[Biomedical research in Spain (II). Assessment of the Health Research Fund (FIS) through the research projects funded in 1988-1995 for research centers, colleges, and schools].
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Biomedical subjects
Publications and source records attributed to E Rodríguez Farré.
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The regional expression of inducible 72 kDa heat shock protein (HSP-70), HSP-70 mRNA and the neuropathological outcome of their expression were examined in the rat brain following systemic administration of kainic acid (9 mg/kg), and also after pretreatment with the non-competitive N-methyl-D-aspartate antagonist MK-801 (1 mg/kg). Five hours after administration of kainic acid alone, dense expression of HSP-70 mRNA was found within the limbic system, mainly in the hippocampus, piriform and entorhinal cortices, amygdaloid complex, thalamic nuclei, subiculum and in other cortical areas in rats that had shown convulsive behaviour. At 24 h, HSP-70 immunoreactivity was seen in most areas previously expressing HSP-70 mRNA, except the piriform and entorhinal cortices and several ventral nuclei of the amygdaloid complex. Histopathological examination at 24 h revealed marked cell loss in these latter regions and less severe histopathological changes in other areas of the limbic system in brains of convulsive rats. No alterations were apparent in non-convulsive rats. The percentage of rats showing convulsive behaviour with kainic acid was reduced from 74 to 4% following pretreatment with MK-801. In addition, MK-801 inhibited the kainic acid-induced expression of HSP-70 mRNA and protein in certain brain regions, notably the cortex, the pyramidal cell layer of CA1, and discrete thalamic nuclei. However, HSP-70 mRNA induction was sustained in the pyramidal cell layer of CA3, the amygdaloid complex and the subiculum, despite the fact that none of these rats convulsed. MK-801 prevented necrosis in all rats examined except the single rat that had shown convulsive behaviour. These results show that early regional expression of inducible HSP-70 mRNA allows the visualization of regions affected by kainic acid and maps regions inhibited by MK-801. In addition, the results identify brain regions putatively involved in the manifestation of limbic convulsions. Furthermore, these data illustrate that the induction of HSP-70 mRNA is not predictive of cell death or survival.
Expression of inducible heat shock protein-70 mRNA (hsp-70 mRNA) was studied in the rat brain following systemic administration of different convulsant agents: an L-type voltage-dependent calcium channel agonist, (+/-)-BAY K 8644 (BAY-K); the excitotoxic glutamate agonists kainic acid and N-methyl-D-aspartic acid (NMDA); and the GABAA receptor complex antagonists pentylenetetrazole (PTZ) and lindane (gamma-hexaclorocyclohexane). BAY-K induced minimal hsp-70 mRNA expression in the hippocampus of convulsant rats, localized in the dentate gyrus and the pyramidal cell layer of Ammon's horn. Kainic acid treatment in rats, showing severe limbic convulsions, caused intense expression of hsp-70 mRNA and protein (HSP-70). Expression was localized in select cerebral regions, notably the pyramidal cell layer of the hippocampal CA3 field of Ammon's horn and the piriform cortex, and also the subicular complex and the amygdala, and, to a lesser extent, the entorhinal cortex, the pyramidal cell layer of CA1, several thalamic nuclei, and the parietal cortex. In contrast, systemic administration of NMDA, PTZ or lindane led to no detectable induction of hsp-70 mRNA in the rat brain, despite producing convulsions. Histological examination revealed cell injury only following kainic acid treatment. Damage was most apparent in the piriform and entorhinal cortices, pyramidal cell layer of the CA1 field, and cortical amygdaloid nuclei. BAY-K, NMDA, PTZ and lindane did not lead to any observable histopathological changes. These results show that convulsions of different aetiology do not inevitably induce hsp-70 mRNA expression or cell damage. Intense expression of hsp-70 mRNA was generally associated with regions that later showed variable degrees of nerve cell damage, although hsp-70 mRNA expression was not always predictive of subsequent cell death or survival.
The binding of norepinephrine (NE) to plasma proteins of fresh human blood obtained from healthy volunteers was studied by ultrafiltration at different NE concentrations and incubation times at 37 degrees C. At 1.7 nM L-[3H]-NE binding was approximately 25%. The binding was rapid and was not influenced by the incubation time. [3H]-NE could be dissociated from its binding sites by acid precipitation and, after HPLC, showed to be unchanged NE. No difference in NE binding was found between plasma collected in EGTA-GSH or heparin solution. There was no degradation of NE when incubated in plasma at 37 degrees C for 10 h, even without the addition of antioxidants. Therefore, in the present study, binding represented interaction of unchanged NE with plasma proteins. The whole plasma binding was saturable over the range of 0.66 nM to 0.59 mM of NE. Scatchard plot of specific binding revealed high-affinity sites with a Kd of 5.4 nM and a Bmax of 3.9 fmoles.mg-1 protein, and low-affinity sites with a Kd of 2.7 microM and a Bmax of 3.3 pmoles.mg-1 protein. Electrophoretic characterization of NE-binding proteins showed that about 60% of bound NE was associated to albumin, and 20% to prealbumin. NE binding to pure human plasma proteins was also studied using ultrafiltration. Scatchard analyses revealed a single class of very high-affinity binding sites for prealbumin (Kd 4.9 nM), a single class of binding sites for alpha 1-acid glycoprotein (Kd 54 microM) and two classes of binding sites for albumin with high (Kd 1.7 microM) and low (Kd 0.8 mM) affinities respectively. The main results obtained in this study - a) reversibility of NE binding, b) stability of free and bound NE in plasma, c) involvement of the prealbumin as a specific binding protein - point out to a specific transport for NE in human blood plasma.
We have developed a model for the treatment of data of concentration of brain neurotransmitters (particularly serotonin and the catecholamines), in which the changes induced by any given treatment on the neurotransmitter (NT) and its main metabolite (ME) are converted into 2 new parameters named S and U, that are related to the modifications in the synthesis (S) and utilization (U) of the neurotransmitter elicited by the treatment. Using this model we have studied the effect of subconvulsant doses of lindane and other hexachlorocyclohexane isomers (alpha, beta and delta) on brain monoaminergic systems. The results obtained indicate that serotonergic activity is increased in cell bodies (dorsal raphe) as well as in regions rich in nerve terminals after treatment with lindane. Also, the activity of dopaminergic neurons is increased in the substantia nigra. These results are in agreement with the proposed role of lindane as a "picrotoxinin-like" substance acting as an antagonist at the GABA-A receptor complex and thus impairing the inhibitory tone exerted by GABA on a variety of neurons (serotonin in raphe nuclei and dopamine in substantia nigra).
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