Modulation of the molecular composition of large conductance, Ca 2+ activated K+ channels in vascular smooth muscle during hypertension

Gregory C. Amberg, Adrian D. Bonev, Charles F. Rossow, Mark T. Nelson, Luis F. Santana

    Research output: Contribution to journalArticlepeer-review

    Abstract

    Hypertension is a clinical syndrome characterized by increased vascular tone. However, the molecular mechanisms underlying vascular dysfunction during acquired hypertension remain unresolved. Localized intracellular Ca 2+ release events through ryanodine receptors (Ca2+ sparks) in the sarcoplasmic reticulum are tightly coupled to the activation of large-conductance, Ca2+-activated K+ (BK) channels to provide a hyperpolarizing influence that opposes vasoconstriction. In this study we tested the hypothesis that a reduction in Ca2+ spark-BK channel coupling underlies vascular smooth muscle dysfunction during acquired hypertension. We found that in hypertension, expression of the β1 subunit was decreased relative to the pore-forming α subunit of the BK channel. Consequently, the BK channels were functionally uncoupled from Ca2+ sparks. Consistent with this, the contribution of BK channels to vascular tone was reduced during hypertension. We conclude that downregulation of the β1 subunit of the BK channel contributes to vascular dysfunction in hypertension. These results support the novel concept that changes in BK channel subunit composition regulate arterial smooth muscle function.
    Original languageEnglish
    Pages (from-to)717-724
    Number of pages7
    JournalJournal of Clinical Investigation
    Volume112
    Issue number5
    DOIs
    Publication statusPublished - Sept 2003

    Keywords

    • Animals
    • metabolism: Calcium
    • Down-Regulation
    • Gene Expression Regulation
    • etiology: Hypertension
    • Male
    • physiology: Muscle, Smooth, Vascular
    • pharmacology: Peptides
    • chemistry: Potassium Channels, Calcium-Activated
    • Protein Subunits
    • analysis: RNA, Messenger
    • Rats
    • Rats, Sprague-Dawley
    • drug effects: Vasoconstriction

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