TY - JOUR
T1 - The structural heterogeneity of α-synuclein is governed by several distinct subpopulations with interconversion times slower than milliseconds
AU - Chen, Jiaxing
AU - Zaer, Sofia
AU - Drori, Paz
AU - Zamel, Joanna
AU - Joron, Khalil
AU - Kalisman, Nir
AU - Lerner, Eitan
AU - Dokholyan, Nikolay V.
N1 - Publisher Copyright:
© 2021 Elsevier Ltd
PY - 2021/9/2
Y1 - 2021/9/2
N2 - α-Synuclein plays an important role in synaptic functions by interacting with synaptic vesicle membrane, while its oligomers and fibrils are associated with several neurodegenerative diseases. The specific monomer structures that promote its membrane binding and self-association remain elusive due to its transient nature as an intrinsically disordered protein. Here, we use inter-dye distance distributions from bulk time-resolved Förster resonance energy transfer as restraints in discrete molecular dynamics simulations to map the conformational space of the α-synuclein monomer. We further confirm the generated conformational ensemble in orthogonal experiments utilizing far-UV circular dichroism and cross-linking mass spectrometry. Single-molecule protein-induced fluorescence enhancement measurements show that within this conformational ensemble, some of the conformations of α-synuclein are surprisingly stable, exhibiting conformational transitions slower than milliseconds. Our comprehensive analysis of the conformational ensemble reveals essential structural properties and potential conformations that promote its various functions in membrane interaction or oligomer and fibril formation.
AB - α-Synuclein plays an important role in synaptic functions by interacting with synaptic vesicle membrane, while its oligomers and fibrils are associated with several neurodegenerative diseases. The specific monomer structures that promote its membrane binding and self-association remain elusive due to its transient nature as an intrinsically disordered protein. Here, we use inter-dye distance distributions from bulk time-resolved Förster resonance energy transfer as restraints in discrete molecular dynamics simulations to map the conformational space of the α-synuclein monomer. We further confirm the generated conformational ensemble in orthogonal experiments utilizing far-UV circular dichroism and cross-linking mass spectrometry. Single-molecule protein-induced fluorescence enhancement measurements show that within this conformational ensemble, some of the conformations of α-synuclein are surprisingly stable, exhibiting conformational transitions slower than milliseconds. Our comprehensive analysis of the conformational ensemble reveals essential structural properties and potential conformations that promote its various functions in membrane interaction or oligomer and fibril formation.
KW - conformational ensemble
KW - discrete molecular dynamics simulations
KW - intrinsically disordered protein
KW - neurodegenerative diseases
KW - α-synuclein
UR - http://www.scopus.com/inward/record.url?scp=85106994217&partnerID=8YFLogxK
U2 - 10.1016/j.str.2021.05.002
DO - 10.1016/j.str.2021.05.002
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C2 - 34015255
AN - SCOPUS:85106994217
SN - 0969-2126
VL - 29
SP - 1048-1064.e6
JO - Structure
JF - Structure
IS - 9
ER -