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Published on: September 5, 2015
Biophysical basis for Kv1.3 regulation of membrane potential changes induced by P2X4-mediated calcium entry in
Hai M Nguyen1, Jacopo di Lucente2, Yi-Je Chen1
1Department of Pharmacology, University of California, Davis, California, USA.
Abstract:
Microglia-mediated inflammation exerts adverse effects in ischemic stroke and in neurodegenerative disorders such as Alzheimer's disease (AD). Expression of the voltage-gated potassium channel Kv1.3 is required for microglia activation. Both genetic deletion and pharmacological inhibition of Kv1.3 are effective in reducing microglia activation and the associated inflammatory responses, as well as in improving neurological outcomes in animal models of AD and ischemic stroke. Here we sought to elucidate the molecular mechanisms underlying the therapeutic effects of Kv1.3 inhibition, which remain incompletely understood. Using a combination of whole-cell voltage-clamp electrophysiology and quantitative PCR (qPCR), we first characterized a stimulus-dependent differential expression pattern for Kv1.3 and P2X4, a major ATP-gated cationic channel, both in vitro and in vivo. We then demonstrated by whole-cell current-clamp experiments that Kv1.3 channels contribute not only to setting the resting membrane potential but also play an important role in counteracting excessive membrane potential changes evoked by depolarizing current injections. Similarly, the presence of Kv1.3 channels renders microglia more resistant to depolarization produced by ATP-mediated P2X4 receptor activation. Inhibiting Kv1.3 channels with ShK-223 completely nullified the ability of Kv1.3 to normalize membrane potential changes, resulting in excessive depolarization and reduced calcium transients through P2X4 receptors. Our report thus links Kv1.3 function to P2X4 receptor-mediated signaling as one of the underlying mechanisms by which Kv1.3 blockade reduces microglia-mediated inflammation. While we could confirm previously reported differences between males and females in microglial P2X4 expression, microglial Kv1.3 expression exhibited no gender differences in vitro or in vivo. MAIN POINTS: The voltage-gated K+ channel Kv1.3 regulates microglial membrane potential. Inhibition of Kv1.3 depolarizes microglia and reduces calcium entry mediated by P2X4 receptors by dissipating the electrochemical driving force for calcium.
Insights
Inhibition of the potassium channel Kv1.3 reduces microglia activation and inflammation in brain disorders. Blocking Kv1.3 depolarizes microglia, decreasing calcium entry via P2X4 receptors, offering a therapeutic avenue.
Area of Science:
- Neuroscience
- Immunology
- Pharmacology
Background:
- Microglia-driven inflammation is implicated in ischemic stroke and Alzheimer's disease (AD).
- The voltage-gated potassium channel Kv1.3 is crucial for microglial activation and inflammatory responses.
- Kv1.3 inhibition shows promise in preclinical models of neurological disorders.
Purpose of the Study:
- To elucidate the molecular mechanisms behind the therapeutic effects of Kv1.3 inhibition.
- To investigate the interplay between Kv1.3, microglial membrane potential, and P2X4 receptor signaling.
Main Methods:
- Whole-cell voltage-clamp electrophysiology to characterize Kv1.3 and P2X4 channel activity.
- Quantitative PCR (qPCR) to assess gene expression patterns.
- Current-clamp experiments to evaluate the impact of Kv1.3 on microglial membrane potential.
Main Results:
- Kv1.3 regulates microglial resting membrane potential and counteracts depolarization.
- Kv1.3 inhibition with ShK-223 leads to excessive microglial depolarization.
- Blocking Kv1.3 reduces ATP-mediated calcium influx through P2X4 receptors.
Conclusions:
- Kv1.3 blockade reduces microglia-mediated inflammation by altering membrane potential and P2X4 receptor signaling.
- This study links Kv1.3 function to P2X4 receptor-mediated calcium signaling as a key therapeutic mechanism.
- No gender differences were observed in microglial Kv1.3 expression.
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