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  4. Molecular Insights into the Inhibitory Role of α-Crystallin against γD-Crystallin Aggregation
 
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Molecular Insights into the Inhibitory Role of α-Crystallin against γD-Crystallin Aggregation

Source
Journal of Chemical Theory and Computation
ISSN
15499618
Date Issued
2024-02-27
Author(s)
Ghosh, Deepshikha
Agarwal, Manish
Radhakrishna, Mithun  
DOI
10.1021/acs.jctc.3c00774
Volume
20
Issue
4
Abstract
Cataracts, a major cause of global blindness, contribute significantly to the overall prevalence of blindness. The opacification of the lens, resulting in cataract formation, primarily occurs due to the aggregation of crystallin proteins within the eye lens. Despite the high concentration of these crystallins, they remarkably maintain the lens transparency and refractive index. α-Crystallins (α-crys), acting as chaperones, play a crucial role in preventing crystallin aggregation, although the exact molecular mechanism remains uncertain. In this study, we employed a combination of molecular docking, all-atom molecular dynamics simulations, and advanced free energy calculations to investigate the interaction between γD-crystallin (γD-crys), a major structural protein of the eye lens, and α-crystallin proteins. Our findings demonstrate that α-crys exhibits an enhanced affinity for the NTD2 and CTD4 regions of γD-crys. The NTD2 and CTD4 regions form the interface between the N-terminal domain (NTD) and the C-terminal domain (CTD) of the γD-crys protein. By binding to the interface region between the NTD and CTD of the protein, α-crys effectively inhibits the formation of domain-swapped aggregates and mitigates protein aggregation. Analysis of the Markov state models using molecular dynamics trajectories confirms that minimum free energy conformations correspond to the binding of the α-crystallin domain (ACD) of α-crys to NTD2 and CTD4 that form the interdomain interface.
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URI
https://d8.irins.org/handle/IITG2025/26438
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