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Computational insights into dynamics and conformational stability of N-acetylmannosamine kinase mutations

  • Ashraf B. Abdel-Naim
  • , Pawan Kumar
  • , Mohammed A. Bazuhair
  • , Waleed Y. Rizg
  • , Hatoon A. Niyazi
  • , Khalil Alkuwaity
  • , Hanouf A. Niyazi
  • , Saif A. Alharthy
  • , Steve Harakeh
  • , Shafiul Haque
  • , Amresh Prakash
  • , Vijay Kumar
  • Faculty of Pharmacy, King Abdulaziz University
  • King Abdulaziz University
  • Jawaharlal Nehru University
  • King Abdulaziz University
  • King Fahd Medical Research Center
  • Faculty of Applied Medical Sciences, King Abdulaziz University
  • Jazan University
  • Lebanese American University
  • Amity University, Gurugram
  • Amity University, Noida

Research output: Contribution to journalArticlepeer-review

1 Scopus citations

Abstract

The activity of UDP-GlcNAc 2-epimerase/ManNAc kinase (GNE) is essential for the biosynthesis of sialic acid, which is involved in cellular processes in health and diseases. GNE contains an N-terminal epimerase domain and a C-terminal kinase domain (N-acetylmannosamine kinase, MNK). Mutations of the GNE protein led to hypoactivity of the enzyme and cause sialurea or autosomal recessive inclusion body myopathy/Nonaka myopathy. Here, we used all-atom molecular dynamics (MD) simulations to comprehend the folding, dynamics and conformational stability of MNK variants, including the wild type (WT) and three mutants (H677R, V696M and H677R/V696M). The deleterious and destabilizing nature of MNK mutants were predicted using different prediction tools. Results predicted that mutations modulate the stability, flexibility and function of MNK. The effect of mutations on the conformational stability and dynamics of MNK was next studied through the free-energy landscape (FEL), hydrogen-bonds and secondary structure changes. The FEL results show that the mutations interfere with various conformational transitions in both WT and mutants, exposing the structural underpinnings of protein destabilization and unfolding brought on by mutation. We discover that, when compared to the other two mutations, V696M and H677R/V696M, H677R has the most harmful effects. These findings have a strong correlation with published experimental studies that demonstrate how these mutations disrupt MNK activity. Hence, this computational study describes the structural details to unravel the mutant effects at the atomistic resolution and has implications for understanding the GNE's physiological and pathological role.

Original languageEnglish
Pages (from-to)8973-8983
Number of pages11
JournalJournal of Biomolecular Structure and Dynamics
Volume43
Issue number16
DOIs
StatePublished - 2025

Keywords

  • GNE
  • MNK
  • conformational stability
  • free energy landscape
  • frustration
  • molecular dynamics simulation
  • mutation

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