Key Laboratory for Neurodegenerative Diseases Nanomedicine of Hubei Province; School of Chemistry, Chemical Engineering and Life Science; Institute WUT-AMU, Wuhan University of Technology, Wuhan 430070, China
leishen@whut.edu.cn
收稿:2026-02-08,
录用:2026-03-18,
网络首发:2026-05-30,
纸质出版:2026-08-15
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Zhang, Y. H.; Gong, S.; Yuan, Y.; Shen, L. A DNA threshold of four G/C base pairs drives intramolecular β-sheet formation in α-synuclein. Chinese J. Polym. Sci. 2026, 44, 2630–2636
Yi-Heng Zhang, Shuai Gong, Yu Yuan, et al. A DNA Threshold of Four G/C Base Pairs Drives Intramolecular
Zhang, Y. H.; Gong, S.; Yuan, Y.; Shen, L. A DNA threshold of four G/C base pairs drives intramolecular β-sheet formation in α-synuclein. Chinese J. Polym. Sci. 2026, 44, 2630–2636 DOI: 10.1007/s10118-026-3674-x.
Yi-Heng Zhang, Shuai Gong, Yu Yuan, et al. A DNA Threshold of Four G/C Base Pairs Drives Intramolecular
Simulations revealed that
α
-synuclein undergoes a GC-length-dependent conformational switch: ≥4 consecutive GC pairs induce
β
-sheet formation
unlike AT-rich regions
implicating DNA in the regulation of protein aggregation and gene expression.
Interactions between the intrinsically disordered protein
α
-synuclein (
α
S) and DNA are implicated in its pathological aggregation and neuronal function. However
the structural rules governing these interactions remain undefined. Through well-tempered metadynamics simulations across six distinct DNA sequence landscapes
we report a sequence-specific conformational switch in a single
α
S chain. While AT-rich sequences engage
α
S yet induce DNA duplex destabilization with minimal protein structuring
GC-rich tracts promote localized protein compaction and secondary
β
-sheet structure formation. Crucially
we identified a specific threshold: the presence of four or more consecutive G/C base pairs is both necessary and sufficient to nucleate the formation of a stable
intramolecular
β
-sheet within the N-terminal and nonamyloid component regions of the
α
S chain. This structured state
anchored by persistent protein-DNA contacts
is absent in shorter GC tracts or alternating sequences. In mixed-sequence contexts
the extended GC blocks function as exclusive binding hubs
do
minating over interactions with adjacent AT-rich regions. This GC length-dependent conformational switch provides a precise biophysical mechanism through which the DNA architecture can spatially regulate
α
S folding
with potential implications for its aggregation propensity and regulatory functions in gene expression.
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