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1.
Commun Biol ; 7(1): 43, 2024 01 05.
Article in English | MEDLINE | ID: mdl-38182790

ABSTRACT

The ABC transporter MsbA plays a critical role in Gram-negative bacteria in the regulation of the outer membrane by translocating core-LPS across the inner membrane. Additionally, a broad substrate specificity for lipophilic drugs has been shown. The allosteric interplay between substrate binding in the transmembrane domains and ATP binding and turnover in the nucleotide-binding domains must be mediated via the NBD/TMD interface. Previous studies suggested the involvement of two intracellular loops called coupling helix 1 and 2 (CH1, CH2). Here, we demonstrate by solid-state NMR spectroscopy that substantial chemical shift changes within both CH1 and CH2 occur upon substrate binding, in the ATP hydrolysis transition state, and upon inhibitor binding. CH2 is domain-swapped within the MsbA structure, and it is noteworthy that substrate binding induces a larger response in CH2 compared to CH1. Our data demonstrate that CH1 and CH2 undergo structural changes as part of the TMD-NBD cross-talk.


Subject(s)
ATP-Binding Cassette Transporters , Magnetic Resonance Imaging , Cross Reactions , Magnetic Resonance Spectroscopy , Adenosine Triphosphate
2.
J Inorg Biochem ; 100(3): 351-61, 2006 Mar.
Article in English | MEDLINE | ID: mdl-16423403

ABSTRACT

A synthetic octapeptide, H-GlyGluGlyGluGlySerGlyGly-OH, and its phosphorylated Ser derivative were synthetized and their solution speciation and binding modes in their complexes with Al(III) were measured. One goal of the work was find a lead compound for the design of a selective peptide-based Al(III) chelator. pH-potentiometry was used to characterize the stoichiometry and the stability of the species formed in the interactions of the metal ion and the peptides, while multinuclear NMR was applied to characterize the binding sites of the metal ion in the complexes. CD spectroscopy revealed a difference in the conformational behaviour of the phosphorylated peptide as compared with its non-phosphorylated parent derivative. The Al(III) is presumed to enhance aggregation through the -PO3H(-)-Al(3+)-PO3(2-)-Al(3+)- intermolecular bindings between the peptide chains. The results of molecular dynamics calculations supported the experimentally obtained secondary structures and the binding position of Al(III).


Subject(s)
Aluminum/chemistry , Oligopeptides/chemistry , Aluminum/metabolism , Chelating Agents/chemistry , Chelating Agents/metabolism , Circular Dichroism , Magnetic Resonance Spectroscopy , Models, Molecular , Molecular Conformation , Oligopeptides/metabolism , Phosphorylation , Potentiometry , Protein Binding , Protons , Serine/chemistry
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