In vivo calcium imaging shows that dorsal root ganglion stimulation predominantly activates large-sized sensory neurons in mice
Goodwin, G. L.; Franken, G.
Show abstract
Dorsal root ganglion (DRG) stimulation is an effective treatment for patients with refractory neuropathic pain. However, the exact mechanisms through which DRG stimulation exerts its analgesic effects, especially in relation to the recruitment of different soma types within the DRG, remains largely unknown. Here, we examined the effect of DRG stimulation (20Hz) on sensory neuron soma recruitment and neuronal responses induced by mechanical hind paw stimulation using in vivo calcium imaging in mice. GCaMP6s was delivered to sensory neurons via an adeno-associated viral vector of serotype 9 (AAV9) injected subcutaneously at P2-5. In adult mice, a stimulation electrode was placed over the L4 DRG, and in vivo calcium imaging was performed. The proportion of responsive neurons and response magnitude was assessed during 30-60 seconds of DRG stimulation at different stimulation amplitudes (33%, 50%, 66%, 80%, 100% of motor threshold (MT)) for small, medium and large-sized subpopulations. In a second experiment, the effect of 30 minutes of DRG stimulation was assessed at 66% MT on neuronal responses induced by mechanical hind paw stimulation during and following DRG stimulation. We show that 20Hz DRG stimulation at clinically relevant parameters mainly activates large-size sensory neurons in mice, both in terms of the proportion of neurons responding as well as response magnitude. There was a small decrease in the proportion of neurons responding to mechanical stimulation during DRG stimulation, which did not recover 30 mins after stimulation had been switched off. By contrast, DRG stimulation did not alter the response magnitude of responding neurons.
Matching journals
The top 8 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Examination of the contribution of Nav1.7 to axonal propagation in nociceptors 96%
- Studies on CRMP2 SUMOylation-deficient transgenic mice identify sex-specific NaV1.7 regulation in the pathogenesis of chronic neuropathic pain 95%
- The role of amygdala calcitonin gene-related peptide receptors on the development of persistent bladder pain in mice. 94%
Similar papers in this journal
Similar papers in this journal
- Calretinin-expressing islet cells: a source of pre- and post-synaptic inhibition of non-peptidergic nociceptor input to the mouse spinal cord 94%
- The Secretomes of Painful Versus Nonpainful Human Schwannomatosis Tumor Cells Differentially Influence Sensory Neuron Gene Expression and Sensitivity 93%
- Paclitaxel-induced peripheral neuropathy is caused by epidermal ROS and mitochondrial damage through conserved MMP-13 activation 93%
Similar papers in this journal
- Novel expression of major histocompatibility complex II in dorsal root ganglion neurons attenuates paclitaxel-induced cold hypersensitivity in male and female mice 93%
- Experimental nerve block study on painful withdrawal reflex responses in humans 93%
- An objective approach to assess colonic pain in mice using colonometry 93%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.