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1.
Brain Res ; 1285: 1-13, 2009 Aug 18.
Article de Anglais | MEDLINE | ID: mdl-19524556

RÉSUMÉ

Patients who have suffered nerve injury show profound inter-individual variability in neuropathic pain even when the precipitating injury is nearly identical. Variability in pain behavior is also observed across inbred strains of mice where it has been attributed to genetic polymorphisms. Identification of cellular correlates of pain variability across strains can advance the understanding of underlying pain mechanisms. Voltage-gated sodium channels (VGSCs) play a major role in the generation and propagation of action potentials in the primary afferents and are therefore of obvious importance for pain phenotype. Here, we examined the mRNA expression levels of the VGSC alpha-subunits Na(v)1.3, Na(v)1.5, Na(v)1.6, and Na(v)1.7, as well as the auxiliary VGSC-related molecule, Contactin. Dorsal root ganglia (DRG) and spinal cords from 5 inbred mouse strains with contrasting pain phenotype (AKR/J, C3H/HeJ, C57BL/6J, C58/J and CBA/J) were analyzed 7 days following sciatic and saphenous nerve transection. In the DRG, Na(v)1.6, Na(v)1.7 and Contactin were abundantly expressed in control animals. Following nerve injury, the residual mRNA levels of Na(v)1.6 (downregulated in two of the strains) correlated tightly to the extent of autotomy behavior. A suggestive correlation was also seen for the post-injury mRNA levels of Contactin (downregulated in all strains) with autotomy. Thus, our results suggest a contribution by DRG Na(v)1.6, and possibly Contactin to neuropathic pain in the neuroma model in mice.


Sujet(s)
Ganglions sensitifs des nerfs spinaux/métabolisme , Neuropathies périphériques/métabolisme , Automutilation/métabolisme , Cellules réceptrices sensorielles/métabolisme , Canaux sodiques/métabolisme , Moelle spinale/métabolisme , Animaux , Molécules d'adhérence cellulaire neuronale/génétique , Molécules d'adhérence cellulaire neuronale/métabolisme , Contactines , Modèles animaux de maladie humaine , Ganglions sensitifs des nerfs spinaux/physiopathologie , Régulation de l'expression des gènes/génétique , Ouverture et fermeture des portes des canaux ioniques/génétique , Souris , Souris de lignée C3H , Souris de lignée C57BL , Souris de lignée CBA , Canal sodique voltage-dépendant NAV1.6 , Protéines de tissu nerveux/génétique , Protéines de tissu nerveux/métabolisme , Névralgie/génétique , Névralgie/métabolisme , Névralgie/physiopathologie , Nocicepteurs/métabolisme , Neuropathies périphériques/génétique , Neuropathies périphériques/physiopathologie , Phénotype , Cellules de la corne dorsale/métabolisme , ARN messager/métabolisme , Neuropathie du nerf sciatique/génétique , Neuropathie du nerf sciatique/métabolisme , Neuropathie du nerf sciatique/physiopathologie , Automutilation/génétique , Automutilation/physiopathologie , Canaux sodiques/génétique , Spécificité d'espèce , Moelle spinale/physiopathologie
2.
Brain Res ; 1269: 11-22, 2009 May 07.
Article de Anglais | MEDLINE | ID: mdl-19269275

RÉSUMÉ

The developmental pattern of sodium channel expression in neurons of primary sensory ganglia is likely reflected in the electrical behavior of these cells. Little information is available on how voltage-gated sodium channels in sensory neurons are expressed during development in the trigeminal-innervated craniofacial region, where sensitivity is fundamental during early stages of life. Using in situ hybridization, we here demonstrate a differential both regional and transcript-dependent distribution of sodium channel alpha- and beta-subunits between Embryonic day (E)15 and Postnatal day (P)5/6 in the rat trigeminal ganglion. Na(v)1.3 mRNA was strongly expressed at E15, but declined to low levels at P5/P6. Na(v)1.8 was expressed at E15, increased to reach maximum levels at P1 and then decreased. Na(v)1.9 mRNA was detected at E19, reached a maximum at P1, and was then reduced. beta1 mRNA showed a steady rise in expression from E17, while beta2 mRNA was widely expressed from P1. beta 3 mRNA was detected at E15, reached a maximum at E19 followed by a decrease in expression. In the ophthalmic TG portion, there was a higher expression level of Na(v)1.8 and Na(v)1.9 between E19 and P5/P6 as compared to the maxillary/mandibular part, indicating an unexpected positional difference in channel distribution. mRNA levels of p11, which facilitates the expression of Na(v)1.8, were high at all stages. These findings show that trigeminal ganglion sodium channel transcripts mature in steps that are specific for each transcript. They also raise the possibility that different facial regions could differ in the ability to transmit sensory signals during early life.


Sujet(s)
Régulation de l'expression des gènes au cours du développement , Protéines de tissu nerveux/génétique , Neuropeptides/génétique , Canaux sodiques/génétique , Ganglion trigéminal/embryologie , Ganglion trigéminal/physiologie , Animaux , Annexine A2/génétique , Femelle , Hybridation in situ , Canal sodique voltage-dépendant NAV1.3 , Canal sodique voltage-dépendant NAV1.8 , Canal sodique voltage-dépendant NAV1.9 , Névralgie/génétique , Névralgie/physiopathologie , Grossesse , Sous-unités de protéines/génétique , ARN messager/métabolisme , Rats , Rat Sprague-Dawley , Cellules réceptrices sensorielles/physiologie , Ganglion trigéminal/cytologie
3.
Mol Pain ; 5: 7, 2009 Feb 19.
Article de Anglais | MEDLINE | ID: mdl-19228393

RÉSUMÉ

BACKGROUND: Nerve injury-triggered hyperexcitability in primary sensory neurons is considered a major source of chronic neuropathic pain. The hyperexcitability, in turn, is thought to be related to transcriptional switching in afferent cell somata. Analysis using expression microarrays has revealed that many genes are regulated in the dorsal root ganglion (DRG) following axotomy. But which contribute to pain phenotype versus other nerve injury-evoked processes such as nerve regeneration? Using the L5 spinal nerve ligation model of neuropathy we examined differential changes in gene expression in the L5 (and L4) DRGs in five mouse strains with contrasting susceptibility to neuropathic pain. We sought genes for which the degree of regulation correlates with strain-specific pain phenotype. RESULTS: In an initial experiment six candidate genes previously identified as important in pain physiology were selected for in situ hybridization to DRG sections. Among these, regulation of the Na+ channel alpha subunit Scn11a correlated with levels of spontaneous pain behavior, and regulation of the cool receptor Trpm8 correlated with heat hypersensibility. In a larger scale experiment, mRNA extracted from individual mouse DRGs was processed on Affymetrix whole-genome expression microarrays. Overall, 2552 +/- 477 transcripts were significantly regulated in the axotomized L5DRG 3 days postoperatively. However, in only a small fraction of these was the degree of regulation correlated with pain behavior across strains. Very few genes in the "uninjured" L4DRG showed altered expression (24 +/- 28). CONCLUSION: Correlational analysis based on in situ hybridization provided evidence that differential regulation of Scn11a and Trpm8 contributes to across-strain variability in pain phenotype. This does not, of course, constitute evidence that the others are unrelated to pain. Correlational analysis based on microarray data yielded a larger "look-up table" of genes whose regulation likely contributes to pain variability. While this list is enriched in genes of potential importance for pain physiology, and is relatively free of the bias inherent in the candidate gene approach, additional steps are required to clarify which transcripts on the list are in fact of functional importance.


Sujet(s)
Névralgie/génétique , Neuropeptides/génétique , Canaux sodiques/génétique , Canaux cationiques TRPM/génétique , Animaux , Ganglions sensitifs des nerfs spinaux/physiopathologie , Analyse de profil d'expression de gènes , Régulation de l'expression des gènes , Souris , Canal sodique voltage-dépendant NAV1.9 , ARN messager/analyse , Spécificité d'espèce
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