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RESEARCH PRODUCT
Assembly of Spinach Chloroplast ATP Synthase Rotor Ring Protein-Lipid Complex
Ivan GushchinOlga NovitskaiaPavel BuslaevPavel Buslaevsubject
0301 basic medicineSpinaciaATPaseProtein subunitlipiditBiochemistry Genetics and Molecular Biology (miscellaneous)Biochemistrysolukalvotprotein-lipid interactions03 medical and health sciences0302 clinical medicinecomplex assemblymembrane insertionMolecular Biosciencesmembrane proteinProtein–lipid interactionlcsh:QH301-705.5Molecular BiologyOriginal ResearchbiologyATP synthaseannular lipidsChemistrybiology.organism_classificationadenosiinitrifosfaatti030104 developmental biologyMembranelcsh:Biology (General)Membrane proteinProtein-lipid complex030220 oncology & carcinogenesisbiology.proteinBiophysicslipids (amino acids peptides and proteins)proteiinitdescription
Rotor ATPases are large multisubunit membrane protein complexes found in all kingdoms of life. The membrane parts of these ATPases include a ring-like assembly, so-called c-ring, consisting of several subunits c, plugged by a patch of phospholipids. In this report, we use a nature-inspired approach to model the assembly of the spinach (Spinacia oleracea) c14 ring protein-lipid complex, where partially assembled oligomers are pulled toward each other using a biasing potential. The resulting assemblies contain 23 to 26 encapsulated plug lipids, general position of which corresponds well to experimental maps. However, best fit to experimental data is achieved with 15 to 17 lipids inside the c-ring. In all of the simulations, the lipids from one leaflet (loop side of the c subunit) are ordered and static, whereas the lipids from the other leaflet are disordered and dynamic. Spontaneous permeation of water molecules toward Glu61 at the active site is also observed. The presented assembly approach is expected to be generalizable to other protein complexes with encapsulated lipid patches. peerReviewed
year | journal | country | edition | language |
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2019-07-10 | Frontiers in Molecular Biosciences |