Cargando…

AI-Based Homology Modelling of Fatty Acid Transport Protein 1 Using AlphaFold: Structural Elucidation and Molecular Dynamics Exploration

Fatty acid transport protein 1 (FATP1) is an integral transmembrane protein that is involved in facilitating the translocation of long-chain fatty acids (LCFA) across the plasma membrane, thereby orchestrating the importation of LCFA into the cell. FATP1 also functions as an acyl-CoA ligase, catalyz...

Descripción completa

Detalles Bibliográficos
Autores principales: Acharya, Ranjitha, Shetty, Shilpa S., Pavan, Gollapalli, Monteiro, Flama, Munikumar, Manne, Naresh, Sriram, Kumari, Nalilu Suchetha
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10669040/
https://www.ncbi.nlm.nih.gov/pubmed/38002353
http://dx.doi.org/10.3390/biom13111670
_version_ 1785149200771579904
author Acharya, Ranjitha
Shetty, Shilpa S.
Pavan, Gollapalli
Monteiro, Flama
Munikumar, Manne
Naresh, Sriram
Kumari, Nalilu Suchetha
author_facet Acharya, Ranjitha
Shetty, Shilpa S.
Pavan, Gollapalli
Monteiro, Flama
Munikumar, Manne
Naresh, Sriram
Kumari, Nalilu Suchetha
author_sort Acharya, Ranjitha
collection PubMed
description Fatty acid transport protein 1 (FATP1) is an integral transmembrane protein that is involved in facilitating the translocation of long-chain fatty acids (LCFA) across the plasma membrane, thereby orchestrating the importation of LCFA into the cell. FATP1 also functions as an acyl-CoA ligase, catalyzing the ATP-dependent formation of fatty acyl-CoA using LCFA and VLCFA (very-long-chain fatty acids) as substrates. It is expressed in various types of tissues and is involved in the regulation of crucial signalling pathways, thus playing a vital role in numerous physiological and pathological conditions. Structural insight about FATP1 is, thus, extremely important for understanding the mechanism of action of this protein and developing efficient treatments against its anomalous expression and dysregulation, which are often associated with pathological conditions such as breast cancer. As of now, there has been no prior prediction or evaluation of the 3D configuration of the human FATP1 protein, hindering a comprehensive understanding of the distinct functional roles of its individual domains. In our pursuit to unravel the structure of the most commonly expressed isoforms of FATP1, we employed the cutting-edge ALPHAFOLD 2 model for an initial prediction of the entire protein’s structure. This prediction was complemented by molecular dynamics simulations, focusing on the most promising model. We predicted the structure of FATP1 in silico and thoroughly refined and validated it using coarse and molecular dynamics in the absence of the complete crystal structure. Their relative dynamics revealed the different properties of the characteristic FATP1.
format Online
Article
Text
id pubmed-10669040
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-106690402023-11-20 AI-Based Homology Modelling of Fatty Acid Transport Protein 1 Using AlphaFold: Structural Elucidation and Molecular Dynamics Exploration Acharya, Ranjitha Shetty, Shilpa S. Pavan, Gollapalli Monteiro, Flama Munikumar, Manne Naresh, Sriram Kumari, Nalilu Suchetha Biomolecules Article Fatty acid transport protein 1 (FATP1) is an integral transmembrane protein that is involved in facilitating the translocation of long-chain fatty acids (LCFA) across the plasma membrane, thereby orchestrating the importation of LCFA into the cell. FATP1 also functions as an acyl-CoA ligase, catalyzing the ATP-dependent formation of fatty acyl-CoA using LCFA and VLCFA (very-long-chain fatty acids) as substrates. It is expressed in various types of tissues and is involved in the regulation of crucial signalling pathways, thus playing a vital role in numerous physiological and pathological conditions. Structural insight about FATP1 is, thus, extremely important for understanding the mechanism of action of this protein and developing efficient treatments against its anomalous expression and dysregulation, which are often associated with pathological conditions such as breast cancer. As of now, there has been no prior prediction or evaluation of the 3D configuration of the human FATP1 protein, hindering a comprehensive understanding of the distinct functional roles of its individual domains. In our pursuit to unravel the structure of the most commonly expressed isoforms of FATP1, we employed the cutting-edge ALPHAFOLD 2 model for an initial prediction of the entire protein’s structure. This prediction was complemented by molecular dynamics simulations, focusing on the most promising model. We predicted the structure of FATP1 in silico and thoroughly refined and validated it using coarse and molecular dynamics in the absence of the complete crystal structure. Their relative dynamics revealed the different properties of the characteristic FATP1. MDPI 2023-11-20 /pmc/articles/PMC10669040/ /pubmed/38002353 http://dx.doi.org/10.3390/biom13111670 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Acharya, Ranjitha
Shetty, Shilpa S.
Pavan, Gollapalli
Monteiro, Flama
Munikumar, Manne
Naresh, Sriram
Kumari, Nalilu Suchetha
AI-Based Homology Modelling of Fatty Acid Transport Protein 1 Using AlphaFold: Structural Elucidation and Molecular Dynamics Exploration
title AI-Based Homology Modelling of Fatty Acid Transport Protein 1 Using AlphaFold: Structural Elucidation and Molecular Dynamics Exploration
title_full AI-Based Homology Modelling of Fatty Acid Transport Protein 1 Using AlphaFold: Structural Elucidation and Molecular Dynamics Exploration
title_fullStr AI-Based Homology Modelling of Fatty Acid Transport Protein 1 Using AlphaFold: Structural Elucidation and Molecular Dynamics Exploration
title_full_unstemmed AI-Based Homology Modelling of Fatty Acid Transport Protein 1 Using AlphaFold: Structural Elucidation and Molecular Dynamics Exploration
title_short AI-Based Homology Modelling of Fatty Acid Transport Protein 1 Using AlphaFold: Structural Elucidation and Molecular Dynamics Exploration
title_sort ai-based homology modelling of fatty acid transport protein 1 using alphafold: structural elucidation and molecular dynamics exploration
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10669040/
https://www.ncbi.nlm.nih.gov/pubmed/38002353
http://dx.doi.org/10.3390/biom13111670
work_keys_str_mv AT acharyaranjitha aibasedhomologymodellingoffattyacidtransportprotein1usingalphafoldstructuralelucidationandmoleculardynamicsexploration
AT shettyshilpas aibasedhomologymodellingoffattyacidtransportprotein1usingalphafoldstructuralelucidationandmoleculardynamicsexploration
AT pavangollapalli aibasedhomologymodellingoffattyacidtransportprotein1usingalphafoldstructuralelucidationandmoleculardynamicsexploration
AT monteiroflama aibasedhomologymodellingoffattyacidtransportprotein1usingalphafoldstructuralelucidationandmoleculardynamicsexploration
AT munikumarmanne aibasedhomologymodellingoffattyacidtransportprotein1usingalphafoldstructuralelucidationandmoleculardynamicsexploration
AT nareshsriram aibasedhomologymodellingoffattyacidtransportprotein1usingalphafoldstructuralelucidationandmoleculardynamicsexploration
AT kumarinalilusuchetha aibasedhomologymodellingoffattyacidtransportprotein1usingalphafoldstructuralelucidationandmoleculardynamicsexploration