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Dallel, R.

Publications and source records attributed to Dallel, R..

4 recordsLinked to original sources

Peripheral nerve injury reallocates primary afferent input through spinal parvalbumin microcircuits

Complex neural functions rely on finely tuned circuits in which the recruitment of local interneurons gates the flow of information, determining whether an input is relayed, amplified, or suppressed. Somatosensory information, such as touch or pain, is processed through such complex circuits in the dorsal horn of the spinal cord. There, local inhibitory interneurons play a key role in the proper segregation of touch and pain inputs. After nerve injury-evoked neuropathic pain, loss of inhibition impairs the function of these circuits, resulting in mechanical allodynia, where innocuous touch is perceived as painful. Disinhibition can be attributed to pruning of inhibitory synapses, reduced intrinsic excitability of inhibitory neurons, or weakened excitatory drive from primary afferents. Yet the complexity of the excitatory drive onto inhibitory neurons, and its potential modification after nerve injury, remains largely unexplored. Here we examined the nature of the synaptic drive from low-threshold A{beta} mechanoreceptors (A{beta}-LTMRs) onto parvalbumin-expressing interneurons (PVNs), and how this recruitment is affected by nerve injury. A{beta}-LTMR stimulation evoked excitatory responses in a subset of PVNs, which is expected given the exclusively excitatory nature of primary afferent inputs. However, an unexpected subset of PVNs displayed inhibitory responses, suggesting the recruitment of a feedforward inhibitory circuit. We reconciled these observations by showing that A{beta}-LTMRs engaged PVNs through both direct excitation and feedforward inhibition, which are differentially distributed between the inhibitory (iPVN) and excitatory (ePVN) subpopulation. Indeed, our results show that under naive conditions, A{beta} input preferentially recruited iPVNs, while ePVNs were predominantly suppressed by A{beta}-driven feedforward inhibition mediated by a previously unrecognized Complexin-1 (Cplx1)-expressing inhibitory interneuron. After peripheral nerve injury, this balance becomes functionally redistributed. A{beta}-to-iPVN transmission showed increased failure rates and impaired temporal precision, whereas A{beta} drive onto ePVNs shifted from inhibition toward excitation. Notably, these functional changes occurred despite preserved afferent connectivity, synapse density, and spontaneous synaptic events, indicating that the dynamic reallocation of circuit recruitment occurs in the absence of structural changes. To test the behavioral consequences of these two populations, we used chemogenetic approaches and found that iPVNs suppress, whereas ePVNs promote, mechanical hypersensitivity. Together, these findings show that nerve injury functionally reallocates primary afferent drive away from inhibitory and toward excitatory spinal PVNs, establishing functional reallocation of afferent input as a mechanism of spinal disinhibition and a key determinant of mechanical allodynia.

neuroscience↗

Sex specific axon initial segment plasticity underlies cortical hyperexcitability in trigeminal pain

Neuropathic pain results from peripheral lesion, causing maladaptive plasticity and central sensitization. Clinical and preclinical studies demonstrate that modifications of primary sensory cortex (S1) activity are essential for neuropathic pain persistence. Rodent studies report heightened S1 pyramidal cell excitability in neuropathic pain model, the origins of which remain debated. The axon initial segment, the action potential trigger zone, is a major determinant of neuronal excitability and is known to undergo structural changes after neural perturbation but its role in chronic pain is poorly understood and no studies have explored its role in cortical hyperexcitability in chronic pain models. Besides, despite a higher prevalence of chronic pain in women, most of preclinical studies have been conducted in males. By integrating electrophysiology, immunohistochemistry, and computational modeling, this study demonstrates that in a trigeminal neuropathic pain rat model, sex-specific structural plasticity of the axon initial segment enhances the excitability of layer 5 pyramidal cells in the somatosensory cortex, potentially driving network-level hyperactivity.

neuroscience↗

Sensory plasticity of dorsal horn silent neurons: a critical mechanism for neuropathic pain

The spinal cord dorsal horn (DH) integrates and modulates sensory processing but undergoes critical plasticity following nerve injury, leading to pain hypersensitivity. Mechanical allodynia, or touch-evoked pain, is a highly prevalent and debilitating symptom of neuropathic pain. It has been proposed that, after nerve injury, innocuous sensory neurons gain access to nociceptive-specific (NS) circuits in the DH due to altered spinal inhibitory controls, thereby converting touch into pain. It is however unclear how sensory processing is reorganized in these conditions across the different laminae of the DH to generate this symptom. In this study, we developed a novel ex vivo somatosensory preparation to selectively analyze excitatory neuronal activity across all DH laminae simultaneously, following physiological stimulations of the skin. Using two-photon calcium (Ca2+) imaging, we studied the DH activity under physiological conditions, after spinal disinhibition or nerve injury, and generated a computational model to reveal the sensory plasticity of individual DH neurons that leads to neuropathic pain. We demonstrate that spinal disinhibition, whether pharmacologically induced or resulting from nerve injury, converts most DH excitatory neurons into highly polymodal cells. We further show that such disinhibition unmasks an unprecedented number of previously silent neurons in both superficial and deep DH laminae, responding to a wide dynamic range (WDR) of sensory modalities. The computational model pinpoints that neuropathic pain does not result primarily from the transformation of excitatory NS neurons into WDR neurons, but rather from the activation of a previously dormant excitatory circuit. This newly active circuit spans both superficial and deep DH laminae and is predominantly composed of WDR excitatory neurons The identification of this extensive silent neuronal network provides critical insights into DH plasticity mechanisms underlying neuropathic pain, and should guide future therapeutic strategies. HighlightsSensory modalities of dorsal horn neurons are defined by spinal inhibition Neuropathic mechanical allodynia does not result from the transformation of nociceptive specific neurons into wide dynamic range neurons Neuropathic pain is mediated by the activation of a previously silent circuit

neuroscience↗

FLT3 signaling inhibition preserves opioid analgesia while abrogating tolerance and hyperalgesia

Opioid analgesia is counteracted on chronic use by tolerance and hyperalgesia inducing dose escalation and life-threatening overdoses. Mu opiate receptors (MOR) expressed in primary sensory neurons were recently found to control tolerance and hyperalgesia, but the underlying mechanisms remained elusive. Here we show that genetic inactivation of fms-like tyrosine kinase receptor 3 (FLT3) receptor in sensory neurons abrogates morphine tolerance and hyperalgesia by preventing MOR-induced hyperactivation of the cAMP signaling pathway and subsequent excitatory adaptive processes. Moreover, the specific FLT3 inhibitor BDT001 potentiates morphine analgesia in acute and chronic pain models, without aggravating morphine adverse effects, and reverses tolerance and hyperalgesia once installed. Thus, FLT3 appears as a key regulator of the MOR signaling pathway and its pharmacological blockade shows promise to enhance chronic opioid analgesic efficacy.

neuroscience↗