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Biomedical subjects

J Mallet

Publications and source records attributed to J Mallet.

At least 127 records · Page 7Linked to original sources

Intrastriatal grafts of embryonic mesencephalic rat neurons genetically modified using an adenovirus encoding human Cu/Zn superoxide dismutase.

Intrastriatal grafting of embryonic dopamine-containing neurons is a promising approach for treating clinical and experimental Parkinson's disease. However, neuropathological analyses of grafted patients and transplanted rats have demonstrated that the survival of grafted dopamine neurons is relatively poor. In the present study, we pursued a strategy of transferring a potentially neuroprotective gene into rat embryonic mesencephalic rat cells in vitro, before grafting them into the denervated striatum of 6-hydroxydopamine-lesioned rats. We performed intrastriatal grafts of embryonic day 14 mesencephalic cells infected with replication-defective adenoviruses bearing either the human copper-zinc superoxide dismutase gene or, as a control, the E. coli lac Z marker gene. The transgenes were expressed in the grafts four days after transplantation and the expression persisted for at least five weeks thereafter. After five weeks postgrafting, there was more extensive functional recovery in the superoxide dismutase group as compared to the control (uninfected cells) and beta-galactosidase groups. The functional recovery was significantly correlated with the number of tyrosine hydroxylase-positive cells in the grafts, although the clear trend to increased survival of the dopamine neurons in the superoxide dismutase grafts did not reach statistical significance. Only a moderate inflammatory reaction was revealed by OX-42 immunostaining in all groups, suggesting that ex vivo gene transfer using adenoviral vectors is a promising method for delivering functional proteins into brain grafts.

Animals↗

Synapsin I and syntaxin 1B: key elements in the control of neurotransmitter release are regulated by neuronal activation and long-term potentiation in vivo.

The messenger RNAs encoding proteins of the exocytotic machinery were measured at different times following the induction of long-term potentiation or increasing neuronal activity in the dentate gyrus of the rat in vivo. In situ hybridization revealed that from the many messenger RNAs that encode proteins involved in regulated exocytosis, only those encoding synapsin I and syntaxin 1B were specifically increased. The levels of messenger RNA encoding both synapsin I and syntaxin 1B were increased on the ipsilateral side of the dorsal dentate gyrus 2 and 5 h following the induction of long-term potentiation. Syntaxin 1B was also increased in the ventral dentate gyrus at the same time-points. On the contralateral side of the dentate gyrus there was an increase in both synapsin I and syntaxin 1B at 5 h only. All of these long-term potentiation-induced changes were prevented when the tetanus was delivered in the presence of the N-methyl-D-aspartate receptor antagonist. (D(-)-2-amino-5-phosphonopentanoic acid. Immunocytochemical staining revealed that protein levels for both synapsin I and syntaxin 1B were elevated in the mossy fibre terminal zone of CA3 5 h after the induction of long-term potentiation. In addition to these plasticity-induced changes, a transient increase in the messenger RNA encoding syntaxin 1B was observed at 2 h in conditions of high intensity stimulation of the perforant path to increase the level of cellular activation, but this change was not maintained even when high intensity stimulation was sustained for 5 h. No changes in either of the messenger RNAs were observed under low frequency stimulation and pseudotetanus at either time-points. These results show that an overall increase in neuronal excitation within a neuronal network can be differentiated from a change in synaptic strength at a specific subset of the synapses, where only synaptic plasticity leads to long-term changes in the expression of selective members of the exocytotic machinery. Altered concentrations of key vesicle proteins may thus provide the means for modulation of neurotransmitter release over long time-periods. The persistent long-term potentiation-induced postsynaptic increase in messenger RNAs encoding these presynaptic proteins has important implications for the propagation of signals downstream from the site of long-term potentiation induction in hippocampal neural networks, and highlights a candidate molecular mechanism for mediating the propagation of synaptic plasticity in such networks.

Animals↗

In vivo adenovirus-mediated gene transfer to newborn rat retinal pigment epithelial cells.

A successful surgical access to the subretinal space is critical for achieving adenovirus-mediated gene transfer to the retinal pigment epithelial (RPE) cells or photoreceptor cells. We report a novel surgical approach allowing an efficient delivery of recombinant replication-deficient adenoviral vectors into the subretinal space of newborn rats. Our data suggest that this method may be useful for infecting reproducibly large area of the RPE cell layer of normal newborn rats and should be applicable to RCS pups. We also show the feasibility of infecting ex vivo RPE cells in culture using the same recombinant adenoviral vector.

Animals↗

Adenovirus-mediated transfer of a functional GAD gene into nerve cells: potential for the treatment of neurological diseases.

The recent development of efficient virus-mediated gene transfer into nerve cells allows the prospect of new strategies for the treatment of drug-resistant neurological diseases. Some forms of epilepsy may be amenable to gene therapy. Although there is no obvious candidate gene, the consensual GABA hypothesis of epilepsy suggests that the GAD gene may be beneficial. GAD gene expression may be useful in supplying the inhibitory neurotransmitter GABA to particular critical brain territories. We show herein that a nonreplicative recombinant adenovirus carrying the GAD67 gene under the control of Rous sarcoma virus long terminal repeat promoter is able to express the transgene in primary cultures of neurons and glial cells. Expression of the GAD67 gene was assessed by immunoblotting and immunohistochemical analysis. We demonstrated the functionality of the transgene, the expression of which resulted in production of large amounts of GABA in neuronal and glial cell cultures. Substantial production of the enzyme was also detected for several weeks in infected organotypic slices cultured from new-born rat hippocampal tissues. The virally encoded GAD67 was also expressed in vivo in various brain areas involved in various neurological disorders and thus may be of value for the development of gene therapies.

Adenoviridae↗

Fine genetic mapping of LCN1/D9S1826 within 9q34.

LCN1 gene encodes the tear lipocalin; the lipocalins are a large and growing family of proteins characterized by their ability to bind small hydrophobic molecules. We report here the location of a dinucleotide repeat microsatellite marker (D9S1826) close to LCN1 gene. Using the CEPH reference families, the position of LCN1 is located within the 9q34 genetic map between D9S23 and D9S158.

Carrier Proteins↗

Intrastriatal grafting of Cos cells stably expressing human aromatic L-amino acid decarboxylase: neurochemical effects.

To study the possibility that increasing striatal activity of aromatic L-amino acid decarboxylase (AADC; EC 4.1.1.28) can increase dopamine production in dopamine denervated striatum in response to L-3,4-dihydroxy-phenylalanine (L-DOPA) administration, we grafted Cos cells stably expressing the human AADC gene (Cos-haadc cells) into 6-hydroxydopamine denervated rat striatum. Before grafting, the catalytic activity of the enzyme was assessed in vitro via the generation of 14CO2 from L-[14C]DOPA. The Km value for L-DOPA in intact and disrupted cells was 0.60 and 0.56 mM, respectively. The cofactor, pyridoxal 5-phosphate, enhanced enzymatic activity with maximal effect at 0.1 mM. The pH optimum for enzyme activity was 6.8. Grafting Cos-haadc cells into denervated rat striatum enhanced striatal dopamine levels measured after systemic administration of L-DOPA. When measured 2 h after L-DOPA administration, the mean dopamine level in the striata of Cos-haadc-grafted animals was 2 micrograms/g of tissue, representing 31% of normal striatal dopamine concentration. The mean dopamine concentration in the striata grafted with untransfected Cos cells (Cos-ut cells) was 1 microgram/g. At 6-8 h after L-DOPA administration, striatal dopamine content in the Cos-haadc-grafted animals was 0.67 microgram/g of tissue weight, representing 9% of intact striatum dopamine content. By contrast, the average dopamine content in the Cos-ut-grafted animals was undetectable. These findings demonstrate that enhancing striatal AADC activity can improve dopamine bioformation in response to systemically administered L-DOPA.

Animals↗

An adenoviral vector-based system to study neuronal gene expression: analysis of the rat tyrosine hydroxylase promoter in cultured neurons.

We validated an adenoviral vector-based system as a move toward the characterization of regulatory sequences that are involved in the control of cell-type specificity and ligand regulation of neuronal gene expression in cultured neurons. We constructed recombinant adenoviruses, incorporating the luciferase gene under the control of different fragments of the rat tyrosine hydroxylase (TH) promoter. Similar results for luciferase expression were obtained in immortalized cells either by infection using adenoviral constructs or by transfection using conventional plasmid vectors. Taking advantage of adenoviral vectors, we extended our experiments to various primary cell cultures. The first 800 bp of the TH promoter were found to be sufficient to confer a cell-type preferential activity in noradrenergic neurons of the rat superior cervical ganglia. Furthermore, using this neuronal culture model, we showed that the same promoter region carries leukemia-inhibitory factor (LIF)-responsive element(s). Our results demonstrate that the first 800 bp of the rat TH promoter contains a functionally important core region for constitutive and LIF-regulated expression of TH in peripheral noradrenergic neurons. Moreover, the study validates the adenoviral vector-based system as a new strategy for studying the regulation of neuronal gene expression.

Adenoviridae↗

Detection of two new polymorphic sites in the human interleukin-1 beta gene: lack of association with schizophrenia in a French population.

The pathogenesis of schizophrenia might involve abnormal development of the human brain. Interleukin-1 beta is a cytokine implicated in the development of the central nervous system and therefore its gene is a candidate gene in schizophrenia. Polymorphisms within the coding sequence and the 3'UTR of the IL1 beta gene were searched for using PCR-SSCP. Two polymorphisms, 1B-175/1B-173 and 1B-1765/1B-1763 were found in addition to the previously published TaqI site. Furthermore, a mutant was found in codon 106 (exon 5) of the IL1 beta gene located next to the published polymorphism at the TaqI site and abolishing this site. This novel mutation encodes an Asp in place of an Asn and was only observed in one patient in our French population. Association studies were conducted with the polymorphisms 1B-175/1B-173 and TaqI. There was no allelic or genotypic association between either of the two polymorphisms and schizophrenia. In our population, there is no evidence that the IL1 beta gene is involved in schizophrenia.

Adult↗

Characterization and sleep deprivation-induced expression modulation of dendrin, a novel dendritic protein in rat brain neurons.

We report on the characterization of the novel rat brain protein dendrin which is encoded by the brain-specific transcript 464. On immunoblots, two protein variants (81 kD, 89 kD) were identified in cytosolic and membraneous protein fractions. The variants are most abundant in the hippocampus, notably in apical dendrites of CA1 pyramidal cells. Dendritic and perikaryal immunolabelling is apparent in neurons of the cerebral cortex, dentate gyrus, subiculum, amygdala, and preoptic areas. In cortical and hippocampal dendrites, electron-dense immunoreaction is associated with the endoplasmic reticulum, the plasma membrane, and spine heads. An association of dendrin with polyribosomes and the presence of its mRNA in dendrites both provide evidence for dendritic mRNA translation. In the rat forebrain, dendrin expression is altered after an extended period of wakefulness. Twenty-four-hour sleep deprivation decreases the mRNA and protein concentrations of both variants in subcortical forebrain plus midbrain areas by 24 +/- 11% (P < 0.05) and 40 +/- 14% (P < 0.1), respectively, as measured relative to beta-actin mRNA and neural actin. In the cerebral cortex and hippocampus, the relative mRNA level remains unchanged whereas the cortical protein concentration is reduced by 42 +/- 10% (P < 0.05). Thus, dendrin belongs to a new class of dendritic proteins whose expression is differentially modulated by prolonged behavioral activity.

Animals↗

Neurogranin is locally concentrated in rat cortical and hippocampal neurons.

The rat protein kinase C substrate neurogranin has a granular distribution in cortical and hippocampal neurons. We demonstrate that in these cells, granular labelling corresponds to a local concentration of neurogranin-immunoreactivity at both the membranes of mitochondria and trans-Golgi vesicles and soma-proximal dendritic shaft and spinal head structures. Our findings suggest that the function of neurogranin could be affected by protein assembly at these cellular sites.

Animals↗

Plasticity of tyrosine hydroxylase gene expression in the rat nucleus tractus solitarius after ventilatory acclimatization to hypoxia.

The aim of this study was to define the influence of long-term hypoxia on gene expression of tyrosine hydroxylase (TH) in the rat nucleus tractus solitarius (NTS). Animals were exposed to normobaric hypoxia (10% O2 in nitrogen) for 2 weeks. At this time, the hypoxia-induced hyperventilation reached a plateau, indicating ventilatory acclimatization. In horizontal brainstem sections, hypoxia-induced changes in TH protein and TH mRNA were assessed by immunocytochemistry and in-situ hybridization, respectively. Long-term hypoxia increased TH mRNA levels seen as both an increase in the number of grains per cell and an extension of the labeled area. The highest degree of labeling was found selectively located in caudal NTS. Hypoxia also enhanced TH immunoreactivity in the caudal NTS but this labeling extended more rostrally than that of TH mRNA. The data suggest that there is an hypoxia-induced plasticity of gene expression at the gene level in the NTS, which is associated with ventilatory acclimatization. The hypoxia model described in this study may serve as a framework for future regulatory studies.

Animals↗

Mimicry meets the mitochondrion. Evolution.

A recent molecular study of the evolution of mimicry in tropical butterflies of the genus Heliconius proves that the mimics adapted to previously diverged 'model' species, but does not clearly distinguish between opposing views of how the model species diverged.

Animals↗

Intracerebral tetracycline-dependent regulation of gene expression in grafts of neural precursors.

Tight control of the activity of a therapeutic gene introduced in vivo is a major issue in gene therapy research. Appropriate levels of expression may be crucial for gene correction. The tetracycline-sensitive regulatory system is highly effective for transcriptional regulation of foreign genes in mammalian cells. Here we report tight tetracycline-dependent regulation of a luciferase reporter gene transferred into the rat brain in the genetically modified neural precursor cell line ST14A as early as 2 days and until at least 6 days after transplantation. This is the first demonstration of the potential of this regulatory system for the modulation of the expression of therapeutic genes introduced into the central nervous system.

Animals↗