Literature DB >> 33356290

Amyloid Aggregation under the Lens of Liquid-Liquid Phase Separation.

Yanting Xing1, Aparna Nandakumar2, Aleksandr Kakinen2,3, Yunxiang Sun1,3, Thomas P Davis2,3, Pu Chun Ke2, Feng Ding1,4.   

Abstract

Increasing experiments suggest that amyloid peptides can undergo liquid-liquid phase separation (LLPS) before the formation of amyloid fibrils. However, the exact role of LLPS in amyloid aggregation at the molecular level remains elusive. Here, we investigated the LLPS and amyloid fibrillization of a coarse-grained peptide, capable of capturing fundamental properties of amyloid aggregation over a wide range of concentrations in molecular dynamics simulations. On the basis of the Flory-Huggins theory of polymer solutions, we determined the binodal and spinodal concentrations of LLPS in the low-concentration regime, ϕBL and ϕSL, respectively. Only at concentrations above ϕBL, peptides formed metastable or stable oligomers corresponding to the high-density liquid phase (HDLP) in LLPS, out of which the nucleated conformational conversion to fibril seeds occurred. Below ϕSL, the HDLP was metastable and transient, and the subsequent fibrillization process followed the traditional nucleation and elongation mechanisms. Only above ϕSL, the HDLP became stable, and the initial fibril nucleation and growth were governed by the high local peptide concentrations. The predicted saturation of amyloid aggregation half-times with increasing peptide concentration to a constant, instead of the traditional power-law scaling to zero, was confirmed by simulations and by a thioflavin-T kinetic assay and the transmission electron microscopy of islet amyloid polypeptide (IAPP) aggregation. Our study provides a unified picture of amyloid aggregation for a wide range of concentrations within the framework of LLPS, which may help us better understand the etiology of amyloid diseases, where the amyloid protein concentration can vary by ∼9 orders of magnitude depending on the organ location and facilitate the engineering of novel amyloid-based functional materials.

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Year:  2020        PMID: 33356290      PMCID: PMC7855599          DOI: 10.1021/acs.jpclett.0c02567

Source DB:  PubMed          Journal:  J Phys Chem Lett        ISSN: 1948-7185            Impact factor:   6.475


  58 in total

1.  Discrete molecular dynamics simulations of peptide aggregation.

Authors:  S Peng; F Ding; B Urbanc; S V Buldyrev; L Cruz; H E Stanley; N V Dokholyan
Journal:  Phys Rev E Stat Nonlin Soft Matter Phys       Date:  2004-04-29

2.  Crucial role of nonspecific interactions in amyloid nucleation.

Authors:  Anđela Šarić; Yassmine C Chebaro; Tuomas P J Knowles; Daan Frenkel
Journal:  Proc Natl Acad Sci U S A       Date:  2014-12-01       Impact factor: 11.205

3.  Elucidation of amyloid beta-protein oligomerization mechanisms: discrete molecular dynamics study.

Authors:  B Urbanc; M Betnel; L Cruz; G Bitan; D B Teplow
Journal:  J Am Chem Soc       Date:  2010-03-31       Impact factor: 15.419

Review 4.  Functional Amyloids.

Authors:  Daniel Otzen; Roland Riek
Journal:  Cold Spring Harb Perspect Biol       Date:  2019-12-02       Impact factor: 10.005

Review 5.  Matter over mind: Liquid phase separation and neurodegeneration.

Authors:  Shana Elbaum-Garfinkle
Journal:  J Biol Chem       Date:  2019-03-26       Impact factor: 5.157

6.  Phase separation by low complexity domains promotes stress granule assembly and drives pathological fibrillization.

Authors:  Amandine Molliex; Jamshid Temirov; Jihun Lee; Maura Coughlin; Anderson P Kanagaraj; Hong Joo Kim; Tanja Mittag; J Paul Taylor
Journal:  Cell       Date:  2015-09-24       Impact factor: 41.582

Review 7.  Why are Functional Amyloids Non-Toxic in Humans?

Authors:  Matthew P Jackson; Eric W Hewitt
Journal:  Biomolecules       Date:  2017-09-22

8.  Formation and Maturation of Phase-Separated Liquid Droplets by RNA-Binding Proteins.

Authors:  Yuan Lin; David S W Protter; Michael K Rosen; Roy Parker
Journal:  Mol Cell       Date:  2015-09-24       Impact factor: 17.970

9.  α-Synuclein aggregation nucleates through liquid-liquid phase separation.

Authors:  Soumik Ray; Nitu Singh; Rakesh Kumar; Komal Patel; Satyaprakash Pandey; Debalina Datta; Jaladhar Mahato; Rajlaxmi Panigrahi; Ambuja Navalkar; Surabhi Mehra; Laxmikant Gadhe; Debdeep Chatterjee; Ajay Singh Sawner; Siddhartha Maiti; Sandhya Bhatia; Juan Atilio Gerez; Arindam Chowdhury; Ashutosh Kumar; Ranjith Padinhateeri; Roland Riek; G Krishnamoorthy; Samir K Maji
Journal:  Nat Chem       Date:  2020-06-08       Impact factor: 24.427

10.  Liquid-liquid phase separation of type II diabetes-associated IAPP initiates hydrogelation and aggregation.

Authors:  Lior Pytowski; Chiu Fan Lee; Alex C Foley; David J Vaux; Létitia Jean
Journal:  Proc Natl Acad Sci U S A       Date:  2020-05-15       Impact factor: 11.205

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  3 in total

1.  Curcumin Interacts with α-Synuclein Condensates To Inhibit Amyloid Aggregation under Phase Separation.

Authors:  Bingkuan Xu; Jing Chen; Yinghui Liu
Journal:  ACS Omega       Date:  2022-08-15

Review 2.  Liquid-Liquid Phase Separation of Biomacromolecules and Its Roles in Metabolic Diseases.

Authors:  Zhihao Chen; Ying Huai; Wenjing Mao; Xuehao Wang; Kang Ru; Airong Qian; Hong Yang
Journal:  Cells       Date:  2022-09-27       Impact factor: 7.666

Review 3.  A Time-Resolved Diffusion Technique for Detection of the Conformational Changes and Molecular Assembly/Disassembly Processes of Biomolecules.

Authors:  Yusuke Nakasone; Masahide Terazima
Journal:  Front Genet       Date:  2021-06-30       Impact factor: 4.599

  3 in total

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