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Biomedical subjects

A I Basbaum

Publications and source records attributed to A I Basbaum.

192 records · Page 11Linked to original sources

Nucleus raphe magnus inhibition of spinal cord dorsal horn neurons.

In decerebrate cats, electrical stimulation of nucleus raphe magnus (NRM) of the medulla produced marked inhibition of spinal neurons in lumbosacral dorsal horn. Only neurons with high threshold inputs were inhibited. These cells were located in lamina I and in or near laminae V and VI. The duration of inhibition produced was related to the stimulus train length. An ipsilateral lesion of the dorsolateral funiculus at L1 markedly reduced the inhibition of neurons caudal to the lesion. Although NRM stimulation was the most effective, inhibition from more lateral sites could be obtained at higher stimulus intensities. NRM induced inhibition is probably mediated by a direct projection via the dorsolateral funiculus to spinal dorsal horn laminae I, II, V and VI. The results are discussed in relation to proposed mechanisms underlying the analgesia produced by NRM stimulation.

Animals↗

Chronic changes in the response of cells in adult cat dorsal horn following partial deafferentation: the appearance of responding cells in a previously non-responsive region.

One side of the lumbar enlargement in adult cats was partially deafferented by cutting all dorsal roots caudal to L3 with the exception of the S1 dorsal root. At various times after the roots had been sectioned, the response of dorsal horn cells to natural and electrical stimuli applied to the leg and flank were recorded through extracellular glass microelectrodes. When animals were examined up to 24 h after this partial deafferentation, no cells were located in a region between segments L4 and 5 which responded monosynaptically to cutaneous stimulation on the leg. By one week, cells began to appear in the L4-5 region which responded monosynpatically to peripheral stimuli. The numbers of these newly connected cells seemed to have stabilised by 1 month after the partial deafferentation, but the properties of these cells were abnormal in 6 ways. The location of the receptive field of the cells was characteristic either of the S1 dermatome or of segments rostral to L4. Some cells had double receptive fields, one on the leg and one of the abdomen. The size of the receptive field varied more than is observed in normal intact dorsal horn. In particular, certain cells had unusually small recpetive fields with abrupt edges and no associated inhibitory fields. The cells receive less convergence from high treshold afferents than normally observed. Associated inhibitory fields were rarely encountered. Habituation was observed and in some cells with doulbe receptive fields the response o onet area habituated while the response to the other area was unaffected. Slow wave recording on the surface of the cord showed that the effect of peripheral stimulation of the S1 dermatome spread far more extensively on the chronically deafferented side of the cord than it did on the intact side or in an intact cord. It was concluded that following partial deafferentation, the remaining afferents can establish connection with deafferented cells but the data presented did not allow a conclusion as to whether the new connections were produced by sprouting or by the unmasking of existing connections.

Afferent Pathways↗

Opiate and stimulus-produced analgesia: functional anatomy of a medullospinal pathway.

Neurons in ventromedial medulla, including the nucleus raphe magnus, project to trigeminal nucleus caudalis and, via the dorsolateral funiculus, to spinal dorsal horn. The terminals of this descending system are in loci containing cells responsive to noxious stimuli. Electrical stimulation of nucleus raphe magnus selectively inhibits spinal dorsal horn neurons that respond to noxious stimuli. These neurons are located near the anatomically demonstrated terminals of this descending system. Dorsolateral funiculus lesions block this descending inhibition of spinal neurons as well as the analgesic action of morphine. This evidence supports the hypothesis that this neuron population mediates the analgesia produced by opiates and electrical stimulation of certain diencephalic and brainstem sites.

Analgesia↗

Spinal mechanisms of acute and persistent pain.

Although there is considerable information about the mechanisms through which injury stimuli produce acute pain, recent studies indicate that there are significant long-term consequences of persistent injury. Pain is exacerbated, in part, because of a reorganization of spinal cord circuitry in the setting of persistent injury. This review describes our studies of the contribution of the primary afferent neurotransmitter, substance P (SP), to these changes. By following internalization of the SP receptor in spinal cord dorsal horn neurons, we have identified the stimuli that evoke SP release and the neurons that respond to these stimuli. Importantly, based on the intensities of stimuli required to evoke internalization, we conclude that SP is only released under conditions in which severe pain would be produced, that the release can be evoked by intense stimulation of somatic and visceral tissue, and that multiple stimulus modalities are effective. We also found that the numbers of neurons that are influenced increases dramatically in the setting of inflammation. Using a knockout strategy, we have also raised mice with a deletion of the preprotachykinin-A (PPT-A) gene, which encodes for SP and neurokinin A (NKA), and have identified a specific behavioral phenotype in which the animals do not detect a window of "pain" intensities; this window cuts across stimulus modalities. These results provide an important behavioral correlate of the receptor internalization studies. On the other hand, the allodynia (lowered pain threshold) that occurs in the setting of injury was not altered in these animals. Among the factors that could underlie injury-induced allodynia are the second messenger systems that are activated in dorsal horn neurons. Our studies have recently implicated the gamma isoform of protein kinase C (PKCgamma) in the development of nerve injury-induced neuropathic pain. Specifically, we found that although acute pain responses of mice with a deletion of PKCgamma are not altered, partial injury to the sciatic nerve (which induces a severe thermal and mechanical allodynia in the wild type mouse) is without effect in the knockout. Furthermore, the anatomical/neurochemical reorganization that typically follows sciatic nerve section does not occur in the PKCgamma mutant mice. Because the spinal cord distribution of interneurons that express PKCgamma is concentrated almost exclusively in the inner part of lamina II, we believe that changes in the properties of these neurons are key to the development of nerve injury-induced neuropathic pain conditions. Taken together, these studies emphasize that persistent pain should be considered a disease state of the nervous system, not merely a symptom of some other disease conditions. In the setting of persistent injury, the nervous system undergoes dramatic changes that exacerbate and prolong the pain condition. Our studies underscore the importance of preventing the long-term changes that result from persistent injury.

Acute Disease↗