PubMed Health⌕ Search

Biomedical subjects

K Fried

Publications and source records attributed to K Fried.

At least 37 records · Page 2Linked to original sources

In vivo NGF deprivation reduces SNS expression and TTX-R sodium currents in IB4-negative DRG neurons.

Recent evidence suggests that changes in sodium channel expression and localization may be involved in some pathological pain syndromes. SNS, a tetrodotoxin-resistant (TTX-R) sodium channel, is preferentially expressed in small dorsal root ganglion (DRG) neurons, many of which are nociceptive. TTX-R sodium currents and SNS mRNA expression have been shown to be modulated by nerve growth factor (NGF) in vitro and in vivo. To determine whether SNS expression and TTX-R currents in DRG neurons are affected by reduced levels of systemic NGF, we immunized adult rats with NGF, which causes thermal hypoalgesia in rats with high antibody titers to NGF. DRG neurons cultured from rats with high antibody titers to NGF, which do not bind the isolectin IB4 (IB4(-)) but do express TrkA, were studied with whole cell patch-clamp and in situ hybridization. Mean TTX-R sodium current density was decreased from 504 +/- 77 pA/pF to 307 +/- 61 pA/pF in control versus NGF-deprived neurons, respectively. In comparison, the mean TTX-sensitive sodium current density was not significantly different between control and NGF-deprived neurons. Quantification of SNS mRNA hybridization signal showed a significant decrease in the signal in NGF-deprived neurons compared with the control neurons. The data suggest that NGF has a major role in the maintenance of steady-state levels of TTX-R sodium currents and SNS mRNA in IB4(-) DRG neurons in adult rats in vivo.

Animals↗

Distribution of P2X3 receptors in the rat trigeminal ganglion after inferior alveolar nerve injury.

The ATP-gated cation channel receptor P2X3 is associated with nociceptive primary sensory neurons. We have, using immunohistochemistry, examined the expression of P2X3 in rat trigeminal ganglia 4-22 days after ligation/section or chronic constriction of the mandibular inferior alveolar nerve. In the normal trigeminal ganglion the anti-P2X3 receptor antibody labeled 37-58% of all neurons. Double labeling demonstrated that about 70-95% of the small neurons that bind the isolectin I-B4 displayed P2X3-immunoreactivity, and that about 40% of larger RT97-positive nerve cells were P2X3 receptor-immunoreactive. At 4 and 10 days after inferior alveolar nerve injury, the proportion of P2X3-immunoreactive neurons had increased to about 65% (range 52-78%). Examinations at the injury sites showed an intense P2X3 receptor-immunoreactivity in nerve endings. At longer survival stages the proportion of P2X3 receptor-positive sensory neurons had returned to control values. These results show that the P2X3 receptor is transiently upregulated and anterogradely transported in trigeminal primary sensory neurons after nerve injury. Since the receptor is accumulated in injured nerve endings, it may be associated with abnormal impulse propagation from these sites.

Animals↗

Neuropeptide immunoreactivity in ligature-induced neuromas of the inferior alveolar nerve in the ferret.

Injury to branches of the trigeminal nerve can sometimes result in persistent dysaesthesia. In an attempt to understand the aetiology of this condition we are currently investigating changes which occur at the injury site. In the present study we have examined the expression of seven neuropeptides, all of which have been implicated in nociceptive transmission, or have previously been shown to have altered expression following nerve injury. In 20 adult ferrets the inferior alveolar nerve was sectioned and ligated, and recovery permitted for 3 days, 8 days, 3 weeks, 6 weeks or 12 weeks. Longitudinal sections of the neuromas were processed using immunohistochemical techniques to quantify the expression of substance P, calcitonin gene-related peptide, vasoactive intestinal polypeptide, galanin, somatostatin, enkephalin and neuropeptide Y. After 3 days, all of the neuropeptides were expressed at the injury site. In the neuromas examined after longer recovery periods these levels of expression had declined and were similar to those found in the contralateral controls. This initial high level, followed by a decline, parallels the incidence of ectopic neural activity recorded electrophysiologically in the same model. It is, therefore, possible that the accumulation of neuropeptides at the injury site may play a role in the initiation or modulation of ectopic neural activity.

Animals↗

Sympathectomy does not affect the early ectopic discharge from myelinated fibres in ferret inferior alveolar nerve neuromas.

Ectopic neural activity from damaged axons is thought to contribute to the development of sensory disorders following nerve injury. Here we have studied the role of sympathetic fibres in the generation or potentiation of this abnormal activity by determining the effect of predegenerating these fibres. Twelve adult ferrets were used in the study and six of them underwent sympathectomy by removal of the left superior cervical ganglion. Electrophysiological recordings were made from myelinated axons in fine filaments dissected from the inferior alveolar nerve, 3 days after it had been ligated further distally, and the level of spontaneous activity and mechanical sensitivity was determined. There was no significant difference between the level or characteristics of spontaneous activity, or the level of mechanical sensitivity, in the two groups of animals. We conclude that, in this animal model, the absence of sympathetic nerve fibres does not affect the development or characteristics of ectopic neural activity in the early period following nerve injury.

Animals↗

Expression of Galpha proteins in the developing, denervated, or injured rat molar tooth.

The purpose of this study was to map the distribution of alpha-subunits of G-proteins--Galpha(olf s), Galpha(olf), Galpha(s), Galpha(i), Galpha(o), Galpha(z) and Galpha(q11)--in developing, denervated or injured rat molar teeth, using fluorescence microscopic immunohistochemistry coupled with immunogold electron microscopic immunocytochemistry. In rat fetuses (E17-E21), a widespread expression of Galpha(q11) was seen in maxillary/mandibular mesenchyme as well as in developing teeth. In addition, intensely Galpha(o)-positive nerve fibers were associated with the dental epithelium and the dental papilla of developing teeth. Other G proteins were absent or sparsely distributed during early tooth development. In the adult tooth pulp, odontoblasts appeared to express mainly Galpha(olf s), Galpha(o), and Galpha(q11). Nerve fibers were immunoreactive to Galpha(i), Galpha(o) and Galpha(z). In addition, pulpal blood vessels expressed varying levels of Galpha(olf s) Galpha(z) and Galpha(q11) while Galpha(olf s), Galpha(olf), Galpha(o) and Galpha(q11) were found in various pulpal mesenchymal cells. After adult denervation, nerve fiber-related G-protein immunoreactivity disappeared, but no other changes in pulpal G-protein immunoreactivity were noted. Odontoblasts and mesenchyme cells were intensely Galpha(i)-positive underneath a pulpal traumatic exposure, indicating an injury-induced pulpal upregulation of Galpha(i). The findings that Galpha(i), Galpha(o) and Galpha(z) are expressed in pulpal sensory nerve fibers suggest that these G proteins participate in signal conveyance from the target to the trigeminal nerve cell body.

Animals↗

NGF, BDNF, NT3, NT4 and GDNF in tooth development.

Neurotrophic factors have robust effects on development, differentiation, maintenance and regeneration of neurons. In the present study, we have used in situ hybridization to determine the specific sites of gene activity of five neurotrophic factors during tooth development. Nerve growth factor (NGF) and brain-derived neurotrophic factor (BDNF) mRNAs were mainly detected in the dental papilla/pulp in postnatal rats, and the pattern of expression correlated with onset of dental innervation. In contrast, neurotrophin 3 (NT3) and 4 (NT4) mRNA expression patterns were predominantly epithelial and were strongest during early developmental stages when teeth are not yet innervated. Glial cell line-derived neurotrophic factor (GDNF) mRNA was present in dental epithelium at early stages, but later in development, GDNF mRNA expression was mainly mesenchymal and observed in the odontoblast layer and extending into the subodontoblast zone. Our results suggest that both neurotrophins and GDNF may have multiple functions during tooth development. In addition to an influence on the establishment of the dental innervation, neurotrophic substances might have morphogenetic effects such as modulating the proliferation or differentiation of developing epithelial and mesenchymal cells.

Animals↗

Opioid-induced release of neurotensin in the periaqueductal gray matter of freely moving rats.

The midbrain periaqueductal gray matter (PAG) is an important region for endogenous pain suppression. Nerve terminals containing opioid peptides and neurotensin (NT), as well as high densities of opioid- and NT-receptors, have been demonstrated in the ventromedial PAG. Local administration of opioids or NT in this region induces antinociception in experimental animals. In the present microdialysis study, the effect of opioids on the release of NT in the ventromedial PAG was investigated. Perfusion of the microdialysis probe with 10 microM morphine induced a significant increase (P < 0.05; n = 5) of the extracellular level of NT-like immunoreactivity (NT-LI), while perfusion with a 10-fold higher concentration of morphine had no significant effect on the NT-LI release in the PAG. Also perfusion of the dialysis probe with the mu-opioid receptor-specific agonist [D-Ala2-N-Me-Phe4-Gly5-ol]-enkephaline (DAGO) (1 or 100 microM) induced a significant (P < 0.05; n = 7-9) increase of the NT-LI level. The increase in NT-LI release in response to 1 microM DAGO was both calcium-dependent and naloxone-reversible. Since opioid agonists generally inhibit neuronal activity, an indirect mechanism, involving inhibition of tonically active inhibitory neurons, e.g. gamma-aminobutyric acid (GABA) neurons, could be of importance for the opioid induced release of NT. However, local administration in the PAG of the GABA(A) antagonist bicuculline (0.1-10 microM) or the GABA(A) agonist muscimol (1-100 microM) had no significant effect on the extracellular NT-LI level in the PAG, suggesting that GABAergic mechanisms are not involved in the opioid-induced release of NT-LI. In conclusion, the present data provide in vivo evidence that mu-opioid receptors mediate stimulation of neurotensin release in the PAG.

Analgesics, Opioid↗

Differential expression of sodium channel genes in retinal ganglion cells.

Action potential electrogenesis in the axons of retinal ganglion cells is supported by voltage-gated sodium channels, and a tetrodotoxin (TTX)-inhibitable sodium conductance participates in anoxic injury of these axons within the optic nerve. However, the subtypes of sodium channels expressed in retinal ganglion cells have not been identified. In this study, we used reverse transcription-polymerase chain reaction (RT-PCR) and restriction enzyme mapping, together with in situ hybridization, to examine the expression of transcripts for sodium channel alpha-subunits I, II, III, NaG, Na6, hNE/PN1 and SNS, and beta-subunits 1 and 2, in the retina of the adult rat. RT-PCR yielded high levels of amplification of I, II, III, Na6, beta1 and beta2 transcripts. In situ hybridization demonstrated the presence of all these mRNAs in the cell bodies of retinal ganglion cells. Retinal ganglion cells thus express multiple sodium channel mRNAs, suggesting that they deploy several different types of sodium channels.

Animals↗

Column-switching techniques in the biomedical analysis of stereoisomeric drugs: why, how and when.

The application of stereoselective chromatographic techniques to bioanalytical problems has become a routine procedure. However, this approach is not always straightforward; particularly when the separation involves chromatographic chiral stationary phases. Matrix interferences and more importantly, overlapping metabolite peaks often make direct analysis impractical. One strategy to overcome these problems is to combine two or more columns with different selectivities to produce a multi-dimensional chromatographic system. This review addresses the use of coupled column chromatography in HPLC systems including different coupling methods and the application of the resulting arrangements to bioanalytical analyses.

Animals↗

Cellular expression of neurotrophin mRNAs during tooth development.

Target-derived neurotrophins support and sustain peripheral sensory neurons during development. In addition, it has been suggested that these growth factors could have developmental functions in non-neuronal tissues. To further elucidate the possible roles of neurotrophins in tooth morphogenesis and innervation, we have used in-situ hybridization to determine the specific sites of neurotrophin gene activity in pre- and postnatal rat jaws from E16 to P7. All four neurotrophins were expressed during tooth development with specific temporospatial patterns. Nerve growth factor (NGF) and brain-derived neurotrophic factor (BDNF) mRNAs were mainly detected in the dental papilla/pulp in postnatal animals, and the pattern of expression correlated with the onset of dental innervation. In contrast, neurotrophin 3 (NT3) and neurotrophin 4 (NT4) mRNA expression patterns were predominantly epithelial and were strongest during early developmental stages when teeth are not yet innervated. Dental papilla NGF-mRNA expression was first seen in both epithelium and mesenchyme and later shifted to the odontoblast layer and the subodontoblast zone. BDNF-mRNA labeling was present in low levels in the early dental organ, but increased in the pulp and in the odontoblast cell layer of the developing teeth at later developmental stages. Both NT3 and NT4 mRNA were observed in the prenatal oral epithelium and the inner dental epithelium. NT3-mRNA labeling was seen mainly in the cervical loop region, fissure system depressions and cuspal tops, while NT4 mRNA was more evenly distributed in the dental epithelium. At P7, NT3-mRNA labeling was below detection level and NT4 mRNA expression was lower than at prior stages. Complementary to reports on the presence of low-affinity neurotrophin receptor (LANR), trkB and trkC mRNA in the developing teeth, our results suggest that neurotrophins may have multiple functions during tooth morphogenesis. Neurotrophins might participate in epithelial-mesenchymal interactions in early tooth morphogenetic events such as proliferation and differentiation of epithelial and mesenchymal cells. In addition, based on mRNA localization in postnatal animals, we also suggest that NGF and BDNF (beside glial cell line-derived neurotrophic factor) might participate in establishing and maintaining the innervation of the teeth, thus acting as classical neurotrophic factors.

Animals↗

Tamoxifen metabolic patterns within a glioma patient population treated with high-dose tamoxifen.

AIMS: The study was designed to evaluate tamoxifen metabolic profiles in 25 patients (13 M, 12 F) suffering from recurrent high-grade cerebral astrocytomas who were treated with high oral doses of tamoxifen (120 mg/m2 twice daily). METHODS: Tamoxifen was administered for at least 8 weeks; after 4 weeks blood samples were collected 7 h post dose. Tamoxifen and metabolites were analysed by h.p.l.c. RESULTS: Steady-state plasma concentrations (mean microM +/- s.d.) were determined for tamoxifen (2.94 +/- 3.44), N-desmethyltamoxifen (4.37 +/- 2.13), N-desdimethyltamoxifen (1.49 +/- 0.54), 4-hydroxytamoxifen (0.13 +/- 0.05) and tamoxifen primary alcohol (1.07 +/- 0.46). Male and female patients had comparable metabolic profiles, both qualitatively and quantitatively. The mean plasma tamoxifen concentrations were higher in dexamethasone-treated patients than untreated patients: 3.94 +/- 4.35 microM (95% C.I.: 1.43-6.46) vs 1.67 +/- 0.84 microM (95% C.I.: 1.11-2.24), with vs without; while phenytoin-treated patients had lower concentrations: 1.85 +/- 0.87 microM (95% C.I.: 1.37-2.34) vs 4.58 +/- 5.05 microM (95% C.I.: 0.97-8.19), with vs without. The differences approached but did not reach statistical significance (P = 0.065 and 0.078 respectively). CONCLUSIONS: There was marked interpatient variability. The observed effect of dexamethasone on tamoxifen concentrations is consistent with the involvement of CYP3A in metabolism.

Adolescent↗

Benign familial microcytic thrombocytosis with autosomal dominant transmission.

Familial thrombocytosis is an extremely rare disorder, so far reported in only a handful of families. In the majority of cases the characteristics were of essential thrombocythemia. Most patients presented with a platelet count above 800,000/mm3, were diagnosed as having a myeloproliferative disease, and some required chemotherapy. We describe a benign form of familial thrombocytosis with autosomal dominant inheritance in five healthy members of three generations of a family, all of whom had moderate thrombocytosis within the range 422,000-662,000/mm3, characterized by low mean platelet volume. A careful medical history and a 5-year follow up of the subjects did not reveal any untoward clinical development. This variant of familial thrombocytosis is therefore of a benign nature. Possible mechanisms linking thrombocytosis with platelet microcytosis in this family are discussed.

Adolescent↗

GDNF mRNA in Schwann cells and DRG satellite cells after chronic sciatic nerve injury.

Glial cell line-derived neurotrophic factor (GDNF) exhibits neurotrophic properties on different types of neurones, including fetal motoneurones and embryonic neurones of sensory ganglia. We demonstrate that chronic injury to the adult rat sciatic nerve induces a rapid up-regulation of GDNF mRNA expression in Schwann cells proximal as well as distal to the injury site, and that expression of this mRNA remains at high levels for at least 5 months after injury. In addition, GDNF mRNA increases and remains high in satellite cells and Schwann cells of the affected L4/L5 DRGs. These findings suggest that GDNF is an important factor in the events that follow upon adult chronic primary sensory neurone injury, and possibly also after adult motoneurone axotomy.

Animals↗

[Huntington's disease: molecular basis and detection of carriers].

Huntington's disease (HD) results from extensive damage to the nerve cells of the brain cortex and basal ganglia. The gene associated with these changes was mapped in 1983 to the short arm of chromosome 4, at 4p16.3. A decade later it was cloned and the mutation was identified as an increase in the number of CAG repeats in the coding sequence. In the normal gene there are up to 34 repeats but in HD there are more than 36. This is termed dynamic mutation and is found in several other diseases, most of which manifest neurological symptoms. We summarize our studies of 10 families with HD, and 20 individuals with no known history of the disease. Our studies suggest that Jewish patients with HD exhibit the same dynamic gene mutation found in non-Jews. The number of repeats, both in diseased patients and normal controls, is similar to that found in non-Jews. Paternal inheritance was associated with increased severity of symptoms and earlier clinical manifestation, similar to what has been reported. Our experience testing for Huntington gene mutations indicates that this is a relatively simple, reliable and accurate test which can be used in the diagnosis of the disease, in identifying carriers, and for prenatal diagnosis.

Genetic Carrier Screening↗

Combinatorial expression patterns of the connexins 26, 32, and 43 during development, homeostasis, and regeneration of rat teeth.

Gap junctions permit the exchange of regulatory molecules between cells and play important roles during organogenesis. The expression pattern of the gap junction proteins connexin 26, 32, and 43 was studied by immunohistochemistry in the developing, adult, and injured rat teeth. Connexins 32 and 43, but not the connexin 26, were detected during the late stages of embryonic tooth development (bell stage). Expression of connexin 32 was predominant in epithelial cells, whereas connexin 43 was more widely distributed and found in both epithelial and mesenchymal cells. During cytodifferentiation (early postnatal stages), both connexin 32 and 43 were expressed in the epithelial-derived ameloblasts, synthesizing and secreting the enamel matrix proteins. In mesenchyme, connexin 32 was observed only in differentiating odontoblasts, while connexin 43 was expressed in both differentiating and functional odontoblasts, which secrete the dentin matrix. In adult rat teeth, connexin 26 and 43 were expressed in the odontoblastic layer at low and high levels, respectively, while connexin 32 was absent from odontoblasts. Electron microscopy showed that connexin 43 was distributed exclusively at sites of contacts between odontoblasts. However, double immunostaining combined with confocal microscopy suggested an occasional overlap between odontoblasts and calcitonin gene-related peptide-positive nerve fibers. Denervation experiments showed that the expression of connexins in dental pulp was independent of innervation, whereas in injured teeth connexin 43 was upregulated in pulpal fibroblasts. Finally, cultured dental epithelial cells expressed both connexin 32 and 43, and connexin 43 was detected in cultured pulp fibroblasts in vitro, thus mimicking the in vivo distribution pattern of connexins. These results demonstrate that connexins are involved in tooth development and suggest that a given connexin may have distinct roles during odontogenesis and tooth homeostasis.

Animals↗

Effects of neuropeptides on growth of cultivated rat molar pulp fibroblasts.

The effect of the neuropeptides substance P (SP), neurokinin A (NKA), calcitonin gene-related peptide (CGRP), neuropeptide Y (NPY) and vasoactive intestinal polypeptide (VIP) on DNA synthesis of dental pulp cells was investigated in cells grown from molar tooth bud explants from 4-6 days old rat pups. A concentration response-assay of the proliferative response of pulpal cells was performed with SP, NPY, NKA, CGRP and VIP (0.01 to 1 nM) in the presence of EGF (10 ng/ml), hydrocortisone (0.4 microgram/ml) and 3% FCS, using [3H]thymidine incorporation. The results showed that SP, NKA and CGRP, but not NPY and VIP, increased the cell number in a concentration-dependent manner, with maxima at 10(-10)-10(-9) M (SP, NKA) and 10(-7) M (CGRP). No potentiating effect was noted when cells were simultaneously stimulated with SP and CGRP. The finding that SP, NKA and CGRP have growth regulatory properties on pulpal cells in vitro suggests that sensory neuropeptides may be involved during pulpal development or in wound healing after pulpal injury.

Animals↗

TrkB-like immunoreactivity in trigeminal sensory nerve fibers of the rat molar tooth pulp: development and response to nerve injury.

The localization of TrkB, a signal transducing receptor for brain-derived neurotrophic factor and neurotrophin-4, was studied in the rat mandibular molar pulp during development and following nerve injury. Sections were incubated with rabbit polyclonal antiserum against the catalytic part of the TrkB receptor, thus only binding to full-length TrkB receptors, and examined by immunofluorescence microscopy and EM immunocytochemistry. At embryonic day 17, strongly TrkB-positive fibers were located in mandibular nerve trunks, in nerve fibers of deeper mesenchyme in close spatial relation to sites of future tooth development and in subepithelial nerve plexa. At postnatal days 1-12 intensely TrkB-positive nerve fibers surrounded and eventually invaded the developing dental papillae and pulps. In the normal adult pulp TrkB-immunoreactive axons were seen extending through the radicular pulp into the coronal areas. Double labelling demonstrated a considerable overlap between TrkB-like immunoreactivity and low affinity neurotrophin receptor-like immunoreactivity in the pulp, although some low affinity neurotrophin receptor-positive nerve fibers lacked TrkB-like immunoreactivity. Immunogold electron microscopy showed TrkB-like immunoreactivity in myelinated as well as in unmyelinated axons. One week following inferior alveolar nerve injury there was a dramatic decrease in the level of TrkB-like immunoreactivity labelling in the pulp, which paralleled an increase in the expression of Schwann cell low affinity neurotrophin receptor-like immunoreactivity. The first signs of regenerating TrkB-positive nerve fibers were found at 4 weeks post-operative, and at 9 weeks the distribution of pulpal TrkB-like immunoreactivity had returned to normal. These data indicate that brain-derived neurotrophic factor and/or neurotrophin-4 could be target-derived factors involved in sensory trigeminal tooth pulp nerve fiber development, differentiation or regeneration.

Aging↗