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The cross-correlation-based analysis to digest the conformational dynamics of the mitoBK channels in terms of their modulation by flavonoids

  • University of Silesia in Katowice
  • Warsaw University of Life Sciences

Wyniki badań: Wkład do czasopismaArtykułrecenzja

3 Cytowania z bazy Scopus

Abstrakt

The activity of mitochondrial large-conductance voltage- and Ca2 + -activated K+ channels (mitoBK) is regulated by a number of biochemical factors, including flavonoids. In particular, naringenin (Nar) and quercetin (Que) reached reasonable scientific attention due to their well-pronounced channel-activating effects. The open-reinforcing outcomes of Nar and Que on the mitoBK channel gating have been already reported. Nevertheless, the molecular picture of the corresponding channel–ligand interactions remains still to be revealed. In this work, we investigate the effects of the Nar and Que on the conformational dynamics of the mitoBK channel. In this aim, the cross-correlation-based analysis of the single-channel signals recorded by the patch-clamp method is performed. The obtained results in the form of phase space diagrams enable us to visually monitor the effects exerted by the considered flavonoids at the level of temporal characteristics of repetitive sequences of channel conformations. It turns out that the mitoBK channel activation by naringenin and quercetin does not lead to the change in the number of clusters within the phase space diagrams, which can be related to the constant number of available channel macroconformations regardless of the flavonoid administration. The localization and occupancy of the clusters of cross-correlated sequences suggest that mitoBK channel stimulation by flavonoids affects the relative stability of channel conformations and the kinetics of switching between them. For most clusters, greater net effects are observed in terms of quercetin administration in comparison with naringenin. It indicates stronger channel interaction with Que than Nar.

Język oryginałuangielski
Strony (od–do)569-582
Liczba stron14
CzasopismoEuropean Biophysics Journal
Tom52
Numer wydania6-7
Identyfikatory DOI
Status publikacjiOpublikowano - paź 2023

Obszary tematyczne ASJC Scopus

  • Biofizyka

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