252 resultados para innervation périsomatique inhibitrice
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L’encéphalopathie hypoxique-‐ischémique cause des milliers de victimes à travers le monde chaque année. Les enfants survivants à un épisode hypoxique-‐ischémique sont à risque de développer des problèmes neurologiques incapacitants comme une paralysie cérébrale, un retard mental, une épilepsie ou des troubles d’ordre comportemental. Les modèles animaux ont amélioré nos connaissances sur les mécanismes sous-‐jacents aux dommages cérébraux, mais elles sont encore trop incomplètes pour être capables de prévenir les problèmes neurologiques. Ce projet vise à comprendre l’impact d’un épisode asphyxique périnatale associé à des convulsions ainsi que l’activation de l’adenosine monophosphate-‐activated protein kinase (AMPK) sur les circuits GABAergiques inhibiteurs en développement chez la souris. Dans le but d’investiguer le sort des neurones inhibiteurs, appelés interneurones, suite à un épisode asphyxique périnatal associé à des convulsions avec des animaux transgéniques, nous avons pris avantage d’un nouveau modèle d’hypoxie permettant d’induire des convulsions chez la souris. Deux populations d’interneurones représentant ensemble environ 60% de tous les interneurones corticaux ont été étudiées, soit les cellules exprimant la parvalbumine (PV) et les cellules exprimant la somatostatine (SOM). L’étude stéréologique n’a montré aucune mort neuronale de ces deux populations d’interneurones dans l’hippocampe chez les souris hypoxique d’âge adulte. Par contre, le cortex des souris hypoxiques présentait des zones complètement ou fortement dépourvues de cellules PV alors que les cellules SOM n’étaient pas affectées. L’utilisation d’une lignée de souris transgénique exprimant une protéine verte fluorescente (GFP) dans les cellules PV nous a permis de comprendre que les trous PV sont le reflet de deux choses : 1) une diminution des cellules PV et 2) une immaturité des cellules PV restantes. Puisque les cellules PV sont spécifiquement affectées dans la première partie de notre étude, nous avons voulu étudier les mécanismes moléculaires sous-‐jacents à cette vulnérabilité. L’AMPK est un senseur d’énergie qui orchestre le rétablissement des i niveaux d’énergie cellulaire dans le cas d’une déplétion énergétique en modulant des voies de signalisation impliquant la synthèse de protéines et l’excitabilité membranaire. Il est possible que l’activation d’AMPK suite à un épisode asphyxique périnatal associé à des convulsions soit néfaste à long-‐terme pour le circuit GABAergique en développement et modifie l’établissement de l’innervation périsomatique d’une cellule PV sur les cellules pyramidales. Nous avons étudié cette hypothèse dans un modèle de culture organotypique en surexprimant la forme wild-‐type (WT) de la sous-‐unité α2 d’AMPK, ainsi qu’une forme mutée dominante négative (DN), dans des cellules PV individuelles. Nous avons montré que pendant la phase de formation synaptique (jours post-‐natals équivalents EP 10-‐18), la surexpression de la forme WT désorganise la stabilisation des synapses. De plus, l’abolition de l’activité d’AMPK semble augmenter le nombre de synapses périsomatiques faits par la cellule PV sur les cellules pyramidales pendant la phase de formation et semble avoir l’effet inverse pendant la phase de maturation (EP 16-‐24). La neurotransmission GABAergique joue plusieurs rôles dans le cerveau, depuis la naissance jusqu’à l’âge adulte des interneurones, et une dysfonction des interneurones a été associée à plusieurs troubles neurologiques, comme la schizophrénie, l’autisme et l’épilepsie. La maturation des circuits GABAergiques se fait majoritairement pendant la période post-‐natale et est hautement dépendante de l’activité neuronale et de l’expérience sensorielle. Nos résultats révèlent que le lourd fardeau en demande énergétique d’un épisode asphyxique périnatal peut causer une mort neuronale sélective des cellules PV et compromettre l’intégrité de leur maturation. Un des mécanismes sous-‐ jacents possible à cette immaturité des cellules PV suite à l’épisode hypoxique est l’activation d’AMPK, en désorganisant leur profil d’innervation sur les cellules pyramidales. Nous pensons que ces changements dans le réseau GABAergique pourrait contribuer aux problèmes neurologiques associés à une insulte hypoxique.
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This paper discusses a study of the adult innervation patterns of afferent cell types in the adult quail. The aim of the study was to evaluate afferent innervation of the quail utricle to better understand the development of the nerve fibers.
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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)
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Previous studies that have used retrograde axonal tracers (horseradish peroxidase alone or conjugated with wheat germ agglutinin) have shown that the temporomandibular joint (TMJ) is supplied with nerve fibers originating mainly from the trigeminal ganglion, in addition to other sensory and sympathetic ganglia. The existence of nerve fibers in the TMJ originating from the trigeminal mesencephalic nucleus is unclear, and the possible innervation by parasympathetic nerve fibers has not been determined. In the present work, the retrograde axonal tracer, fast blue, was used to elucidate these questions and re-evaluated the literature data. The tracer was deposited in the supradiscal articular space of the rat TMJ, and an extensive morphometric analysis was performed of the labeled perikaryal profiles located in sensory and autonomic ganglia. This methodology permitted us to observe labeled small perikaryal profiles in the trigeminal ganglion, clustered mainly in the posterior-lateral region of the dorsal, medial and ventral thirds of horizontal sections, with some located in the anterior-lateral region of the ventral third. Sensory perikarya were also labeled in the dorsal root ganglia from C2 to C5. No labeled perikaryal profiles were found in the trigeminal mesencephalic nucleus. on the other hand, autonomic labeled perikaryal profiles were distributed in the sympathetic superior cervical and stellate ganglia, and parasympathetic otic ganglion. Our results confirmed those of previous studies and also demonstrated that: (i) there is a distribution pattern of labeled perikaryal profiles in the trigeminal ganglion; (ii) some perikaryal profiles located in the otic ganglion were labeled; and (iii) the trigeminal mesencephalic nucleus did not show any retrogradely labeled perikaryal profiles.
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In view of the relevance of the mylohyoid nerve to clinical difficulties in achieving deep analgesia of the lower incisors, a dissection study was undertaken. Dissections from 29 adult cadavers of both sexes were studied with the aid of a dissecting microscope. The following observations were made: a supplementary branch of the mylohyoid nerve entered the mandible through accessory foramina in the lingual side of the mandibular symphysis in 50% of the cases; it generrally arose from the right side (76.9%) and entered the inferior retromental foramen (84.6%); the mylohyoid nerve branch either ended directly in the incisor teeth and the gingiva or joined the ipsilateral or contralateral incisive nerve. In view of this information concerning the high incidence of possible involvement of the mylohyoid nerve in mandibular sensory innervation, it is advisable to block it whenever intervention in the lower incisors is indicated. Routine mylohyoid injection is recommended after mental nerve block. If the inferior alveolar nerve is chosen for anesthetic purposes, additional mylohyoid injection should be given only if pain persists. The mylohyoid injection should be given at the inferior retromental foramen on the median aspect of the inferior border of the mandible through extraoral approach.
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Purpose: We evaluated the somatic and autonomic innervation of the pelvic floor and rhabdosphincter before and after nerve sparing radical retropubic prostatectomy using neurophysiological tests and correlated findings with clinical parameters and urinary continence. Materials and Methods: From February 2003 to October 2005, 46 patients with prostate cancer were enrolled in a controlled, prospective study. Patients were evaluated before and 6 months after nerve sparing radical retropubic prostatectomy using the UCLA-PCI urinary function domain and neurophysiological tests, including somatosensory evoked potential, and the pudendo-urethral, pudendo-anal and urethro-anal reflexes. Clinical parameters and urinary continence were correlated with afferent and efferent innervation of the membranous urethra and pelvic floor. We used strict criteria to define urinary continence as complete dryness with no leakage at all, not requiring any pads or diapers and with a UCLA-PCI score of 500. Patients with a sporadic drop of leakage, requiring up to 1 pad daily, were defined as having occasional urinary leakage. Results: Two patients were excluded from study due to urethral stricture postoperatively. We evaluated 44 patients within 6 months after surgery. The pudendo-anal and pudendo-urethral reflexes were unchanged postoperatively (p = 0.93 and 0.09, respectively), demonstrating that afferent and efferent pudendal innervation to this pelvic region was not affected by the surgery. Autonomic afferent denervation of the membranous urethral mucosa was found in 34 patients (77.3%), as demonstrated by a postoperative increase in the urethro-anal reflex sensory threshold and urethro-anal reflex latency (p <0.001 and 0.0007, respectively). Six of the 44 patients used pads. One patient with more severe leakage required 3 pads daily and 23 showed urinary leakage, including 5 who needed 1 pad per day and 18 who did not wear pads. Afferent autonomic denervation at the membranous urethral mucosa was found in 91.7% of patients with urinary leakage. Of 10 patients with preserved urethro-anal reflex latency 80% were continent. Conclusions: Sensory and motor pudendal innervation to this specific pelvic region did not change after nerve sparing radical retropubic prostatectomy. Significant autonomic afferent denervation of the membranous urethral mucosa was present in most patients postoperatively. Impaired membranous urethral sensitivity seemed to be associated with urinary incontinence, particularly in patients with occasional urinary leakage. Damage to the afferent autonomic innervation may have a role in the continence mechanism after nerve sparing radical retropubic prostatectomy.
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We describe an angiotensin (Ang) II-containing innervation of the kidney. Cryosections of rat, pig and human kidneys were investigated for the presence of Ang II-containing nerve fibers using a mouse monoclonal antibody against Ang II (4B3). Co-staining was performed with antibodies against synaptophysin, tyrosine 3-hydroxylase, and dopamine beta-hydroxylase to detect catecholaminergic efferent fibers and against calcitonin gene-related peptide to detect sensory fibers. Tagged secondary antibodies and confocal light or laser scanning microscopy were used for immunofluorescence detection. Ang II-containing nerve fibers were densely present in the renal pelvis, the subepithelial layer of the urothelium, the arterial nervous plexus, and the peritubular interstitium of the cortex and outer medulla. They were infrequent in central veins and the renal capsule and absent within glomeruli and the renal papilla. Ang II-positive fibers represented phenotypic subgroups of catecholaminergic postganglionic or sensory fibers with different morphology and intrarenal distribution compared to their Ang II-negative counterparts. The Ang II-positive postganglionic fibers were thicker, produced typically fusiform varicosities and preferentially innervated the outer medulla and periglomerular arterioles. Ang II-negative sensory fibers were highly varicose, prevailing in the pelvis and scarce in the renal periphery compared to the rarely varicose Ang II-positive fibers. Neurons within renal microganglia displayed angiotensinergic, catecholaminergic, or combined phenotypes. Our results suggest that autonomic fibers may be an independent source of intrarenal Ang II acting as a neuropeptide co-transmitter or neuromodulator. The angiotensinergic renal innervation may play a distinct role in the neuronal control of renal sodium reabsorption, vasomotion and renin secretion.
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Low back pain is a common ailment in dogs, particularly in specific breeds such as the German shepherd dog. A number of structures such as facet joint capsules, ligaments, dorsal root ganglia, periosteum, vertebral endplates and meninges have been associated with this condition. Yet, in spite of all diagnostic efforts, the origin of pain remains obscure in a substantial proportion of all cases. A further structure often being involved in vertebral column disorders is the intervertebral disc. The presence of nerves, however, is a precondition for pain sensation and, consequently, structures lacking innervation can be left out of consideration as a cause for low back pain. Nerve fibres have been demonstrated at the periphery of the intervertebral disc in man, rabbit and rat. With regard to the dog, however, the extent of intervertebral disc innervation is still being disputed. The goal of the present study, therefore, was to substantiate and expand current knowledge of intervertebral disc innervation. Protein gene product (PGP) 9.5 was used for immunohistochemical examination of serial transversal and sagittal paraffin sections of lumbar discs from adult dogs. This general marker revealed nerve fibres to be confined to the periphery of the intervertebral discs. These results indicate that even limited pathological processes affecting the outer layers of the intervertebral disc are prone to cause low back pain.
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Although intervertebral disc herniation is a well-known disease in dogs, pain management for this condition has remained a challenge. The goal of the present study is to address the lack of information regarding the innervation of anatomical structures within the canine vertebral canal. Immunolabeling was performed with antibodies against protein gene product 9.5, Tuj-1 (neuron-specific class III β-tubulin), calcitonin gene-related peptide, and neuropeptide Y in combination with the lectin from Lycopersicon esculentum as a marker for blood vessels. Staining was indicative of both sensory and sympathetic fibers. Innervation density was the highest in lateral areas, intermediate in dorsal areas, and the lowest in ventral areas. In the dorsal longitudinal ligament (DLL), the highest innervation density was observed in the lateral regions. Innervation was lower at mid-vertebral levels than at intervertebral levels. The presence of sensory and sympathetic fibers in the canine dura and DLL suggests that pain may originate from both these structures. Due to these regional differences in sensory innervation patterns, trauma to intervertebral DLL and lateral dura is expected to be particularly painful. The results ought to provide a better basis for the assessment of medicinal and surgical procedures.
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OBJECTIVES To systematically review the available literature on the influence of dental implant placement and loading protocols on peri-implant innervation. MATERIAL AND METHODS The database MEDLINE, Cochrane, EMBASE, Web of Science, LILACS, OpenGrey and hand searching were used to identify the studies published up to July 2013, with a populations, exposures and outcomes (PEO) search strategy using MeSH keywords, focusing on the question: Is there, and if so, what is the effect of time between tooth extraction and implant placement or implant loading on neural fibre content in the peri-implant hard and soft tissues? RESULTS Of 683 titles retrieved based on the standardized search strategy, only 10 articles fulfilled the inclusion criteria, five evaluating the innervation of peri-implant epithelium, five elucidating the sensory function in peri-implant bone. Three included studies were considered having a methodology of medium quality and the rest were at low quality. All those papers reported a sensory innervation around osseointegrated implants, either in the bone-implant interface or peri-implant epithelium, which expressed a particular innervation pattern. Compared to unloaded implants or extraction sites without implantation, a significant higher density of nerve fibres around loaded dental implants was confirmed. CONCLUSIONS To date, the published literature describes peri-implant innervation with a distinct pattern in hard and soft tissues. Implant loading seems to increase the density of nerve fibres in peri-implant tissues, with insufficient evidence to distinguish between the innervation patterns following immediate and delayed implant placement and loading protocols. Variability in study design and loading protocols across the literature and a high risk of bias in the studies included may contribute to this inconsistency, revealing the need for more uniformity in reporting, randomized controlled trials, longer observation periods and standardization of protocols.