Age-dependent Sensitization of Cutaneous Nociceptors During Developmental Inflammation
Overview
Authors
Affiliations
Background: It is well-documented that neonates can experience pain after injury. However, the contribution of individual populations of sensory neurons to neonatal pain is not clearly understood. Here we characterized the functional response properties and neurochemical phenotypes of single primary afferents after injection of carrageenan into the hairy hindpaw skin using a neonatal ex vivo recording preparation.
Results: During normal development, we found that individual afferent response properties are generally unaltered. However, at the time period in which some sensory neurons switch their neurotrophic factor responsiveness, we observe a functional switch in slowly conducting, broad spiking fibers ("C"-fiber nociceptors) from mechanically sensitive and thermally insensitive (CM) to polymodal (CPM). Cutaneous inflammation induced prior to this switch (postnatal day 7) specifically altered mechanical and heat responsiveness, and heat thresholds in fast conducting, broad spiking ("A"-fiber) afferents. Furthermore, hairy skin inflammation at P7 transiently delayed the functional shift from CM to CPM. Conversely, induction of cutaneous inflammation after the functional switch (at P14) caused an increase in mechanical and thermal responsiveness exclusively in the CM and CPM neurons. Immunocytochemical analysis showed that inflammation at either time point induced TRPV1 expression in normally non-TRPV1 expressing CPMs. Realtime PCR and western blotting analyses revealed that specific receptors/channels involved in sensory transduction were differentially altered in the DRGs depending on whether inflammation was induced prior to or after the functional changes in afferent prevalence.
Conclusion: These data suggest that the mechanisms of neonatal pain development may be generated by different afferent subtypes and receptors/channels in an age-related manner.
Fadaka A, Dourson A, Hofmann M, Gupta P, Raut N, Jankowski M Brain Behav Immun. 2024; 125:198-211.
PMID: 39716683 PMC: 11903163. DOI: 10.1016/j.bbi.2024.12.148.
Editorial: Insight in pediatric pain - 2023.
Herbert A, Jankowski M Front Pain Res (Lausanne). 2024; 5:1437873.
PMID: 38974778 PMC: 11224511. DOI: 10.3389/fpain.2024.1437873.
Macrophage memories of early-life injury drive neonatal nociceptive priming.
Dourson A, Fadaka A, Warshak A, Paranjpe A, Weinhaus B, Queme L Cell Rep. 2024; 43(5):114129.
PMID: 38640063 PMC: 11197107. DOI: 10.1016/j.celrep.2024.114129.
Schwann cells modulate nociception in neurofibromatosis 1.
Raut N, Maile L, Oswalt L, Mitxelena I, Adlakha A, Sprague K JCI Insight. 2024; 9(2).
PMID: 38258905 PMC: 10906222. DOI: 10.1172/jci.insight.171275.
Developmental impact of peripheral injury on neuroimmune signaling.
Dourson A, Jankowski M Brain Behav Immun. 2023; 113:156-165.
PMID: 37442302 PMC: 10530254. DOI: 10.1016/j.bbi.2023.07.002.