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V Vasilescu

Publications and source records attributed to V Vasilescu.

8 recordsLinked to original sources

Water compartments in living, glycerinated and fixed skeletal muscles of the frog.

The kinetics of water replacement with heavy water (deuterium oxide) in the gastrocnemius and sartorius muscles of the frog under isotonic conditions, studied both gravimetrically and by infrared photometry, reveals three water compartments: (i) non-exchangeable (approximately 80 ml/kg fresh weight), (ii) slowly exchanging (approximately 500 ml/kg fresh weight), (iii) rapid exchanging--extracellular (approximately 200 ml/kg fresh weight). Exposure to both glycerol and glutaraldehyde increases the permeability coefficients and the amount of rapid exchanging water; glutaraldehyde also increases the amount of non-exchangeable water. Approximately 90% of the water is kept in the tissue only by weak intermolecular forces, the energies of which amount to 1 kcal/mol. The amount of non-exchangeable water is equivalent to about six continuous adsorption layers covering the myofilaments. Approximately 70% of the tissue water appears to be replaced by glutaraldehyde during standard fixation.

Aldehydes

Water compartments in the myelinated nerve. III. Pulsed NMR results.

3 experimentally distinct transverse relaxation components of the water in frog sciatic nerve are obtained by Carr-Purcell-Meiboom-Gill technique. The relative weights of these components: approximately 29%; approximately 50%; approximately 21% fit well with water compartments in this tissue as revealed by previous methods.

Animals

Heavy water effects on certain energetic processes in retina.

Heavy water effects on ATP concentration in frog retina were followed up. A substantial (more than 50%) decrease of ATP pools was found in the retina immersed in 2H2O-Ringer as compared to that in H2O-Ringer, which revealed that protons are strongly involved in the cellular energy processes.

Adenosine Triphosphate

The Ranvier node as a chemo-electric pulsatory unit: a study of its structure-functions relations.

The Ranvier node of (Rana temporaria) frog nerve fibres is investigated by electron microscopy, Particular attention is given to the paranodal septate structures and to the extranodal junction of two Schwann cells. An interpretation of the functional meaning of these structures along with a quantitative analysis of the Schwann extranodal junction as regards the diffusion from/to the node is attempted. A 73 per cent reduction of the diffusion coefficient is obtained if the extranodal Schwann cell processes are considered impermeable to the diffusing vectors which indicates a protective role. Only 1 per cent reduction is obtained in the case of excitation-involved cations to which the Schwann cell membrane is considered to be permeable. This indicates the active role of the Schwann cell in the extranodal area ion diffusion, by minimizing the variations in ion concentration near the nodal membrane. Thus the nervous fibre-Schwann cell assembly may be regarded as a balanced pulsatory chemo-electric unit.

Animals