Literature DB >> 26581870

Cat's medullary reticulospinal and subnucleus reticularis dorsalis noxious neurons form a coupled neural circuit through collaterals of descending axons.

Roberto Leiras1, Francisco Martín-Cora1, Patricia Velo1, Tania Liste1, Antonio Canedo2.   

Abstract

Animals and human beings sense and react to real/potential dangerous stimuli. However, the supraspinal mechanisms relating noxious sensing and nocifensive behavior are mostly unknown. The collateralization and spatial organization of interrelated neurons are important determinants of coordinated network function. Here we electrophysiologically studied medial medullary reticulospinal neurons (mMRF-RSNs) antidromically identified from the cervical cord of anesthetized cats and found that 1) more than 40% (79/183) of the sampled mMRF-RSNs emitted bifurcating axons running within the dorsolateral (DLF) and ventromedial (VMF) ipsilateral fascicles; 2) more than 50% (78/151) of the tested mMRF-RSNs with axons running in the VMF collateralized to the subnucleus reticularis dorsalis (SRD) that also sent ipsilateral descending fibers bifurcating within the DLF and the VMF. This percentage of mMRF collateralization to the SRD increased to more than 81% (53/65) when considering the subpopulation of mMRF-RSNs responsive to noxiously heating the skin; 3) reciprocal monosynaptic excitatory relationships were electrophysiologically demonstrated between noxious sensitive mMRF-RSNs and SRD cells; and 4) injection of the anterograde tracer Phaseolus vulgaris leucoagglutinin evidenced mMRF to SRD and SRD to mMRF projections contacting the soma and proximal dendrites. The data demonstrated a SRD-mMRF network interconnected mainly through collaterals of descending axons running within the VMF, with the subset of noxious sensitive cells forming a reverberating circuit probably amplifying mutual outputs simultaneously regulating motor activity and spinal noxious afferent input. The results provide evidence that noxious stimulation positively engages a reticular SRD-mMRF-SRD network involved in pain-sensory-to-motor transformation and modulation.
Copyright © 2016 the American Physiological Society.

Entities:  

Keywords:  dorsal and ventral bifurcating projections; medial medullary reticular formation; subnucleus reticularis dorsalis; synaptic interrelationships between noxious sensitive cells

Mesh:

Year:  2015        PMID: 26581870      PMCID: PMC4760499          DOI: 10.1152/jn.00603.2015

Source DB:  PubMed          Journal:  J Neurophysiol        ISSN: 0022-3077            Impact factor:   2.714


  110 in total

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7.  Neurotransmitter phenotypes of descending systems in the rat lumbar spinal cord.

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8.  Cells in the monkey ponto-medullary reticular formation modulate their activity with slow finger movements.

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9.  Convergence of pyramidal and medial brain stem descending pathways onto macaque cervical spinal interneurons.

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Review 10.  The primate reticulospinal tract, hand function and functional recovery.

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Journal:  J Physiol       Date:  2011-08-30       Impact factor: 5.182

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  2 in total

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  2 in total

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