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V Dawson

Publications and source records attributed to V Dawson.

6 recordsLinked to original sources

Reduction of functional N-methyl-D-aspartate receptors in neurons by RNase P-mediated cleavage of the NR1 mRNA.

One approach to studying the functional role of individual NMDA receptor subunits involves the reduction in the abundance of the protein subunit in neurons. We have pursued a strategy to achieve this goal that involves the use of a small guide RNA which can lead to the destruction of the mRNA for a specific receptor subunit. We designed a small RNA molecule, termed 'external guide sequence' (EGS), which binds to the NR1 mRNA and directs the endonuclease RNase P to cleave the target message. This EGS has exquisite specificity and directed the RNase P-dependent cleavage at the targeted location within the NR1 mRNA. To improve the efficiency of this EGS, an in vitro evolution strategy was employed which led to a second generation EGS that was 10 times more potent than the parent molecule. We constructed an expression cassette by flanking the EGS with self-cleaving ribozymes and this permitted generation of the specified EGS RNA sequence from any promoter. Using a recombinant Herpes simplex virus (HSV), we expressed the EGS in neurons and showed the potency of the EGS to reduce NR1 protein within neurons. In an excitotoxicity assay, we showed that expression of the EGS in cortical neurons is neuroprotective. Our results demonstrate the utility of EGSs to reduce the expression of any gene (and potentially any splice variant) in neurons.

Animals↗

Nitric oxide inhibits 3H-glutamate transport in synaptosomes.

3H-glutamate (GLU) uptake was measured in hippocampal synaptosomes from rat brain. Addition of sodium nitroprusside (SNP) (Sodium nitroferricyanide), a generator of nitric oxide (NO), produced a time-, temperature-, and dose-dependent inhibition of 3H-GLU uptake. The inhibition was due to changes in both Kd and Vmax of GLU uptake, and it was at least partially reversible upon washing. Addition of reduced hemoglobin (Hb), a substance that binds NO, prevented the SNP-induced depression of uptake. Potassium ferricyanide, a compound similar to SNP, did not cause a reduction in 3H-GLU uptake. Utilization of another generator of NO, S-nitroso-N-acetylpenicillamine (SNAP), produced similar results as did NO itself. Decreases in uptake were also observed in the striatum and cerebellum. Similar treatments did not consistently affect 3H-norepinephrine (NE) uptake, suggesting some selectivity in the NO effect. Thus, the observed inhibition of 3H-GLU uptake appears to be produced by NO, and it may represent a novel type of transynaptic retrograde regulation of transport. If found in vivo, inhibition of uptake activity could also be involved in the toxic effects of NO, the neurotoxicity of glutamate, and other potential neuronal changes associated with NO such as hippocampal long-term potentiation.

Animals↗

Cyclic nucleotide dependent phosphorylation of neuronal nitric oxide synthase inhibits catalytic activity.

We have examined the regulation of neuronal nitric oxide synthase (NOS) by phosphorylation with cyclic-GMP (PKG) and cyclic-AMP-dependent (PKA) protein kinases. In vitro phosphorylation studies indicate that both PKG and PKA phosphorylate NOS on a single site. Phosphoamino-acid analysis and peptide mapping demonstrate that phosphorylation by either cyclic-nucleotide kinase occurs on a similar serine residue. Phosphorylation of purified NOS by either PKG or PKA diminishes catalytic activity. Stimulation by 8-Br-cGMP of HEK-293 cells stably transfected with the cDNA for neuronal NOS (293.NOS cells) results in phosphorylation of immunoprecipitated NOS. Incubation of 293-NOS cells with 8-bromo-cGMP or dibutyryl-cAMP reduces nitrite release in response to stimulation with calcium ionophore A23187. Phosphorylation-induced decreases in NOS activity may counterbalance and modulate NOS activating signals.

Amino Acid Oxidoreductases↗

Greenfinger therapy.

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Occupational Therapy↗