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Investigating the role of functional mutations in leucine binding to Sestrin2 in aging and age-associated degenerative pathologies using structural and molecular simulation approaches.
Khan, Abbas; Zahid, Muhammad Ammar; Shahab, Muhammad; Al-Zoubi, Raed M; Shkoor, Mohanad; Benameur, Tarek; Agouni, Abdelali.
Affiliation
  • Khan A; Department of Pharmaceutical Sciences, College of Pharmacy, QU Health, Qatar University, Doha, Qatar.
  • Zahid MA; Department of Pharmaceutical Sciences, College of Pharmacy, QU Health, Qatar University, Doha, Qatar.
  • Shahab M; Department of Chemistry, Beijing University of Chemical Technology (BUCT), Beijing, China.
  • Al-Zoubi RM; Surgical Research Section, Department of Surgery, Hamad Medical Corporation, Doha, Qatar.
  • Shkoor M; Department of Biomedical Sciences, College of Health Sciences, QU Health, Qatar University, Doha, Qatar.
  • Benameur T; Department of Chemistry, Jordan University of Science and Technology, Irbid, Jordan.
  • Agouni A; Department of Chemistry, College of Arts and Science, Qatar University, Doha, Qatar.
J Biomol Struct Dyn ; : 1-13, 2024 Apr 30.
Article in En | MEDLINE | ID: mdl-38686915
ABSTRACT
Leucine is the native known ligand of Sestrin2 (Sesn2) and its interaction with Sesn2 is particularly important, as it influences the activity of mTOR in aging and its associated pathologies. It is important to find out how leucine interacts with Sesn2 and how mutations in the binding pocket of leucine affect the binding of leucine. Therefore, this study was committed to investigating the impact of non-synonymous mutations by incorporating a broad spectrum of simulation techniques, from molecular dynamics to free energy calculations. Our study was designed to model the atomic-scale interactions between leucine and mutant forms of Sesn2. Our results demonstrated that the interaction paradigm for the mutants has been altered thus showing a significant decline in the hydrogen bonding network. Moreover, these mutations compromised the dynamic stability by altering the conformational flexibility, sampling time, and leucine-induced structural constraints that consequently caused variation in the binding and structural stability. Molecular dynamics-based flexibility analysis revealed that the regions 217-339 and 371-380 demonstrated a higher fluctuation. Noteworthy, these regions correspond to a linker (217-339) and a loop (371-380) that cover the leucine binding cavity that is critical for the 'latch' mechanism in the N-terminal, which is essential for leucine binding. Further validation of reduced binding and modified internal motions caused by the mutants was obtained through binding free energy calculations, principal components analysis (PCA), and free energy landscape (FEL) analysis. By unraveling the molecular intricacies of Sesn2-leucine interactions and their mutations, we hope to pave the way for innovative strategies to combat the inevitable tide of aging and its associated diseases.Communicated by Ramaswamy H. Sarma.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: J Biomol Struct Dyn Year: 2024 Document type: Article Affiliation country: Qatar

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: J Biomol Struct Dyn Year: 2024 Document type: Article Affiliation country: Qatar