCTURE; PROTEIN AGGREGATION; SECONDARY STRUCTURE; RNA-BINDING; ENERGY;
D O I
10.1021/acs.jcim.4c00943
中图分类号
R914 [药物化学];
学科分类号
100701 ;
摘要
Liquid-liquid phase separation (LLPS) of transactive response DNA-binding protein of 43 kDa (TDP-43), which exerts multiple functions in the splicing, trafficking, and stabilization of RNA, mediates the formation of membraneless condensates with crucial physiological roles, while its aberrant LLPS is linked to multiple neurodegenerative diseases. However, due to the heterogeneous and dynamic nature of LLPS, major gaps remain in understanding the precise intermolecular interactions driving LLPS and how specific mutations alter LLPS dynamics. Here, we investigated the molecular mechanisms underlying the LLPS of the TDP-43 low-complexity domain (LCD) by simulating the dimerization process using all-atom discrete molecular dynamics with microsecond-long simulations. Our results showed that the TDP-43 LCD was intrinsically disordered, with helical structures consistent with prior nuclear magnetic resonance studies. Phase separation propensity was assessed by simulating the dimerization of the TDP-43 LCD and four mutants, showing that A321G, W334G, and M337V inhibited self-association, while G335D promoted it, fully consistent with experimental reports. During the dimerization process, two peptides experienced both elastic and nonelastic collisions, and the self-associated dimer featured both high- and low-contact states. These results suggested that the dimerization process of the TDP-43 LCD was accordingly dynamic and heterogeneous. Additionally, we identified crucial regions containing hydrophobic clusters and aromatic residues in the N-terminus, central region, and C-terminus that were essential for the self-association of the TDP-43 LCD. These residues with high binding affinities can act as stickers to form peptide networks in LLPS. Together, our simulation provides a comprehensive picture of the intermolecular interactions driving the phase separation of the TDP-43 LCD, offering insights into both physiological functions and pathological mechanisms.
引用
收藏
页码:7590 / 7601
页数:12
相关论文
共 46 条
[1]   Considerations and Challenges in Studying Liquid-Liquid Phase Separation and Biomolecular Condensates [J].
Alberti, Simon ;
Gladfelter, Amy ;
Mittag, Tanja .
CELL, 2019, 176 (03) :419-434
[2]   The role of liquid-liquid phase separation in aggregation of the TDP-43 low-complexity domain [J].
Babinchak, W. Michael ;
Haider, Raza ;
Dumm, Benjamin K. ;
Sarkar, Prottusha ;
Surewicz, Krystyna ;
Choi, Jin-Kyu ;
Surewicz, Witold K. .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2019, 294 (16) :6306-6317
[3]   Fundamental Challenges and Outlook in Simulating Liquid-Liquid Phase Separation of Intrinsically Disordered Proteins [J].
Bari, Khandekar Jishan ;
Prakashchand, Dube Dheeraj .
JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2021, 12 (06) :1644-1656
[4]   CHARMM - A PROGRAM FOR MACROMOLECULAR ENERGY, MINIMIZATION, AND DYNAMICS CALCULATIONS [J].
BROOKS, BR ;
BRUCCOLERI, RE ;
OLAFSON, BD ;
STATES, DJ ;
SWAMINATHAN, S ;
KARPLUS, M .
JOURNAL OF COMPUTATIONAL CHEMISTRY, 1983, 4 (02) :187-217
[5]   Molecular insights into the surface-catalyzed secondary nucleation of amyloid-β40 (Aβ40) by the peptide fragment Aβ16-22 [J].
Bunce, Samuel J. ;
Wang, Yiming ;
Stewart, Katie L. ;
Ashcroft, Alison E. ;
Radford, Sheena E. ;
Hall, Carol K. ;
Wilson, Andrew J. .
SCIENCE ADVANCES, 2019, 5 (06)
[6]   TDP-43: gumming up neurons through protein-protein and protein-RNA interactions [J].
Buratti, Emanuele ;
Baralle, Francisco E. .
TRENDS IN BIOCHEMICAL SCIENCES, 2012, 37 (06) :237-247
[7]   Determination of Secondary Structure Populations in Disordered States of Proteins Using Nuclear Magnetic Resonance Chemical Shifts [J].
Camilloni, Carlo ;
De Simone, Alfonso ;
Vranken, Wim F. ;
Vendruscolo, Michele .
BIOCHEMISTRY, 2012, 51 (11) :2224-2231
[8]   Induction of Amyloid Fibrils by the C-Terminal Fragments of TDP-43 in Amyotrophic Lateral Sclerosis [J].
Chen, Allan K. -H. ;
Lin, Ryan Y. -Y. ;
Hsieh, Eva Z. -J. ;
Tu, Pang-Hsien ;
Chen, Rita P. -Y. ;
Liao, Tai-Yan ;
Chen, Wenlung ;
Wang, Chih-Hsien ;
Huang, Joseph J. -T. .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2010, 132 (04) :1186-+
[9]   LASSI: A lattice model for simulating phase transitions of multivalent proteins [J].
Choi, Jeong-Mo ;
Dar, Furqan ;
Pappu, Rohit, V .
PLOS COMPUTATIONAL BIOLOGY, 2019, 15 (10)
[10]   TDP-43 α-helical structure tunes liquid-liquid phase separation and function [J].
Conicella, Alexander E. ;
Dignon, Gregory L. ;
Zerze, Gul H. ;
Schmidt, Hermann Broder ;
D'Ordine, Alexandra M. ;
Kim, Young C. ;
Rohatgi, Rajat ;
Ayala, Yuna M. ;
Mittal, Jeetain ;
Fawzi, Nicolas L. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2020, 117 (11) :5883-5894