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J Rossier

Publications and source records attributed to J Rossier.

At least 55 records · Page 3Linked to original sources

Molecular determinants of NMDA receptor function in GABAergic neurones of rat forebrain.

1. The functional and molecular properties of NMDA receptors (NMDA-Rs) were studied in single, visually identified GABAergic medial septal neurones of the rat forebrain using patch clamp, fluorometric Ca2+ measurements and the single-cell reverse transcription-polymerase chain reaction (RT-PCR) technique. 2. Large neurones close to the mid-line of the medial septal region were shown by the expression of mRNA for a form of glutamate decarboxylase (GAD65) to be almost exclusively GABAergic. A variety of NR2 subunit combinations were detected in the same population of neurones. When tested for NR2A-C, all but one neurone were shown to express mRNA for NR2B. The NR2B subunit mRNA was usually detected together with NR2A or NR2C. mRNA for NR2D was detected in most neurones from a separate batch of cells tested only for this subunit. 3. Single channel measurements in outside-out patches combined with RT-PCR on the same cell showed that NMDA-R channels from these neurones had main single channel conductance levels of 42 pS in 2 mM Ca2+ and 49 pS in 1 mM Ca2+. In addition, a number of other conductance levels were observed, with values in 2 mM Ca2+ of 51, 31, 19 and 13 pS. No clear difference was observed in the pattern of conductance levels displayed by neurones in which different subunit combinations were detected. 4. Whole-cell agonist-induced currents were strongly reduced by the NMDA-R antagonist ifenprodil, at a concentration that mainly affects receptors containing NR2B in recombinant systems. Currents activated by NMDA had a high sensitivity to extracellular Mg2+. 5. The fraction of the total cation current through NMDA-R that was carried by Ca2+, measured using a combination of patch clamp and fluorometry in neurones loaded with a high concentration of the Ca2+ indicator fura-2, was found to be approximately 12%. 6. NMDA-R-mediated excitatory synaptic currents (EPSCs) had similar time courses to those in neurones in other brain regions. The decay kinetics were biexponential, with respective mean values for the fast (tau f) and slow (tau 8) time constants of 79 and 300 ms at -60 mV, and 66 and 284 ms at +40 mV. EPSCs were greatly reduced by ifenprodil (3 microM). 7. In conclusion, NMDA receptors in GABAergic medial septal neurones display a characteristic functional profile. The NR2 subunit mRNA detected and the single channel conductance levels observed suggest that, in addition to NR2B, which is present in nearly all cells, NR2A, NR2C and NR2D are also expressed. However, most of the functional properties of NMDA-Rs in these neurones, including the strong inhibition by ifenprodil and Mg2+, the high fractional Ca2+ current, and the time course of the synaptic currents, are more consistent with those known for NR2B than for the other NR2 subunits. These results suggest that the NR2B subunit dominates over other NR2 subunits in determining the functional properties of NMDA-Rs in these neurones.

Animals↗

Transmission of the BSE agent to mice in the absence of detectable abnormal prion protein.

The agent responsible for transmissible spongiform encephalopathies (TSEs) is thought to be a malfolded, protease-resistant version (PrPres) of the normal cellular prion protein (PrP). The interspecies transmission of bovine spongiform encephalopathy (BSE) to mice was studied. Although all of the mice injected with homogenate from BSE-infected cattle brain exhibited neurological symptoms and neuronal death, more than 55 percent had no detectable PrPres. During serial passage, PrPres appeared after the agent became adapted to the new host. Thus, PrPres may be involved in species adaptation, but a further unidentified agent may actually transmit BSE.

Animals↗

Posttranslational modifications of axonemal tubulin.

Axonemal tubulin exhibits a high degree of heterogeneity mostly due to several posttranslational modifications (PTM). The aim of this work was to chemically characterize the different PTM occurring in the C-terminal tail of axonemal tubulin purified from sea urchin, Paracentrotus lividus, spermatozoa. After its purification, tubulin was enzymatically cleaved. The C-terminal peptides were chromatographically isolated, first by anion exchange and then by reverse-phase HPLC. Peptides were characterized by their sequence, determined by Edman degradation, and by their mass, determined by MALDI-TOF/MS. The two major conclusions are that the majority of the isolated C-terminal peptides were unmodified and that polyglycylation and polyglutamylation can occur simultaneously on one molecule of alpha-tubulin.

Amino Acid Sequence↗

Lysozyme fragmentation induced by gamma-radiolysis.

Irradiation of lysozyme in frozen states in the absence of oxygen induces specific fragmentation at defined sites along the backbone chain. This paper localizes radio-fragmentation sites by two methods. First, N-terminal sequencing of radiolysis fragments after separation by SDS-polyacrylamide gel electrophoresis and estimation of their molecular masses. Secondly, after purification of radiolysis fragments by reverse phase-HPLC and determination of their molecular mass by electro-spray-ionization mass-spectrometric analysis, combined to N-terminal sequencing and total amino acid analysis. Evidence for the breakage of the peptide bond itself (CO-NH) is given, with radio-fragmentation sites mostly found at the surface of irradiated lysozyme in solvent exposed loops and turns.

Chromatography, High Pressure Liquid↗

Expression of GABA(A) receptor subunit mRNAs by layer V pyramidal cells of the rat primary visual cortex.

The expression of the GABA(A) receptor subunit mRNAs by layer V pyramidal neurons of the primary visual cortex and cerebellar Purkinje cells was analysed by single-cell reverse transcription of the mRNAs and amplification of the resulting cDNAs by the polymerase chain reaction. Neurons were identified by infrared videomicroscopy, and GABA(A)-mediated miniature inhibitory postsynaptic currents were recorded. In Purkinje cells, alpha1, beta2, beta3, gamma2S and gamma2L subunit mRNAs were detected within a single cell. In layer V pyramidal cells, a total of ten GABA(A) receptor subunit mRNAs could be detected, with a mean of seven subunit mRNAs per cell, suggesting GABA(A) receptor heterogeneity within a single pyramidal cell.

Animals↗

Posttranslational modifications in the C-terminal tail of axonemal tubulin from sea urchin sperm.

After proteolytic digestion of sperm tubulin from sea urchin Paracentrotus lividus, C-terminal peptides were isolated by chromatographic separations. The peptides were analyzed by Edman degradation and matrix-assisted laser desorption/ionization-time of flight mass spectrometry. About 70% of the isolated C-terminal peptides were unmodified. The remaining modified peptides have undergone a combination of numerous posttranslational modifications generating significant heterogeneity of sperm tubulin. alpha-Tubulin is modified by detyrosylation, release of the penultimate glutamate, polyglutamylation, and polyglycylation. Glycylation and glutamylation can coexist within one alpha-tubulin isoform. beta-Tubulin undergoes polyglycylation but was not observed to be polyglutamylated. The number of units posttranslationally added reaches 11 and 12 glycyl units on beta- and alpha-tubulin, respectively. This is different from the polyglycylation of axonemal tubulin in Paramecium cilia where up to 40 added glycyl units were observed both on alpha- and beta-tubulin.

Amino Acid Sequence↗

Correlation between kinetics and RNA splicing of alpha-amino-3-hydroxy-5-methylisoxazole-4-propionic acid receptors in neocortical neurons.

In the cortex fast excitatory synaptic currents onto excitatory pyramidal neurons and inhibitory nonpyramidal neurons are mediated by alpha-amino-3-hydroxy-5-methylisoxazole-4-propionic acid (AMPA) receptors exhibiting cell-type-specific differences in their kinetic properties. AMPA receptors consist of four subunits (GluR1-4), each existing as two splice variants, flip and flop, which critically affect the desensitization properties of receptors expressed in heterologous systems. Using single cell reverse transcription PCR to analyze the mRNA of AMPA receptor subunits expressed in layers I-III neocortical neurons, we find that 90% of the GluR1-4 in nonpyramidal neurons are flop variants, whereas 92% of the GluR1-4 in pyramidal neurons are flip variants. We also find that nonpyramidal neurons predominantly express GluR1 mRNA (GluR1/GluR1-4 = 59%), whereas pyramidal neurons contain mainly GluR2 mRNA (GluR2/GluR1-4 = 59%). However, the neuron-type-specific splicing is exhibited by all four AMPA receptor subunits. We suggest that the predominance of the flop variants contributes to the faster and more extensive desensitization in nonpyramidal neurons, compared to pyramidal cells where flip variants are dominant. Alternative splicing of AMPA receptors may play an important role in regulating synaptic function in a cell-type-specific manner, without changing permeation properties.

Alternative Splicing↗

Neuronal activity differentially regulates NMDA receptor subunit expression in cerebellar granule cells.

Reverse-transcription PCR assays were used to measure levels of NMDA receptor (NR) subunit mRNAs encoding splice variants of NR1 (NR1a, -exon 5; NR1b, +exon 5) and the major NR2 subunits (NR2A, NR2B, and NR2C) in dissociated cerebellar granule cell cultures. Cultures chronically exposed to 25 mM KCl or 100 microM NMDA/15 mM KCl, which promote survival by stimulating Ca2+ influx through voltage-sensitive Ca2+ channels or NRs, were compared with 5 mM KCl culture conditions, which results in limited cell survival attributable to a lower level of NR stimulation by ambient glutamate. In situ granule-cell maturation is associated with downregulation of NR2B and increases both of NR2A and NR2C and in the ratio of NR1b/NR1a mRNAs. In culture, 25 mM KCl or NMDA rapidly induced NR2A and downregulated NR2B, followed by gradual induction of NR2C. In 5 mM KCl, a similar, rapid increase in NR2A was observed, but disappearance of NR2B occurred over a longer time course. By 9-12 d in vitro in 5 mM KCl, the relative proportions of all three NR2 mRNAs in surviving cells were not significantly different from cells cultured in 25 mM KCl. NR1a mRNA predominated at every stage of culture in 25 mM KCl or NMDA, however, whereas gradual induction of the mature-form NR1b was observed in 5 mM KCl. Although using high potassium- or NMDA-containing media enhanced granule cell survival, it did not reproduce the pattern of expression of NR mRNAs observed in situ, whereas this pattern was observed in granule cells surviving in 5 mM KCl.

Animals↗

Functional and molecular analysis of glutamate-gated channels by patch-clamp and RT-PCR at the single cell level.

In the central nervous system (CNS) rapid excitatory neurotransmission is mainly mediated by ligand gated, cationic channels activated by glutamate. Three main subtypes of glutamate-gated channels have been characterized by pharmacological studies. They have been named according to their preferred agonist, N-methyl-D-aspartate (NMDA), high affinity kainate and alpha-amino-3-hydroxy-5-methyl-4-isoxazolepropionate (AMPA). Furthermore, a large diversity within each class of glutamate-gated channels has been revealed by the molecular cloning of multiple subunits and their spliced and edited variants (for review see Wisden and Seeburg, 1993). These subunits can potentially form different oligomeric complexes with diverging properties. A crucial question is therefore to determine the actual subunit composition of naturally occurring glutamate receptors. We have combined patch-clamp recording, reverse transcription (RT) and PCR to correlate, at the single cell level, the pattern of subunits expression with the functional properties of native glutamate receptors. We describe here results obtained on the AMPA receptors of hippocampal neurones and on the NMDA receptors of cerebellar granule cells which show that the subunit composition of these two types of receptors explains some of their functional properties. Furthermore, our data also indicate that the expression of NMDA receptor subunits during the postnatal development of cerebellar granule cells is regulated by an activity-dependent mechanism.

Animals↗

Cat proenkephalin-A does not contain the opioid octapeptide.

The sequence of a large cDNA fragment of proenkephalin-A from the cat adrenal medulla was obtained using reverse transcription followed by polymerase chain reaction, and cloning. This cDNA encompasses the region normally containing all the opioid peptides, except the C-terminal heptapeptide. As with other species, cat proenkephalin-A contains four conserved copies of (Met5)-enkephalin, and one of (Leu5)-enkephalin, flanked by processing sites of paired basic amino acids. However, significant differences were found in the nucleotide and deduced amino acid sequences in the region of the octapeptide. In particular, the essential tyrosyl residue is substituted by a histidyl residue, making it unlikely that the cat equivalent would have opioid activity. Furthermore, the peptide is not flanked by paired basic residues, suggesting it is not processed.

Adrenal Medulla↗

The endogenous agonist quinolinic acid and the non endogenous homoquinolinic acid discriminate between NMDAR2 receptor subunits.

Quinolinic acid is an endogenous neurotoxin with NMDA receptor agonist properties. As such it may be the etiologic agent in many diseases. In this paper the NMDA receptor agonist properties of quinolinic acid, as well as those of homoquinolinic acid, a non endogenous analogue, were investigated in Xenopus oocytes injected with 12-day-old rat cortical mRNA or with recombinant NMDA receptors. In oocytes injected with cortical mRNA, quinolinic acid was a weak NMDA receptor agonist: millimolar concentrations were necessary to induce responses that were smaller than maximal responses induced by NMDA; homoquinolinic acid and NMDA had similar affinities but different efficacies: maximal responses induced by homoquinolinic acid were larger than maximal responses induced by NMDA. Cortical mRNA, as verified by RT-PCR and restriction analysis, contains various NMDA subunits. In order to investigate if the low affinity or efficacy of quinolinic acid could be explained by receptor composition, the pharmacological properties of the putative agonists were investigated in oocytes expressing binary combinations of recombinant NMDA receptors. Quinolinic acid did not activate receptors containing NR1 + NR2C but did activate receptors containing NR1 + NR2A and NR1 + NR2B even if only at millimolar concentrations; homoquinolinic acid activated all subunit combinations but was less efficient than NMDA only in the NR1 + NR2C subunit combination. The relative efficacies of quinolinic acid and homoquinolinic acid were evaluated by comparing the maximal responses induced by these agonists with those induced by NMDA and glutamate in the same oocytes. The rank order of potency was quinolinic acid < NMDA < homoquinolinic acid < or = glutamate for the NR1 + NR2A and NR1 + NR2B combinations whereas for NR1 + NR2C it was quinolinic acid << << homoquinolinic acid < NMDA < or = glutamate. The use of quinolinic acid and homoquinolinic acid may thus help to identify endogenous receptors containing the NR2C subunit.

Animals↗

Diversity of glutamate receptors in neocortical neurons: implications for synaptic plasticity.

The biochemical and functional characteristics of the AMPA subtype of the glutamate receptors expressed by pyramidal and non-pyramidal neurons of the neocortex have been studied in acute slices by means of single-cell RT-PCR and fast applications of glutamate on outside-out patches. Our results suggest that the predominant expression of the flop splice variants of the GluR1-4 AMPA subunits contributes to the faster desensitization of these receptors in non-pyramidal neurons compared to pyramidal cells where flip variants of GluR1-4 are dominant. Alternative splicing of AMPA receptors may therefore play an important role in regulating synaptic function in a cell-type specific manner.

Alternative Splicing↗

Structure of the C-terminal tail of alpha-tubulin: increase of heterogeneity from newborn to adult.

A combination of posttranslational modifications contributes to the high heterogeneity of brain tubulin in mammals. In this report, the structures of the detyrosinated carboxy-terminal peptides of alpha-tubulin from newborn and adult mouse brain were compared. The heterogeneity of these carboxy-terminal peptides was observed to increase from newborn to adult brain tubulin. The major part of this increased heterogeneity is due to the post-translational excision of Glu450, which makes alpha-tubulin nontyrosinatable (delta-2 tubulin). The structures of the polyglutamyl side chain of the bi- and triglutamylated peptides were analyzed in this work. In polyglutamylation of alpha-tubulin, the first glutamyl residue can only be amide-linked to the gamma-carboxyl group of Glu445, but the additional residues may be linked either to the gamma- or to the alpha-carboxyl groups of the preceding one. By optimized reverse-phase separations and comparison with synthetic peptides corresponding to all possible linkages for the biglutamylated (gamma 1 alpha 2, gamma 1 gamma 2) and triglutamylated (gamma 1 alpha 2 alpha 3, gamma 1 gamma 2 gamma 3, gamma 1 alpha 2 gamma 3, gamma 1 gamma 2 alpha 3, gamma 1 gamma 2 alpha 2) tubulin peptides, it was possible to conclude that the mode of linkage connecting the second and third additional glutamyl residues corresponds mostly to alpha-bond structures, for both newborn and adult mice.

Aging↗

Lower limb trauma with injury to the popliteal vessels.

A retrospective analysis of blunt trauma to the lower extremity with injury to the popliteal vessels was undertaken in an attempt to determine the major predictors of outcome and to expose the shortcomings of our management. Thirty-one patients with lower extremity trauma including a popliteal artery injury were admitted to our clinic between 1979 and 1993. Two patients died of hemorrhagic shock or from associated lesions. Amputation of the leg was performed primarily in one patient because of massive tissue damage and secondarily in five patients because of uncontrolled local infection (two patients), excessive tissue damage (two patients), and persistent ischemia (one patient who later died). A peripheral neurologic deficit resulted in 12 of 24 non-amputated extremities. Three additional patients suffered sequelae from bone and joint damage. In all, nine patients recovered completely from their limb injury. Severe ischemia of the leg was found to be an indicator of major limb damage and was a strong determinant of poor outcome. Of 18 patients with severe ischemia, two died (one after amputation), five were amputated, and eight were left with a peripheral neuropathy. Only two patients recovered completely. Of 13 patients with relative ischemia, five recovered completely and four sustained a peripheral neuropathy. The deleterious effects of delayed revascularization were evident in four patients who developed a peripheral neuropathy secondarily. Morbidity from the ischemic insult could have been reduced in seven patients: the diagnosis was missed in two, its seriousness not realized in one, and a non-optimal management led to an excessive ischemic time in four. The magnitude of skeletal and soft tissue injury, alone or in combination, was also strongly associated with an increased morbidity. Most patients with blunt lower limb trauma and popliteal vascular injury are left with serious sequelae from associated neuro-musculo-skeletal damage and from ischemia. Although the magnitude of the first variable is determined by initial trauma and cannot be altered, a constant awareness of possible arterial injury in lower limb trauma, and adherence to a plan of management according to the ischemic state of the leg, should help avoid the additional deleterious effects of prolonged ischemia.

Adolescent↗

A unitary non-NMDA receptor short subunit from Xenopus: DNA cloning and expression.

A high-affinity homomeric, non-NMDA glutamate receptor was previously purified from the amphibian Xenopus laevis. We have obtained nine peptide sequences from its subunit, applied in cDNA cloning. The cDNA encodes a subunit (XenU1) containing all nine sequences. The 51,600-dalton mature subunit has four hydrophobic domains homologous to the four in the C-terminal half of mammalian non-NMDA receptor subunits. Transient expression in COS cells showed 1:1 binding (at Bmax) of [3H] kainate (KD = 9.1 nM) and of [3H] AMPA (alpha-amino-3-hydroxy-5-methyl-isoxazole-4-propionic acid; KD = 62 nM). The competitive binding series domoate > kainate > AMPA > NBQX > glutamate was established (where NBQX is 2,3-dihydroxy-6-nitro-7-sulphamoyl-benzo (f) quinoxaline). Each agonist shows the same KI value against [3H] kainate and [3H] AMPA binding, suggesting a common agonist site, but two conformations thereof are distinguishable by their different affinities for the antagonist NBQX and by the allosteric effect of thiocyanate anion (greatly potentiating AMPA binding, inert with kainate). XenU1 is exceptional among non-NMDA receptor subunits because it lacks most of the large N-terminal domain found in those of mammals and it has high affinity for both kainate and AMPA. It differs from the similarly-short "kainate-binding proteins" (KBPs), in binding AMPA and in forming glutamate receptor channels when the native protein is reconstituted. Moreover, whereas a full-length kainate receptor of mammals, GluR6, is shown here (from a partial cDNA sequence) to exist also in Xenopus, with approximately 97% sequence identity to rat GluR6, XenU1 is much less homologous to any rat kainate or AMPA receptor and also to the KBPs, even from another amphibian, Rana. Another difference is that a potential concensus sequence ("EF hand") for Ca2+ binding is present in the N-terminal domain of XenU1, but not in the chicken (glial) KBP. XenU1 is deduced to be in a new family of non-NMDA receptors.

Amino Acid Sequence↗

The human myosin light chain kinase (MLCK) from hippocampus: cloning, sequencing, expression, and localization to 3qcen-q21.

Myosin light chain kinase (MLCK), a key enzyme in muscle contraction, has been shown by immunohistology to be present in neurons and glia. We describe here the cloning of the cDNA for human MLCK from hippocampus, encoding a protein sequence 95% similar to smooth muscle MLCKs but less than 60% similar to skeletal muscle MLCKs. The cDNA clone detected two RNA transcripts in human frontal and entorhinal cortex, in hippocampus, and in jejunum, one corresponding to MLCK and the other probably to telokin, the carboxy-terminal 154 codons of MLCK expressed as an independent protein in smooth muscle. Levels of expression were lower in brain compared to smooth muscle. We show that within the protein sequence, a motif of 28 or 24 residues is repeated five times, the second repeat ending with the putative methionine start codon. These repeats overlap with a second previously reported module of 12 residues repeated five times in the human sequence. In addition, the acidic C-terminus of all MLCKs from both brain and smooth muscle resembles the C-terminus of tubulins. The chromosomal localization of the gene for human MLCK is shown to be at 3qcen-q21, as determined by PCR and Southern blotting using two somatic cell hybrid panels.

Aged↗

Electrospray mass spectrometry for the characterization of the purity of natural and modified oligodeoxynucleotides.

Electrospray ionization mass spectrometry is an accurate and sensitive analytical method to characterize the purity of oligodeoxynucleotides being tested for pharmacological studies. We report the preparation procedure ('desalting') of natural and modified oligodeoxynucleotides (ODNs) and their analysis by negative-ion electrospray mass spectrometry. We evaluate the sensitivity and the accuracy of the method for two antisense ODN sequences. Mass analysis of the 25-mer phosphorothioate can be performed to within 0.001% accuracy (standard error of 0.05 Da) for a sample concentration of 12 pmol/microL. In addition, the adduct ion and the failure sequence can be identified to characterize the antisense ODN.

Base Sequence↗