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Helical reorganization in the context of membrane protein folding: Insights from simulations with bacteriorhodopsin (BR) fragments.
Chatterjee, Hindol; Mahapatra, Anshuman J; Zacharias, Martin; Sengupta, Neelanjana.
Affiliation
  • Chatterjee H; Department of Biological Sciences, Indian Institute of Science Education and Research Kolkata, Mohanpur, West Bengal 741246, India.
  • Mahapatra AJ; Department of Biological Sciences, Indian Institute of Science Education and Research Kolkata, Mohanpur, West Bengal 741246, India.
  • Zacharias M; Center for Functional Protein Assemblies, TUM School of Natural Sciences Technical University Munich, Ernst-Otto-Fischer-Straße 8, 85748 Garching, Germany. Electronic address: martin.zacharias@mytum.de.
  • Sengupta N; Department of Biological Sciences, Indian Institute of Science Education and Research Kolkata, Mohanpur, West Bengal 741246, India. Electronic address: n.sengupta@iiserkol.ac.in.
Biochim Biophys Acta Biomembr ; 1866(5): 184333, 2024 Jun.
Article de En | MEDLINE | ID: mdl-38740122
ABSTRACT
Membrane protein folding is distinct from folding of soluble proteins. Conformational acquisition in major membrane protein subclasses can be delineated into insertion and folding processes. An exception to the "two stage" folding, later developed to "three stage" folding, is observed within the last two helices in bacteriorhodopsin (BR), a system that serves as a model membrane protein. We employ a reductionist approach to understand interplay of molecular factors underlying the apparent defiance. Leveraging available solution NMR structures, we construct, sample in silico, and analyze partially (PIn) and fully inserted (FIn) BR membrane states. The membrane lateral C-terminal helix (CH) in PIn is markedly prone to transient structural distortions over microsecond timescales; a disorder prone region (DPR) is thereby identified. While clear transmembrane propensities are not acquired, the distortions induce alterations in local membrane curvature and area per lipid. Importantly, energetic decompositions reveal that overall, the N-terminal helix (NH) is thermodynamically more stable in the PIn. Higher overall stability of the FIn arises from favorable interactions between the NH and the CH. Our results establish lack of spontaneous transition of the PIn to the FIn, and attributes their partitioning to barriers that exceed those accessible with thermal fluctuations. This work paves the way for further detailed studies aimed at determining the thermo-kinetic roles of the initial five helices, or complementary external factors, in complete helical folding and insertion in BR. We comment that complementing such efforts with the growing field of machine learning assisted energy landscape searches may offer unprecedented insights.
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Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Sujet principal: Bactériorhodopsines / Pliage des protéines Langue: En Journal: Biochim Biophys Acta Biomembr Année: 2024 Type de document: Article Pays d'affiliation: Inde

Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Sujet principal: Bactériorhodopsines / Pliage des protéines Langue: En Journal: Biochim Biophys Acta Biomembr Année: 2024 Type de document: Article Pays d'affiliation: Inde
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