Search bioRxiv⌕ Search

Biology subjects

Kecskes, A.

Publications and source records attributed to Kecskes, A..

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↗

Transient receptor potential melastatin 4 (TRPM4) regulates hilar mossy cell loss in temporal lobe epilepsy

Mossy cells comprise a large fraction of excitatory neurons in the hippocampal dentate gyrus and their loss is one of the major hallmarks of temporal lobe epilepsy (TLE). The vulnerability of mossy cells in TLE is well known in animal models as well as in patients, however the mechanisms leading to cellular death is unclear. One possible explanation for their sensitivity is linked to their specific ion channel composition. TRPM4 is a Ca2+-activated non-selective cation channel regulating diverse physiological function of excitable cells. Here, we identified that TRPM4 is present and functionally active in hilar mossy cells. Furthermore, we showed that TRPM4 contributes to mossy cells death following status epilepticus and therefore modulates seizure susceptibility and epilepsy-related memory deficits in the chronic phase of TLE.

neuroscience↗