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Matysiak, S.

Publications and source records attributed to Matysiak, S..

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Investigating the curvature sensing ability of Huntingtin's N17 domain

AbstractNt17, the N-terminal domain of the huntingtin protein (htt), has garnered significant attention for its role in htts membrane binding and aggregation processes. Previous studies have identified a nuclear export sequence within the Nt17 domain and demonstrated its localization at various cellular organelles. Recent evidence suggests that, like other amphipathic helices, Nt17 can sense and preferentially bind to curved membranes. Gaining deeper insight into this behavior is essential to fully understand the function of this domain. In this study, we combine coarse-grained molecular dynamics simulations with circular dichroism (CD) spectroscopy to investigate the mechanism behind Nt17s curvature sensing. We generated a unique hemispherical-planar membrane model, where 36% of the upper leaflet surface is curved, allowing us to evaluate Nt17s binding preferences. Our findings show that Nt17 exhibits a strong preference for curved regions, with approximately 78 {+/-} 7 % of peptides binding to these areas. This interaction is primarily mediated by the terminal Phe residues, indicating that Nt17s curvature sensing is driven by its ability to detect lipid packing defects. Furthermore, Nt17 not only senses these defects but also amplifies them by coalescing smaller pockets. Mutating the Phe residues to methionine, a smaller hydrophobic residue, significantly reduces Nt17s curvature sensitivity, resulting in equal binding to both curved and planar regions. CD spectroscopy corroborates these results, showing that Nt17 binds more strongly to highly curved small unilamellar vesicles (SUVs) compared to larger, less curved large unilamellar vesicles (LUVs).

biophysics↗

Conformational landscapes of Huntingtin's polyQ domain and variations in its aggregate morphology

Huntingtons disease (HD) is a fatal neurodegenerative disorder resulting from an abnormal expansion of polyglutamine (polyQ) repeats in the N terminus of the Huntingtin protein. When the polyQ tract surpasses 35 repeats, the mutated protein undergoes misfolding, culminating in the formation of intracellular aggregates. Research in mouse models suggests that HD pathogenesis involves the aggregation of N-terminal fragments of the Huntingtin protein (htt). These early oligomeric assemblies of htt, exhibiting diverse characteristics during aggregation, are implicated as potential toxic entities in HD. However, a consensus on their specific structures remains elusive. Understanding the heterogeneous nature of htt oligomers provides crucial insights into disease mechanisms, emphasizing the need to identify various oligomeric conformations as potential therapeutic targets. Employing coarse-grained molecular dynamics, our study aims to elucidate the mechanisms governing the aggregation process and resultant aggregate architectures of htt. The polyQ tract within htt is flanked by two regions: an N-terminal domain (N17) and a short C-terminal proline-rich segment. We conducted self-assembly simulations involving five distinct N17 + polyQ systems with polyQ lengths ranging from 7 to 45, utilizing the ProMPT force field. Prolongation of the polyQ domain correlates with an increase in {beta}-sheet-rich structures. Longer polyQ lengths favor intra-molecular {beta}-sheets over inter-molecular interactions due to the folding of the elongated polyQ domain into hairpin-rich conformations. Importantly, variations in polyQ length significantly influence resulting oligomeric structures. Shorter polyQ domains lead to N17 domain aggregation, forming a hydrophobic core, while longer polyQ lengths introduce a competition between N17 hydrophobic interactions and polyQ polar interactions, resulting in densely packed polyQ cores with outwardly distributed N17 domains. Additionally, at extended polyQ lengths, we observe distinct oligomeric conformations with varying degrees of N17 bundling. These findings can help explain the toxic gain-of function that htt with expanded polyQ acquires. Author summaryOur study delves into Huntingtons disease (HD), a devastating neurodegenerative disorder triggered by abnormal expansions of polyglutamine repeats in the Huntingtin protein. When these repeats exceed a critical threshold, the protein misfolds, leading to the formation of harmful intracellular aggregates. Using computational techniques, we explored the intricate process by which these aggregates form and examined their complex structures. Our findings shed light on the diverse nature of the protein fragments involved in HD pathology, emphasizing the importance of identifying various structural forms as potential targets for therapeutic intervention. We observed that changes in the length of the polyglutamine tract significantly impact the resulting aggregate structures, revealing insights into the disease mechanism. Specifically, we found that an expansion of the polyglutamine domain leads to distinct aggregate morphologies. In addition, the way the first 17 amino acids of these protein fragments pack against each other in the aggregates depends on the length of the polyglutamine repeats. By uncovering these structural intricacies, our study contributes to a deeper understanding of HD and may pave the way for the development of targeted treatments aimed at disrupting or preventing the formation of toxic protein aggregates.

biophysics↗