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Dinnendahl, R.

Publications and source records attributed to Dinnendahl, R..

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Senescence-associated Cdkn1a (p21) is upregulated in rodent dorsal root ganglion neurons across lesion-based neuropathic pain models

Senescence of peripheral sensory neurons has recently been associated with increased nociceptive signalling and pain chronification. Whether this association is found across pain conditions and independent study settings remains to be investigated. In this study, we made use of publicly available whole-genome transcriptome data sets on rodent dorsal root ganglion (DRG) tissue to investigate pain-related peripheral sensory neuron senescence across pain models and independent study settings. We focused on Cdkn1a (p21) and Cdkn2a (p16) expression levels as two widely-used senescence markers, and to explore their potential role in peripheral sensory neuron senescence. We found that Cdkn1a but not Cdkn2a RNA is significantly increased across different axotomy- and lesion-based neuropathic pain models, but less consistent in other pain models including inflammatory pain. We observed a sex-dependent effect of Cdkn1a upregulation following nerve injury, with significantly increased Cdkn1a RNA levels in DRG cells from female but not male rats. Lastly, Cdkn1a RNA levels are increased among all DRG neuronal subtypes, seem to reach their maximum three to seven days following nerve injury, and afterwards go back to baseline. These data suggest that Cdkn1a upregulation in DRG neurons is a widespread response to nerve injury that is found across independent study settings. SummaryAnalysis of publicly available whole-genome transcriptome data sets shows that senescence-associated Cdkn1a but not Cdkn2a expression is upregulated in DRG neurons across neuropathic pain models.

neuroscience↗

CaV1.2-dependent excitation-transcription coupling modulates nociception

Peripheral nociceptive sensory neurons integrate various noxious inputs, resulting in local depolarization that triggers the firing of action potentials and thus the sensation of pain. We recently reported that nociceptor depolarization itself initiates signaling by the calcium channel Cav1.2 causing acute hyperalgesia in vivo. However, whether this mechanism initiates excitation-transcription (E-T) coupling and thereby leads to long-lasting modulation of nociceptor activity remains poorly understood. Using high content imaging of dorsal root ganglion (DRG) neurons, we here found that depolarization of nociceptors induces phosphorylation of the transcription factor (TF) cAMP-response element binding protein (CREB), which was affected by inhibition of protein kinase A (PKA) and calcineurin, but not Ca2+/calmodulin-dependent protein kinases. Genetic deletion or pharmacological inhibition of Cav1.2 confirmed its role in calcium-dependent kinase signaling and CREB phosphorylation after depolarization. In line with this, pharmacological modulation of Cav1 channels affected the expression of a subset of depolarization-regulated immediate early genes known to orchestrate a broader transcriptional response. Indeed, RNA-Seq analysis of DRG neurons from mice with a tissue-specific deletion of Cav1.2 in nociceptive sensory neurons (SNS-Cacna1c-/- mice) revealed downregulation of multiple calcium and potassium channel subunits as well as proteins involved in synaptic vesicle release and cell adhesion. Furthermore, repetitive firing of action potentials and release of the neuropeptide CGRP was impaired in Cav1.2-deficient sensory neurons. SNS-Cacna1c-/- mice showed increased sensitivity to noxious heat and exacerbated inflammatory but not neuropathic pain. In conclusion, our data suggest a Cav1.2-dependent E-T coupling mechanism in nociceptors that counteracts nociception in vivo. HighlightsO_LIDepolarization induces Cav1.2- and PKA-dependent phosphorylation of the transcriptional regulator CREB in nociceptors C_LIO_LICav1.2 regulates the expression of depolarization-induced immediate early genes and induces reorganization of the signaling network in nociceptors C_LIO_LICav1.2-deficient nociceptors downregulate multiple ion channel subunits as well as proteins involved in synaptic vesicle release and cell adhesion C_LIO_LICav1.2-deficient nociceptors show impaired depolarization-induced PKA-II signaling, CREB phosphorylation, repetitive firing of action potentials, and release of the neuropeptide CGRP C_LIO_LINociceptor-specific Cav1.2-deficiency in mice increases the sensitivity to noxious heat and exacerbates inflammatory pain C_LI In briefIsensee et al. report that depolarization of nociceptors induces calcium influx through Cav1.2 channels, thereby initiating a signaling cascade that links neuronal excitation to transcriptional regulation of immediate early genes (E-T coupling). Nociceptor-specific knockout of Cav1.2 led to transcriptional changes in nociceptor-specific genes and was associated with impaired depolarization-induced signaling, action potential firing, and neuropeptide release. As the Cav1.2-deficient mice show increased noxious heat sensitivity and exacerbated inflammatory pain, these findings suggest that Cav1.2-dependent E-T coupling mechanism counteracts nociception in vivo.

neuroscience↗