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Activation of cyclin-dependent kinase 5 broadens action potentials in human sensory neurons
Manindra Nath Tiwari1, Bradford E Hall2, Anh-Tuan Ton3
1Department of Neural and Pain Sciences, School of Dentistry, Program in Neuroscience, Center to Advance Chronic Pain Research, The University of Maryland, Baltimore, MD, United States.
Abstract:
Chronic pain is one of the most devastating and unpleasant conditions, associated with many pathological states. Tissue or nerve injuries induce extensive neurobiological plasticity in nociceptive neurons, which leads to chronic pain. Recent studies suggest that cyclin-dependent kinase 5 (CDK5) in primary afferents is a key neuronal kinase that modulates nociception through phosphorylation under pathological conditions. However, the impact of the CDK5 on nociceptor activity especially in human sensory neurons is not known. To determine the CDK5-mediated regulation of human dorsal root ganglia (hDRG) neuronal properties, we have performed the whole-cell patch clamp recordings in neurons dissociated from hDRG. CDK5 activation induced by overexpression of p35 depolarized the resting membrane potential (RMP) and reduced the rheobase currents as compared to the control neurons. CDK5 activation changed the shape of the action potential (AP) by increasing AP -rise time, -fall time, and -half width. The application of a prostaglandin E2 (PG) and bradykinin (BK) cocktail in control hDRG neurons induced the depolarization of RMP and the reduction of rheobase currents along with increased AP rise time. However, PG and BK applications failed to induce any significant changes in the p35-overexpressing group. We conclude that, in dissociated hDRGs neurons, CDK5 activation through the overexpression of p35 broadens the AP and that CDK5 may play important roles in the modulation of AP properties in human primary afferents under the condition in which CDK5 is upregulated, contributing to chronic pain.
Insights
Cyclin-dependent kinase 5 (CDK5) activation in human sensory neurons alters action potential properties. This suggests CDK5 plays a role in chronic pain by modulating nociceptor activity.
Area of Science:
- Neuroscience
- Molecular Biology
Background:
- Chronic pain arises from neurobiological plasticity in nociceptive neurons.
- Cyclin-dependent kinase 5 (CDK5) is implicated in modulating nociception via phosphorylation.
Purpose of the Study:
- To investigate the role of CDK5 in regulating human dorsal root ganglia (hDRG) neuronal properties.
- To understand CDK5's impact on nociceptor activity in human sensory neurons.
Main Methods:
- Whole-cell patch clamp recordings were performed on dissociated hDRG neurons.
- CDK5 activation was induced by overexpressing its activator, p35.
- Neuronal properties were assessed with and without inflammatory mediators (prostaglandin E2 and bradykinin).
Main Results:
- CDK5 activation depolarized resting membrane potential and reduced rheobase currents.
- CDK5 activation broadened action potential shape (increased rise/fall times, half-width).
- Prostaglandin E2 and bradykinin effects were blunted in p35-overexpressing neurons.
Conclusions:
- CDK5 activation, via p35, broadens action potentials in hDRG neurons.
- CDK5 likely contributes to chronic pain by altering human primary afferent properties when upregulated.
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