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A combined computational-biophysical approach to understanding fatty acid binding to FABP7. | LitMetric

AI Article Synopsis

  • FABP7 is a type of protein that helps move fatty acids and other similar molecules inside cells, acting like a delivery truck.
  • When FABP7 grabs onto a specific fatty acid called DHA, it changes where it goes in the cell, moving to the nucleus and affecting how genes work.
  • Scientists study how FABP7 changes shape and functions when it binds to different fatty acids using special techniques, and they found that this binding changes its shape a lot!

Article Abstract

Members of the fatty acid binding protein (FABP) family function as intracellular transporters of long-chain fatty acids and other hydrophobic molecules to different cellular compartments. Brain FABP (FABP7) exhibits ligand-directed differences in cellular transport. For example, when FABP7 binds to docosahexaenoic acid (DHA), the complex relocates to the nucleus and influences transcriptional activity, whereas FABP7 bound with monosaturated fatty acids remains in the cytosol. Preferential binding of FABP7 to polyunsaturated fatty acids like DHA has been previously observed and is thought to play a role in differential localization. However, we find that at 37°C, FABP7 does not display strong selectivity, suggesting that the conformational ensemble of FABP7 and its perturbation upon binding may be important. We use molecular dynamics simulations, NMR, and a variety of biophysical techniques to better understand the conformational ensemble of FABP7, how it is perturbed by fatty acid binding, and how this may be related to ligand-directed transport. We find that FABP7 has high degree of conformational heterogeneity that is substantially reduced upon ligand binding. We also observe substantial heterogeneity in ligand binding poses, which is consistent with our finding that ligand binding is resistant to mutations in key polar residues in the binding pocket. Our NMR experiments show that DHA binding leads to chemical shift perturbations in residues near the nuclear localization signal, which may point toward a mechanism of differential transport.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10027445PMC
http://dx.doi.org/10.1016/j.bpj.2023.02.003DOI Listing

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