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Biomedical subjects

J Karkos

Publications and source records attributed to J Karkos.

At least 19 recordsLinked to original sources

[Immunotherapy of Alzheimer's disease. Results of experimental investigations and treatment of perspectives].

This review discusses the molecular basis and current status of immunotherapeutic strategies for prevention and treatment of Alzheimer's disease (AD). From the molecular view-point AD belongs to the group of conformational diseases. In-vitro studies demonstrated that monoclonal antibodies could modulate the conformation of Abeta peptides with subsequent inhibition of amyloid fibrils formation and aggregation. The efficacy of this approach was then successfully proved in the murine models of AD using predominantly Abeta (42) peptide as immunogen. Immunisation of the young animals essentially prevented the development of beta-amyloid plaques formation and of concomittant neuropathology. Treatment of the older animals markedly reduced the pre-existing AD-like neuropathology. Immunisation was capable of preventing cognitive deficits in the young transgenic animals and improve the memory and behavioural disturbances in the older animals. Measurement of specific murine immunoglobulines in Abeta-vaccinated mice demonstrated a predominant IgG1 and IgG2b isotypes, suggesting a type 2 (T (H)2) T-helper cell immune response, which drives humoral immunity. The intensity of the immune response depended on transgenic animals genotype, dose, frequency and route of immunogen administration. The mechanism of antibodies action in transgenic animals consists of inducing conformational and solubility changes in Abeta peptides as well as their peripheral sink. Lymphocyte proliferation assays using Abeta peptides and splenocytes from vaccinated mice demonstrated that vaccine specifically stimulated T-cell epitopes present within the Abeta-peptide. Extensive quantitative morphological, histochemical and molecular analysis of brain tissue from several species of Abeta-immunised transgenic and non-transgenic animals showed no evidence of autoimmune reaction, complement activation or cross-reaction. No pathological changes were found in all other organs, including the kidney. Neuropathologic examination in a patient treated with vaccine revealed similar vaccination effects as in experimental animals. An aseptic meningo-encephalitis was reported in 5 % of patients included in a clinical trial in which a vaccine containing Abeta (42) peptide (AN1792) was administered intramuscularly. The causal relationship to the vaccine administration cannot be excluded since in transgenic mice a transient microglia activation was seen. However, this relatively infrequent although severe adverse effect points to a possible participation of some actually unknown risk factors in the treated patients. With regard to the rapid progress in biotechnology, especially in the vaccines technology, the development of efficacious and safe immunogens as well as of new vaccination techniques for immuntherapy of AD can be expected in the next future.

Alzheimer Disease↗

[The neurotoxicity of benzodiazepines].

Molecular and clinical effects of benzodiazepines (BDZs) subsequent to their prenatal and postnatal application to animals and man are reviewed. BDZs interactions with neurotransmitter systems and with metabolic processes are presented and analysed. The experimental data obtained after prenatal application indicate that BDZs can cause malformations, functional deficits and long-lasting behavioural anomalies. The prenatal toxicity of BDZs is probably due to their interaction with neurotransmitter systems. Moreover, a BDZs interaction with mechanisms regulating the excitability of cell membranes and protein synthesis could also play a role. The consequences of prenatal exposition to BDZs in man, particularly their behavioural aspects, have not been sufficiently investigated as yet. Postnatal BDZs application can bring about behavioural disturbances and neurological deficits in animals and man. A part of this pathology can be compensated by means of the functional and structural redundance as well as the tolerance. Limitations in functional and morphological reserves of the nervous system can entail severe disturbances, e.g. cardio-respiratory insufficiency. The pharmacological and toxic BDZs effects could partly be due to their interactions with the same molecular mechanisms. These effects can possibly be mediated through BDZs receptors of the central and peripheral type. Regulatory mechanisms for excitability of cell membranes, cellular energetic processes and protein synthesis seem to be particularly sensitive to the BDZs impacts. A close dosis-effect relation for pharmacological and toxic BDZs effects does not seem to exist.

Abnormalities, Drug-Induced↗

[Purinergic neuromodulation].

Adenosine and its nucleotides participate in the regulation of various functions in the nerve system and in some internal organs. These purines are released from a variety of nervous and non-nervous cellular sources. Adenosine receptors are situated extracellular; they mediate some effects of the adenosine and are coupled negatively (A1 adenosine receptors) and positively (A2 adenosine receptors) to adenylate cyclase. The physiological effects of adenosine are inhibitory; they are exerted synaptically and extrasynaptically. The main synaptic modulatory effect is the presynaptic inhibition of the excitatory and inhibitory neurotransmitters release. Postsynaptically adenosine modulate the answer to neurotransmitter effects. ATP functions probably as co-transmitter or transmitter in the non-adrenergic non-cholinergic autonomic neurons. Neuromodulatory and the majority of metabolic adenosine effects are antagonized by methylxanthines. Exogenous substances can influence the molecular mechanisms of adenosine systems; some of the induced pharmacodynamical effects could be of therapeutic interest. Drug-interactions with adenosine systems can cause side effects.

Adenine Nucleotides↗

[Significance of neurotransmitters and neuromodulators in regulating respiration. A. Central aminergic neurons].

Experimental and clinical findings on the role of the central aminergic mechanisms in the control of respiration are reviewed. Dopamine, histamine, norepinephrine and serotonin inhibit spinal cord and cortical neurons; acetylcholine stimulates these neurons. The importance of these pharmacological effects for the control of respiration is not yet clear. Brain stem dopaminergic and serotonergic mechanisms stimulate respiratory neurons; a brain stem noradrenergic mechanism inhibits these neurons. A cholinergic mechanism is involved in the control of central chemosensitivity, and probably of the respiratory periodicity. Histamine stimulates the brain stem neurons, its effects on respiratory neurons have not yet been investigated.

Brain↗

[Morphologic image of structures of the limbic system in rats after prolonged administration of antiepileptics].

Morphological changes in the anatomical structures of the limbic system induced by phenytoin and ethosuximide administered in effective doses for 1, 3 and 6 months in rats were analyzed. The clinical symptoms consisted of some vegetative and behavioral disorders, mostly transitory. Differences in gain of body weight depending on the sex of the animal and the drug administered were observed. The morphological changes in the parenchymal and mesenchymal nervous tissue elements were not specific with regard to their topography or to the type of pathological process. Some morphological differences depending on the drug and its period of administration were observed only in rats treated for 1 and 3 months. The neuropathological picture in rats treated with both drugs for 6 months showed a great similarity. The pathological process in the ganglionic cells had the character of degeneration. Morphological changes in the myelin sheaths were due to edema which appeared to be vasculogenic and situated in the white matter. Focal and diffuse proliferation of cellular glia appeared after administration of both drugs for 1 and 3 months while in those treated for 6 months the degenerative changes were seen. The anatomo-comparative study of the neuropathological picture in the rats treated with both drugs and the morphological picture of the limbic system structures in patients with chronic epilepsy indicates that the drugs examined could play some role in the pathogenesis of the limbic system lesions encountered in epileptics.

Animals↗

[Development of a standard model of nutritional liver injuries which could be used in experimental pharmacology].

This work was undertaken to elaborate a standard model of nutritional liver injury similar to that occurring in the deficiency states in human pathology with regard to functional troubles and morphological lesions. Rats of the Wistar strain were fed two low protein diets (diet A and diet B) containing however the full composition of vitamins and minerals. The diet A showed the most advantages as it provoked mild liver changes; but it proved to induce continuous impairment of the liver function in parallel direction with the parenchymal lesions. The full correlation of the morphological lesions and the functional disturbances observed in experimental animals as well as their intimate ressemblance to the clinical picture and hepatic lesions encountered in the deficiency states in human pathology suggest that present model of nutritional liver injury could be useful in experimental pharmacology.

Age Factors↗