Loading
PDBj
MenuPDBj@FacebookPDBj@X(formerly Twitter)PDBj@BlueSkyPDBj@YouTubewwPDB FoundationwwPDBDonate
RCSB PDBPDBeBMRBAdv. SearchSearch help

9WAB

Solution structure of holo Acyl carrier protein from Escherichia coli

Summary for 9WAB
Entry DOI10.2210/pdb9wab/pdb
DescriptorAcyl carrier protein (1 entity in total)
Functional Keywordsbiosynthetic protein, protein transport
Biological sourceEscherichia coli (strain K12)
Total number of polymer chains1
Total formula weight8514.26
Authors
Jang, S.,Kim, Y. (deposition date: 2025-08-11, release date: 2026-08-12)
Primary citationLee, C.Y.,Jang, S.,Cho, H.,Jeong, M.C.,Oh, Y.,Kim, Y.
Structural and Dynamic Insights into Acyl Carrier Protein upon Metal Binding and Acylation Revealed by NMR Spectroscopy and MD Simulations.
Int J Mol Sci, 26:-, 2025
Cited by
PubMed Abstract: Protein dynamics are crucial for the acyl carrier protein (ACP) acting as a cofactor, communicating with various fatty acid synthesis (FAS) enzymes. Using a combination of NMR spectroscopy and molecular dynamics (MD) simulations, we demonstrate how the conformational flexibility of ACP (ACP) modulates metal binding and facilitates its molecular switches, thereby determining the pathway for different acyl chains. Our results show that Ca binding greatly stabilizes the protein-boosting thermal stability by over 13 °C-and modulates its dynamic properties, affecting two acidic metal binding sites and the conformation of the hydrophobic cavity. Hydrogen-deuterium exchange and chemical denaturation experiments revealed that Ile11 and Ile72 are the key residues for the global folding of ACP, stabilizing hydrophobic cavity. Backbone dynamics and MD simulation results indicate that longer acyl chains induce conformational adjustments, increasing flexibility in α3-helix and hydrophobic motifs, including Phe28 and Ile54. Furthermore, our findings highlight the conformational plasticity of ACP, with key molecular switches, Leu42 and Leu46, adapting to accommodate various acyl chains and directing their pathway. These insights deepen our understanding of ACP flexibility and its functional role in FAS, offering a new strategy for designing inhibitors that target the dynamic nature of bacterial FAS pathways.
PubMed: 41009570
DOI: 10.3390/ijms26189005
PDB entries with the same primary citation
Experimental method
SOLUTION NMR
Structure validation

258009

PDB entries from 2026-08-12

PDB statisticsPDBj update infoContact PDBjnumon