» Articles » PMID: 36831082

Exploring the Phospholipid Transport Mechanism of ATP8A1-CDC50

Overview
Journal Biomedicines
Date 2023 Feb 25
PMID 36831082
Authors
Affiliations
Soon will be listed here.
Abstract

P4-ATPase translocates lipids from the exoplasmic to the cytosolic plasma membrane leaflet to maintain lipid asymmetry distribution in eukaryotic cells. P4-ATPase is associated with severe neurodegenerative and metabolic diseases such as neurological and motor disorders. Thus, it is important to understand its transport mechanism. However, even with progress in X-ray diffraction and cryo-electron microscopy techniques, it is difficult to obtain the dynamic information of the phospholipid transport process in detail. There are still some problems required to be resolved: (1) when does the lipid transport happen? (2) How do the key residues on the transmembrane helices contribute to the free energy of important states? In this work, we explore the phospholipid transport mechanism using a coarse-grained model and binding free energy calculations. We obtained the free energy landscape by coupling the protein conformational changes and the phospholipid transport event, taking ATP8A1-CDC50 (the typical subtype of P4-ATPase) as the research object. According to the results, we found that the phospholipid would bind to the ATP8A1-CDC50 at the early stage when ATP8A1-CDC50 changes from E2P to E2Pi-PL state. We also found that the electrostatic effects play crucial roles in the phospholipid transport process. The information obtained from this work could help us in designing novel drugs for P-type flippase disorders.

Citing Articles

Role of Enzymes Capable of Transporting Phosphatidylserine in Brain Development and Brain Diseases.

Li Y, Xu S, Luo L, Yang J ACS Omega. 2024; 9(32):34243-34249.

PMID: 39157110 PMC: 11325426. DOI: 10.1021/acsomega.4c05036.

References
1.
Singh N, Warshel A . Absolute binding free energy calculations: on the accuracy of computational scoring of protein-ligand interactions. Proteins. 2010; 78(7):1705-23. PMC: 2868600. DOI: 10.1002/prot.22687. View

2.
Zhou J, Saha A, Huang Z, Warshel A . Fast and Effective Prediction of the Absolute Binding Free Energies of Covalent Inhibitors of SARS-CoV-2 Main Protease and 20S Proteasome. J Am Chem Soc. 2022; 144(17):7568-7572. PMC: 9359807. DOI: 10.1021/jacs.2c00853. View

3.
Oanca G, Asadi M, Saha A, Ramachandran B, Warshel A . Exploring the Catalytic Reaction of Cysteine Proteases. J Phys Chem B. 2020; 124(50):11349-11356. DOI: 10.1021/acs.jpcb.0c08192. View

4.
Ruiter M, Kadkova A, Scheutzow A, Malsam J, Sollner T, Sorensen J . An Electrostatic Energy Barrier for SNARE-Dependent Spontaneous and Evoked Synaptic Transmission. Cell Rep. 2019; 26(9):2340-2352.e5. DOI: 10.1016/j.celrep.2019.01.103. View

5.
Lopez-Marques R, Poulsen L, Bailly A, Geisler M, Pomorski T, Palmgren M . Structure and mechanism of ATP-dependent phospholipid transporters. Biochim Biophys Acta. 2014; 1850(3):461-75. DOI: 10.1016/j.bbagen.2014.04.008. View