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1.
J Neurosci ; 37(9): 2336-2348, 2017 03 01.
Artículo en Inglés | MEDLINE | ID: mdl-28130358

RESUMEN

The superficial dorsal horn is the synaptic termination site for many peripheral sensory fibers of the somatosensory system. A wide range of sensory modalities are represented by these fibers, including pain, itch, and temperature. Because the involvement of local inhibition in the dorsal horn, specifically that mediated by the inhibitory amino acids GABA and glycine, is so important in signal processing, we investigated regional inhibitory control of excitatory interneurons under control conditions and peripheral inflammation-induced mechanical allodynia. We found that excitatory interneurons and projection neurons in lamina I and IIo are dominantly inhibited by GABA while those in lamina IIi and III are dominantly inhibited by glycine. This was true of identified neuronal subpopulations: neurokinin 1 receptor-expressing (NK1R+) neurons in lamina I were GABA-dominant while protein kinase C gamma-expressing (PKCγ+) neurons at the lamina IIi-III border were glycine-dominant. We found this pattern of synaptic inhibition to be consistent with the distribution of GABAergic and glycinergic neurons identified by immunohistochemistry. Following complete Freund's adjuvant injection into mouse hindpaw, the frequency of spontaneous excitatory synaptic activity increased and inhibitory synaptic activity decreased. Surprisingly, these changes were accompanied by an increase in GABA dominance in lamina IIi. Because this shift in inhibitory dominance was not accompanied by a change in the number of inhibitory synapses or the overall postsynaptic expression of glycine receptor α1 subunits, we propose that the dominance shift is due to glycine receptor modulation and the depressed function of glycine receptors is partially compensated by GABAergic inhibition.SIGNIFICANCE STATEMENT Pain associated with inflammation is a sensation we would all like to minimize. Persistent inflammation leads to cellular and molecular changes in the spinal cord dorsal horn, including diminished inhibition, which may be responsible for enhance excitability. Investigating inhibition in the dorsal horn following peripheral inflammation is essential for development of improved ways to control the associated pain. In this study, we have elucidated regional differences in inhibition of excitatory interneurons in mouse dorsal horn. We have also discovered that the dominating inhibitory neurotransmission within specific regions of dorsal horn switches following peripheral inflammation and the accompanying hypersensitivity to thermal and mechanical stimuli. Our novel findings contribute to a more complete understanding of inflammatory pain.


Asunto(s)
Inflamación/patología , Inhibición Neural/fisiología , Células del Asta Posterior/fisiología , Receptores de GABA/metabolismo , Receptores de Glicina/metabolismo , Médula Espinal/citología , Animales , Animales Recién Nacidos , Modelos Animales de Enfermedad , Adyuvante de Freund/toxicidad , Glicina/farmacología , Hiperalgesia/fisiopatología , Técnicas In Vitro , Inflamación/inducido químicamente , Interneuronas/efectos de los fármacos , Interneuronas/fisiología , Masculino , Ratones , Inhibición Neural/efectos de los fármacos , Dimensión del Dolor/efectos de los fármacos , Células del Asta Posterior/efectos de los fármacos , Proteína Quinasa C/metabolismo , Receptores de Neuroquinina-1/metabolismo , Potenciales Sinápticos/efectos de los fármacos , Ácido gamma-Aminobutírico/farmacología
2.
J Clin Invest ; 121(4): 1608-23, 2011 Apr.
Artículo en Inglés | MEDLINE | ID: mdl-21383497

RESUMEN

α-Amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid-type (AMPA-type) glutamate receptors (AMPARs) play an important role in plasticity at central synapses. Although there is anatomical evidence for AMPAR expression in the peripheral nervous system, the functional role of such receptors in vivo is not clear. To address this issue, we generated mice specifically lacking either of the key AMPAR subunits, GluA1 or GluA2, in peripheral, pain-sensing neurons (nociceptors), while preserving expression of these subunits in the central nervous system. Nociceptor-specific deletion of GluA1 led to disruption of calcium permeability and reduced capsaicin-evoked activation of nociceptors. Deletion of GluA1, but not GluA2, led to reduced mechanical hypersensitivity and sensitization in models of chronic inflammatory pain and arthritis. Further analysis revealed that GluA1-containing AMPARs regulated the responses of nociceptors to painful stimuli in inflamed tissues and controlled the excitatory drive from the periphery into the spinal cord. Consequently, peripherally applied AMPAR antagonists alleviated inflammatory pain by specifically blocking calcium-permeable AMPARs, without affecting physiological pain or eliciting central side effects. These findings indicate an important pathophysiological role for calcium-permeable AMPARs in nociceptors and may have therapeutic implications for the treatment chronic inflammatory pain states.


Asunto(s)
Inflamación/fisiopatología , Nociceptores/fisiología , Dolor/fisiopatología , Receptores AMPA/fisiología , Vías Aferentes/crecimiento & desarrollo , Vías Aferentes/fisiopatología , Animales , Artritis Experimental/fisiopatología , Benzodiazepinas/farmacología , Calcio/metabolismo , Ganglios Espinales/crecimiento & desarrollo , Ganglios Espinales/fisiopatología , Inflamación/genética , Ratones , Ratones Endogámicos C57BL , Ratones Noqueados , Dolor/tratamiento farmacológico , Permeabilidad , Receptores AMPA/antagonistas & inhibidores , Receptores AMPA/deficiencia , Receptores AMPA/genética , Transmisión Sináptica
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