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Biomedical subjects

C Cuppini

Publications and source records attributed to C Cuppini.

At least 19 recordsLinked to original sources

Spatial learning affects immature granule cell survival in adult rat dentate gyrus.

Neurogenesis occurs throughout life in mammalian dentate gyrus. The effect of learning on newborn cell survival was studied in rat. Rats were trained on a hippocampus-dependent spatial learning task by using Morris water maze. Neurogenesis was evaluated by 5-bromo-2'deoxyuridine administered before learning. Several newborn cells expressed the immature neuron marker TOAD-64. The main findings were as follows: (1) the survival of newborn cells was enhanced by learning at early stage of differentiation; (2) the newborn cells saved by learning were mainly located in the rostral part of external blade of granule cell layer and (3) there was a correlation between the actual individual learning and newborn cell survival.

Age Factors↗

Neurogenesis in the adult rat dentate gyrus is enhanced by vitamin E deficiency.

Neurogenesis occurs throughout adult life in rat dentate gyrus. Factors and mechanisms of adult neurogenesis regulation are not well known. Vitamin E deficiency has been found to deliver a neurogenetic potential in rat dorsal root ganglia. To determine whether the role of tocopherols in adult neurogenesis may be generalized to the central nervous system, changes in adult rat dentate gyrus neurogenesis were investigated in vitamin E deficiency. Neurogenesis was quantitatively studied by determination of the density of 5-bromo-2'-deoxyuridine (BrdU)-labeled cells and by determination of the total number of cells in the granule cell layer. The BrdU-labeled cells were immunocytochemically characterized by demonstration of neuronal marker calbindin D28K. The following results were found: (1) the volume of the granule layer increased in controls from 1 to 5 months of age, mainly due to cell density decrease; (2) the volume increased by a similar amount in vitamin E-deficient rats, mainly because of an increase in cell number; (3) BrdU-positive cells were more numerous in vitamin E-deficient rats in comparison to age-matched controls; (4) the increase in proliferated cells was located in the hilus and in the plexiform layer. This study confirms that neurogenesis occurs within adult dentate gyrus and demonstrates that this process is enhanced in vitamin E deficiency. This finding indicates that vitamin E may be an exogenous factor regulating adult neurogenesis.

Animals↗

[Muscle reinnervation in rats treated with vitamin E].

During muscle reinnervation, a transitory phase of polyinnervation occurs. In reinnervated muscles of vitamin E deficient rats, sprouting and polyinnervation are increased with respect to reinnervated controls. In this work, polyinnervation was observed in reinnervated extensor digitorum longus (edl) muscle of rats treated with pharmacological doses of vitamin E. Sciatic nerve was crushed and edl muscle was examined electrophysiologically at 30, 40 and 60 days after denervation. The percentage of polyinnervated cells in controls peaked at 30 days and thus it decreased. In muscles of vitamin E treated rats, the time course of percentage of polyinnervated muscle cells was qualitatively the same, but it was decreased at all times.

Animals↗

Glucose-6-phosphate dehydrogenase activity in dorsal root ganglia of vitamin E-deficient rats.

The effect of dietary vitamin E on the activity of glucose-6-phosphate dehydrogenase (G6PD) and 6-phosphogluconate dehydrogenase (6PGD) was studied in the dorsal root ganglia of rat. One-month-old male Sprague-Dawley rats were randomly assigned to two dietary treatment groups for 2 months. The first received a standard diet supplemented with vitamin E, the second was fed a basal vitamin E-deficient diet. The activity of G6PD was markedly decreased in ganglia of the deficient animals with respect to the controls. On the other hand, the activity of the 6PGD was not significantly altered in the deficient animals. In the red cells the two enzyme activities presented a similar situation and the level of the reduced glutathione in the red cells was not significantly altered by the status of dietary vitamin E. Kinetic analysis with crude extracts of ganglia or partially purified G6PD demonstrated that there was no direct modulatory effect of the vitamin on the enzyme activity. Moreover, nondenaturing gel electrophoresis performed in this study revealed that none of the three G6PD activity bands which appeared on the acrylamide gel were significantly altered in the deficient animals. At present, the mechanism linking the G6PD activity with the status of dietary vitamin E remains unknown. Our results suggest, however, that a reduced NADPH generation produced by a decay of G6PD activity may limit the glutathione peroxidase, a very active enzyme in detoxifying peroxides, and may predispose the nervous tissue to oxidant injury.

Animals↗

Time course of sprouting during muscle reinnervation in vitamin E-deficient rats.

A typical aspect of motoneuron plasticity is the sprouting which occurs during muscle reinnervation, resulting in a transitory multiple innervation of the muscle cells. In order to verify the effect of a decreased protection from free radical attack on the sprouting, the multiple innervation in the extensor digitorum longus muscle, following sciatic nerve crush and regeneration, was studied in vitamin E-deficient rats. Thus, the innervated end-plates and the end-plates with multiple innervation were studied with histochemical and electrophysiological techniques. The percentage of innervated end-plates was similar in both groups at 30 as well as at 60 days after nerve crush. Nevertheless, multiple innervation was found in a larger part of the muscle and it lasted longer in the deficient rats. This finding is discussed in relation to some of the major hypotheses of sprouting; it may be relevant in the treatment of some lesions of peripheral nerve.

Action Potentials↗

Maturation of the spontaneous transmitter release by regenerated nerve endings in vitamin E-deficient rats.

In order to verify the importance of the protection against lipid peroxidation in presynaptic differentiation and maturation, the reappearance and maturation of the spontaneous transmitter release during the extensor digitorum longus muscle reinnervation following a lesion of the sciatic nerve were studied in normal and vitamin E-deficient rats. The study was carried out by intracellular recordings in order to observe the miniature end plate potentials in the reinnervated end plates. In control and vitamin E-deficient rats the first signs of muscle innervation reappeared simultaneously, but in the latter the spontaneous transmitter release mechanism matured more slowly; furthermore, in the long-term, very low mepp frequencies continued to occur. The data suggest a slowing of the transmitter release mechanism maturation and a protracted rearrangement of innervation in the deficient rats.

Animals↗

Effect of ethanol on the spontaneous transmitter release by nerve endings in the process of maturation.

Ethanol stimulates the spontaneous transmitter release from motor nerve endings, as shown by the increase of miniature end plate potential (m.e.p.p.) frequency at the neuro-muscular junction. The stimulation of acetylcholine spontaneous quantal release by ethanol is greater in regenerating than in mature nerve endings. The different effects of ethanol on regenerating nerve endings may be related to changes of chemical-physical membrane properties.

Animals↗

[Effect of ethanol on young nerve endings].

The ethanol changes the quantal spontaneous release of acetylcholine and it affects the reinnervation time course. The effects of ethanol on regenerated nerve endings have been tested. 20 days after crushing sciatic nerve, the m.e.p.p. frequency at the end plate of rat extensor digitorum longus muscle keep in Ringer solution without and with ethanol has been estimated by intracellular recordings. The increase of the m.e.p.p. frequency produced by ethanol is greater in immature, than in normal nerve endings.

Animals↗