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F M Scalzo

Publications and source records attributed to F M Scalzo.

24 records · Page 2Linked to original sources

Chronic haloperidol during development attenuates dopamine autoreceptor function in striatal and mesolimbic brain regions of young and older adult rats.

The effects of chronic haloperidol administration during the prenatal and preweanling periods on dopamine autoreceptor function were examined in striatum, olfactory tubercles, and nucleus accumbens of young (2-3 month) and older (12-13 month) adult rats. In striatum of young and older adult rats that had been chronically treated with haloperidol early in life, as well as in the nucleus accumbens of older adults receiving early chronic haloperidol, gamma-butyrolactone (GBL) did not induce significant increases in dopamine levels. In olfactory tubercles of young adults that had received early chronic treatment with haloperidol, apomorphine pretreatment failed to reverse the observed GBL-induced increase in dopamine levels. Thus, dopamine autoreceptor function appears to be attenuated in rats chronically treated with haloperidol during early development, in contrast to reports of autoreceptor supersensitivity following neuroleptic treatment in adulthood.

4-Butyrolactone↗

Ontogenetic alterations in the effects of food and/or maternal deprivation on 5-HT, 5-HIAA and 5-HIAA/5-HT ratios.

Sprague-Dawley rat pups were deprived of food and/or the dam in experiment 1 for 24 h prior to sacrifice at 4, 10, 16 and 22 days postnatally and analysis of 5-HT, 5-HIAA and 5-HIAA/5-HT ratios in cortex, forebrain minus cortex, and brainstem. Deprivation was observed to increase indoles and their ratio early in life, with the most pronounced effects being observed in early maturing caudal brain regions of neonatal rat pups. These neurochemical effects of deprivation gradually diminished during ontogeny, becoming virtually absent by the age of weaning. In neonates, both deprivation from the dam and food appeared to influence indoleamine levels, whereas absence of food appeared to be primarily influential in older preweanling animals. Ambient temperature during the treatment period did not influence indoles or their ratio in 4- and 10-day-old rat pups, but did begin to influence indoles at 16 days postnatally, an age when homeothermia begins to develop. In experiment 2, it was observed that significant increases in indoleamines were not seen until 16 h of deprivation in 4-day-old rat pups deprived of food, and the dam for 0, 2, 4, 16 or 24 h prior to sacrifice. Possible functional implications of these deprivation-related increases in indoleamines early in ontogeny are discussed.

Animals↗

Prenatal haloperidol exposure: effects on brain weights and caudate neurotransmitter levels in rats.

Monoamines may exert a trophic effect on early brain development. To assess the role of dopamine in prenatal neurological development of the rat, haloperidol (HAL) was given in daily 2.5 or 5 mg/kg SC doses to dams over gestational days 6 to 20. This treatment regime did not enhance fetal mortality, but did produce reliable, if modest, stunting of the body and brain weight of offspring. The 5 mg/kg HAL dose consistently reduced offspring brain weight to roughly 90% of controls. This effect was probably permanent, in that it was seen throughout maturation and in adults as late as 140 days of postnatal age. Appropriate controls showed that this effect was not due to drug-induced reductions in food intake, to the presence of HAL in maternal milk, or to behavioral abnormalities in HAL-exposed dams. These effects had, at best, modest regional specificity, in that most brain regions were affected, independently of degree of dopaminergic innervation. Closer investigation of HAL effects on the striatum suggested that this permanent weight reduction was not accompanied by alterations in striatal concentrations of monoamines, monoamine metabolites, amino acids, choline, acetylcholine, DNA, protein, or water. It is concluded that prenatal HAL does stunt growth, but that this effect may not involve a direct drug influence restricted to the fetal dopamine system in the brain.

Acetylcholine↗

Behavioral and neurochemical effects of prenatal methylenedioxymethamphetamine (MDMA) exposure in rats.

MDMA is a hallucinogenic drug that is used by the general public as a recreational drug of abuse. The neurobehavioral consequences of prenatal MDMA exposure are unknown. Groups of pregnant rats were gavaged with 0, 2.5, or 10 mg/kg MDMA during gestation on alternate gestational days 6-18. Gestational duration, litter size, neonatal birth weights and physical appearance at birth were unaffected by MDMA treatments. Pregnancy weight gain was significantly reduced by MDMA treatment. Progeny growth, maturational parameters (eye opening and incisor eruption times), surface righting reflex, swimming performance, forelimb grip strength, milk-induced behaviors, passive avoidance behavior, figure-8 maze activity over 48 hours, the density of brain serotonin (5-HT) uptake sites, and brain 5-HT and 5-hydroxyindoleacetic acid (5-HIAA) levels were unaffected by MDMA treatments. Olfactory discrimination on postnatal days (PND) 9-11 was enhanced in both male and female MDMA-treated progeny, while negative geotaxis (PND 7-10) was delayed in female pups. In contrast to progeny, MDMA caused dose-dependent decreases in 5-HT and 5-HIAA levels in discrete brain areas of the dam. It is concluded that prenatal exposure to MDMA at the levels used here produces only subtle behavioral alterations in developing rats. The dam is more at risk for MDMA-induced 5-HT depletion than is the conceptus.

3,4-Methylenedioxyamphetamine↗

The ontogeny of behavioral sensitization to phencyclidine.

Repeated exposure of adult rats to a variety of psychoactive compounds can result in altered behavioral responsiveness to later exposures depending on the dose, route, and frequency of administration and time of testing. The ontogeny and mechanism of this altered responsiveness are not well understood. To determine when behavioral sensitization to phencyclidine (PCP) occurs, neonatal and early developmental exposure effects of PCP were assessed on later behavioral responsiveness to a PCP challenge. Rat pups were injected daily for nine days beginning on either postnatal days (PNDs) 1 or 22 with 0.9% saline, 5.0 or 10.0 mg/kg PCP-HC1 (s.c.). Ten days following the last injection, rats were given one of the following drug challenges: 0.9% saline, 5.0 or 10.0 mg/kg PCP-HC1 (s.c.). Locomotor activity, ataxia, and several other behaviors were measured for 1 h beginning 2-3 min after the challenge injection. Two major findings emerged from these studies. First, pups treated subchronically with PCP on PNDs 1-9 did not exhibit any difference in behavioral sensitivity to a PCP challenge when tested on PND 19 compared to subchronically treated saline controls. In contrast, pups subchronically treated with PCP on PNDs 22-30 exhibited an increased sensitivity to the behavioral effects of a PCP challenge. These data suggest that PCP has age-dependent exposure effects that occur sometime after the first postnatal week and that result in an enhanced behavioral responsiveness to PCP later in life.

Animals↗

Retinoic acid exposure on gestational days 11 to 13 impairs swallowing in rat offspring.

We have previously reported that exposure to 10 mg/kg of all-trans-retinoic acid (RA) daily on the 11th, 12th, and 13th days of rat gestation is lethal to all fetuses so exposed, due to an inability to suckle [R.R. Holson et al., Neurotoxicol Teratol 19 (1997) 347-353]. Because this lethal RA effect could be due to any of a variety of causes, from olfactory problems in locating the nipple to a motor problem in sucking or swallowing, we performed the following experiment. Albino dams were exposed to 10-mg/kg RA or vehicle daily over gestational days (GDs) 11 to 13. On the afternoon of GD 21 all pups were delivered by c-section. Tongue cannulae were inserted into the oral cavity of these offspring, and used to infuse a solution of condensed milk directly into the mouth. During and after each of four infusions, the behavioral response to the infusion (typically rolling and curling) was recorded. Controls responded well to this procedure, typically swallowing all milk so infused. In contrast, almost no RA-exposed neonates were able to swallow milk infused into the oral cavity. In such cases the milk simply dribbled out of the mouth, while the stomach was found to be empty at autopsy. However, the RA-treated animals did seem aware that milk was entering their mouths, because they showed a normal behavioral response to milk infusion. We conclude that GD 11-13 retinoid lethality is due to motor not sensory problems in the control of swallowing.

Animals↗