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D Souza

Publications and source records attributed to D Souza.

9 recordsLinked to original sources

Effects of guanine nucleotides on glutamate-induced chemiluminescence in rat hippocampal slices submitted to hypoxia.

Glutamate significantly increased levels of spontaneous chemiluminescence (CL) in rat hippocampal slices incubated under hypoxic conditions. Although it has been previously shown that guanine nucleotides (GN) displace glutamate from several of its receptors, in our study only GMP, as well as the glutamate antagonist MK-801, was able to reverse the increase in CL provoked by glutamate. On the other hand, not only GTP or Gpp(NH)p failed to reverse the action of glutamate, but they increased CL production like glutamate. This effect of GTP/Gpp(NH)p was also reversed by GMP. We concluded that, under neurotoxic conditions, GMP acted as an antagonist and GTP or Gpp(NH)p acted as agonists of glutamate. These results reinforced the evidence of the existence of extracellular site(s) for GN and indicated a possible role for GN in excitotoxicity.

Animals

Guanine nucleotides are present in human CSF.

Several studies have shown that experimentally added guanine nucleotides (GN) may extracellularly modulate the glutamatergic system. However, there is no previous report of the extracellular occurrence of GN in the CNS. This study used HPLC to investigate the presence of GN in cerebrospinal fluid (CSF) samples of 26 patients. We demonstrated the extracellular presence of GN in the CNS. In human CSF, GMP was detected in a remarkably high concentration (236.20 microM). This evidence stimulates further investigation of extracellular GN modulation of neurotransmission, physiological mechanisms of action(s), and therapeutic potential(s) in the CNS.

Adenine Nucleotides

Differential effects of guanine nucleotides on kainic acid binding and on adenylate cyclase activity in chick optic tectum.

In G protein-coupled receptors, neurotransmitter-induced binding of GTP to G proteins triggers the activation of effector systems while simultaneously decreasing the affinity of the transmitter for its specific binding site within the receptor-G protein complex. In the present study we show that, in the chick optic tectum, guanine nucleotides inhibit the binding of the glutamate analog, kainate, and activate adenylate cyclase by different mechanisms and acting on different sites. GMP-PNP, a non-hydrolyzable analog of GTP, binds tightly to G proteins so that the binding is stable even after exhaustive washing. By use of this property, we have prepared membrane samples in which G protein GTP-binding sites are pre-saturated with GMP-PNP. Experiments carried out with these membranes show that GMP-PNP, GDP-S and GMP inhibit the binding of [3H]kainate by interacting with site(s) unrelated to G proteins, whereas GMP-PNP activates adenylate cyclase activity by binding to G proteins.

Adenylyl Cyclases

Cyclic GMP phosphodiesterase from bovine retina. Evidence for interspecies conservation.

A light-activated phosphodiesterase (PDE) from retinal rod outer segments (ROS) has been strongly implicated as a possible mediator in the propagation of the visual response. In view of the probable importance of this enzyme in the visual system, a comparison of the PDE proteins from ROS of different evolutionary species was made. Partial purification of the PDE, as measured by enzymic activity, followed by resolution of the protein components on sodium dodecyl sulphate/polyacrylamide-gel electrophoresis, indicated that the major Coomassie Blue-staining species in the ROS of all species studied is a doublet of 84000-88000 Da. After radioiodination, this doublet was converted in all but the frog proteins into a single band of 85000 Da. Two-dimensional tryptic peptide mapping of the radioiodinated peptides indicated that at least six major peptides of the putative PDE have been conserved in all of the species studies. If this protein is indeed associated with PDE activity, such conserved peptides may play an important role in the catalytic and/or regulatory functions of the enzyme.

3',5'-Cyclic-GMP Phosphodiesterases