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Biomedical subjects

G Guilbaud

Publications and source records attributed to G Guilbaud.

166 records · Page 10Linked to original sources

Effects of ES52, an enkephalinase inhibitor, on responses of ventrobasal thalamic neurons in rat.

The effects of ES52, a highly potent derivative of Thiorphan, an inhibitor of enkephalinase, at doses of 5 and 10 mg/kg IV were studied on the responses to cutaneous stimuli of 18 "nociceptive" (N), 10 "convergent" (NNn) and 4 "non-nociceptive" (Nn) neurons recorded in the ventrobasal (VB) complex of the rat. The responses of neurons exclusively driven by noxious mechanical and thermal stimuli (N neurons) were depressed by 56% by ES52 15 min after the injection of 5 or 10 mg/kg IV. This depressive effect was reversed by naloxone for half the neurons. For the ten neurons driven by both noxious and non-noxious stimuli (convergent NNn neurons), the responses to noxious heat were decreased by 42% at 15 min. By contrast, there was a marked enlargement of their receptive fields to light tactile stimuli, which was not naloxone-reversible. The receptive fields of neurons exclusively driven by non-noxious stimuli (Nn neurons) were also greatly expanded by ES52. These results show that ES52 can depress the responses of VB thalamic neurons to noxious stimuli; the effects on receptive field size underlines the complexity of the endogenous opiate systems.

Amino Acids, Sulfur↗

[Neurophysiological data on transmission and integration of nociceptive messages (author's transl)].

In this study cutaneous nociceptive messages are followed at different levels of the CNS, from the periphery to the cortex. A brief summary is given concerning the role of the fine myelinated and unmyelinated fibres which are specifically activated by noxious stimuli. A more extensive review considers the spinal mechanisms which sustain the transmission of nociceptive messages; the electrophysiological properties of interneurones located in laminae VIII, V, and I of the dorsal horn are described in detail. At the same time, the problem of the ascending projections of those cells activated by nociceptive stimuli is discussed. Particular attention is paid to the controls acting at the spinal level: segmental controls are described first and lead to discussion of the "gate control theory"; descending inhibitory controls are then discussed and their importance emphasized. The complexity of pain mechanisms at the supra-spinal level is underlined and a brief review considers the role of various bulbar, mesencephalic and thalamic structures involved in transmission of noxious messages. Among these structures, the PO group of nuclei seem to have a particular role in pain processes. Although the importance of the cortex for final integration of nociceptive messages is discussed, a brief summary is also given of investigations into the role of somatic area SII.

Afferent Pathways↗

Pathophysiology of joint pain.

Irrespective of the underlying mechanisms, joint pain usually originates in activation of nociceptors, or free nerve endings. Nociceptive signals release a large number of neuromediators, such as substance P and the calcitonin gene-related peptide. Complex neuronal activation occurs, which involves not only local sensitization of joint nociceptors but also modifications in central pain pathways. Additional complexity results from the ability of numerous environmental, psychological, and constitutional factors to influence joint pain.

Animals↗