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Structural Reorganization Mechanism of the Aβ 42 Fibril Mediated by N -Substituted Oligopyrrolamide ADH-353.

Authors :
Dabas A
Goyal B
Source :
ACS chemical neuroscience [ACS Chem Neurosci] 2024 Sep 04; Vol. 15 (17), pp. 3136-3151. Date of Electronic Publication: 2024 Aug 19.
Publication Year :
2024

Abstract

The inhibition of amyloid-β (Aβ) fibrillation and clearance of Aβ aggregates have emerged as a potential pharmacological strategy to alleviate Aβ aggregate-induced neurotoxicity in Alzheimer's disease (AD). Maity et al. shortlisted ADH-353 from a small library of positively charged N -substituted oligopyrrolamides for its notable ability to inhibit Aβ fibrillation, disintegrate intracellular cytotoxic Aβ oligomers, and alleviate Aβ-induced cytotoxicity in the SH-SY5Y and N2a cells. However, the molecular mechanism through which ADH-353 interacts with the Aβ <subscript>42</subscript> fibrils, leading to their disruption and subsequent clearance, remains unclear. Thus, a detailed molecular mechanism underlying the disruption of neurotoxic Aβ <subscript>42</subscript> fibrils (PDB ID 2NAO) by ADH-353 has been illuminated in this work using molecular dynamics simulations. Interestingly, conformational snapshots during simulation depicted the shortening and disappearance of β-strands and the emergence of a helix conformation, indicating a loss of the well-organized β-sheet-rich structure of the disease-relevant Aβ <subscript>42</subscript> fibril on the incorporation of ADH-353. ADH-353 binds strongly to the Aβ <subscript>42</subscript> fibril (Δ G <subscript>binding</subscript> = -142.91 ± 1.61 kcal/mol) with a notable contribution from the electrostatic interactions between positively charged N -propylamine side chains of ADH-353 with the glutamic (Glu3, Glu11, and Glu22) and aspartic (Asp7 and Asp23) acid residues of the Aβ <subscript>42</subscript> fibril. This aligns well with heteronuclear single quantum coherence NMR studies, which depict that the binding of ADH-353 with the Aβ peptide is driven by electrostatic and hydrophobic contacts. Furthermore, a noteworthy decrease in the binding affinity of Aβ <subscript>42</subscript> fibril chains on the incorporation of ADH-353 indicates the weakening of interchain interactions leading to the disruption of the double-horseshoe conformation of the Aβ <subscript>42</subscript> fibril. The illumination of key interactions responsible for the destabilization of the Aβ <subscript>42</subscript> fibril by ADH-353 in this work will greatly aid in designing new chemical scaffolds with enhanced efficacy for the clearance of Aβ aggregates in AD.

Details

Language :
English
ISSN :
1948-7193
Volume :
15
Issue :
17
Database :
MEDLINE
Journal :
ACS chemical neuroscience
Publication Type :
Academic Journal
Accession number :
39158263
Full Text :
https://doi.org/10.1021/acschemneuro.4c00253