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Pocsai, K.

Publications and source records attributed to Pocsai, K..

2 recordsLinked to original sources

Inflammatory burning pain depends on a specific line of nociceptors

The development and persistence of burning pain and heat hyperalgesia following tissue injury and the subsequent inflammatory response, depend on the nuclear enzyme mitogen- and stress-activated kinase 1 (MSK1) expressed in a specific subset of transient receptor potential subfamily V member 1 (TRPV1)-expressing primary sensory neurons termed nociceptors, which are specialised for detecting harmful stimuli. Inflammation up-regulates and activates MSK1, and MSK1 governs TRPV1 expression in the MSK1 and TRPV1 co-expressing mouse and human nociceptors. Importantly, inhibition of inflammatory MSK1-mediated TRPV1 upregulation protects from heat hypersensitivity without affecting other relevant TRPV1 functions, such as the sensation of acute painful heat stimuli or the maintenance of the body core temperature. The newly discovered importance of the interaction between MSK1 and TRPV1 in a specific line of nociceptors provides mechanistic understanding of inflammatory pain and heat hyperalgesia pathogenesis.

neuroscience↗

The KCNQ4-mediated M-current regulates the circadian rhythm in mesopontine cholinergic neurons

The M-current is a voltage gated potassium current inhibited by muscarinic activation and affected by several other G-protein coupled receptors. Its channels are formed by KCNQ subunits, from which KCNQ4 is restricted to certain brainstem structures. We sought evidence for the function of the M-current in the pedunculopontine nucleus (PPN) and the contribution of KCNQ4 subunits to the M-current and aimed to find its functional significance in the PPN. We found that cholinergic inputs of the PPN can effectively inhibit M-current. This current is capable of synchronizing neighboring neurons and inhibition of the M-current decreases neuronal synchronization. We showed that only a subpopulation of cholinergic neurons has KCNQ4-dependent M-current. The KCNQ4 subunit expression potentially regulates the presence of other KCNQ subunits. Deletion of KCNQ4 leads to alterations in adaptation of activity to light-darkness cycles, thus representing the potential role of KCNQ4 in regulation of sleep-wakefulness cycles. The presence of this protein restricted to certain brainstem nuclei raises the possibility that it might be a potential target for selective therapeutic interventions affecting the reticular activating system.

neuroscience↗