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Biomedical subjects

C R Goodlett

Publications and source records attributed to C R Goodlett.

At least 19 recordsLinked to original sources

Neonatal ethanol exposure impairs eyeblink conditioning in weanling rats.

Eyeblink conditioning depends on an identified brainstem-cerebellar circuit and may be useful in functional studies of early cerebellar damage produced by neurotoxicants. The present study asked whether binge-like neonatal ethanol exposure that damages the cerebellum would also result in eyeblink conditioning deficits. On postnatal day (PND) 23 to PND24, three groups of Long-Evans rat pups were tested for eyeblink conditioning: (1) ETOH, a group that received intragastric administration of 5.25 g/kg/day of ethanol on PND4 through PND9 via artificial rearing; (2) GC, a gastrostomy control group that received calorically matched milk formula on those days; and (3) SC, suckle controls that were reared normally with their dams. Eyeblink conditioning was severely impaired in the ethanol-treated group relative to the GC and SC groups, which did not differ. This impairment did not reflect sensory, motor, or motivational effects of ethanol treatment, because startle responses to the auditory conditioned stimulus and reflexive eyeblink responses to the unconditioned stimulus did not differ across the three treatment groups. These results suggest that neonatal binge ethanol exposure disrupted brain development in a manner that selectively impaired associative processes involved in eyeblink conditioning, consistent with alcohol-induced damage to the brainstem-cerebellar circuit necessary for this form of learning.

Animals

Alcohol-induced Purkinje cell loss with a single binge exposure in neonatal rats: a stereological study of temporal windows of vulnerability.

Previous research has shown that the early neonatal period of rats is one of enhanced vulnerability to cerebellar Purkinje cell loss associated with binge-like alcohol exposure, with a prominent sensitive period during the first neonatal week. In this study, an unbiased count of the total number of Purkinje cells was obtained using the stereological optical fractionator, in groups of rats given a single binge-like alcohol exposure either during the most vulnerable neonatal period [postnatal day (PD) 4] or during a later, less vulnerable period (PD 9). Using artificial rearing methods, rats were given 6.6 g/kg of alcohol either on PD 4 or on PD 9, delivered as a 15% (v/v) solution in milk formula on two consecutive feedings of the designated day. Control groups included an artificially reared gastrostomy control and a normally reared suckle control. The mean peak blood alcohol concentrations were not different between the PD 4 and PD 9 alcohol groups, averaging 374 and 347 mg/dl, respectively. The rats were perfused on PD 27. A uniform random sample of sections was obtained from serial frozen sections through the cerebellum, stained with thionin, and Purkinje cells were counted from a uniform random sample of locations on each section with the three-dimensional optical fractionator. The number of Purkinje cells in the suckle control and gastrostomy control groups did not differ from each other, averaging 3.94 (+/- 0.19) and 3.58 (+/- 0.22) x 10(5) cells, respectively. Binge exposure on PD 4 induced significant cell loss (mean of 2.05 +/- 0.20 x (10(5) Purkinje cells), whereas binge exposure on PD 9 did not induce significant Purkinje cell loss (3.70 +/- 0.39 x 10(5) Purkinje cells). These findings confirm that a single neonatal binge alcohol exposure produces pathological Purkinje cell loss, provided that it occurs during the period of enhanced vulnerability coinciding with the early stages of dendritic outgrowth.

Animals

Binge-like alcohol exposure of neonatal rats via intragastric intubation induces both Purkinje cell loss and cortical astrogliosis.

Binge-like alcohol exposure in neonatal rats on postnatal days 4 to 9 via artificial rearing results in a well-documented transient astrogliosis in the cerebral cortex. A recent study, which replicated the astrogliosis using artificial rearing, found that alcohol administered via daily exposure cycles in a vapor inhalation chamber on postnatal days 4 to 9 failed to elicit the effect, thus suggesting that the gliosis was an interactive effect of the artificial rearing administration and not specific to alcohol. The present study evaluated the effects in an intragastric intubation model that replicated the dosing parameters of the artificial rearing while avoiding the stress of surgery and extended maternal separation. In coronal frozen sections through parietal cortex labeled immunohistochemically for glial fibrillary acidic protein, the pups exposed to alcohol by intubation had a significantly greater density of glial fibrillary acidic protein-positive astrocytes per unit volume, compared with littermate controls intubated with a maltose-dextrin formula; alcohol also induced fibrillary hypertrophy of the labeled astrocytes. In the cerebellum, alcohol induced a significant reduction in Purkinje cell number as determined using the optical disector method. These outcomes extend previous findings that neonatal binge alcohol exposure induces acute cortical astrogliosis and Purkinje cell loss, and confirm that the alcohol-induced astrogliosis is not an artifact of artificial rearing.

Alcoholic Intoxication

Therapeutic motor training increases parallel fiber synapse number per Purkinje neuron in cerebellar cortex of rats given postnatal binge alcohol exposure: preliminary report.

Because therapeutic approaches to fetal alcohol effects in humans have been rare, this study explored the rehabilitative effect of complex motor training on an animal model of binge drinking in the third trimester of human pregnancy. Neonatal alcohol exposure induces significant and permanent reductions in Purkinje and granule cell number accompanied by impaired motor behavior in rats. The purpose of this study was to determine: (1) whether the motor skill impairment caused by exposure to alcohol in the early postnatal period could be ameliorated by the learning of a set of complex motor tasks that had been demonstrated to cause synaptogenesis in the cerebellar cortex; and (2) the extent to which cerebellar neurons in alcohol-exposed (AE) rats exhibit synaptic plasticity. The AE group was given 4.5 g/kg/day of ethanol from postnatal days 4 to 9 via an artificial rearing procedure producing a mean peak blood alcohol level of 257 mg/dl. Control groups consisted of a gastrostomy control (GC) group, that received an isocaloric mixture of maltose/dextrin instead of ethanol, and a suckle control (SC) group, that was reared normally by dams. At approximately 6 months of age, animals from the three groups were assigned either to a rehabilitation condition (RC; that received 10 days of training on the motor tasks) or to an inactive condition (IC; where rats stayed in isolation in their cages). Although SC rats were significantly faster to complete the course in the first 5 days of training, there were no differences in ability to perform among animals from all three groups-SC, GC, and AE--at the end of the training period. Unbiased stereological techniques were used to obtain estimates of the number of parallel fiber synapses/Purkinje cell within the cerebellar paramedian lobule. Results showed that the RC rats from the SC and AE groups had significantly more synapses/Purkinje cell than corresponding IC animals. These data demonstrate that rehabilitative intervention (complex motor training) can improve motor performance impaired by postnatal alcohol exposure and that surviving Purkinje neurons retain the capacity for synaptic plasticity.

Alcoholic Intoxication

Behavioral deficits induced by bingelike exposure to alcohol in neonatal rats: importance of developmental timing and number of episodes.

The importance of the timing and number of episodes of bingelike alcohol exposure in neonatal rats on subsequent behavioral outcomes was evaluated with a parallel bar task and a spatial conditional alternation task. Different groups of Sprague-Dawley rat pups were exposed to alcohol delivered via artificial rearing procedures either on postnatal Days (PD) 4 and 5, on PD 8 and 9, or on both PD 4/5 and 8/9 (Combined), producing daily peak blood alcohol concentrations around 400 mg/dl. Controls included an artificially reared group and a normally reared group. Exposure during PD 4/5 produced significantly more severe motor deficits and significantly more severe reductions in cerebellar and brainstem weights than did exposure on PD 8/9. Combined exposure produced greater deficits on these measures than either of the limited exposures. Significant deficits in the acquisition rates for conditional alternation were found only with the Combined exposure, although both the PD 8/9 and Combined groups committed significantly more within-trial errors. All three alcohol treatments produced significant and comparable reductions in forebrain weight. The type and severity of behavioral and neural deficits induced by neonatal bingelike alcohol exposure depend on the timing and number of exposures.

Alcoholic Intoxication

Temporal determinants of neonatal alcohol-induced cerebellar damage and motor performance deficits.

The timing and duration of alcohol exposure was manipulated in neonatal rats by using a "binge" model of alcohol exposure during the "third trimester equivalent." Groups of Sprague-Dawley rats were exposed to binges via artificial rearing on postnatal days (PD) 4-9, on PD 4-6 or on PD 7-9, which produced peak blood alcohol concentrations representative of human alcohol abusers (approximately 250 mg/dl). Motor performance was assessed using parallel bar traversal on PD 42-44, and total Purkinje cell numbers were determined by using the 3-dimensional stereological optical fractionator method. PD 4-9 binge exposure induced the most severe Purkinje cell loss (to 68% of controls) and PD 4-6 binge exposure also produced significant loss (to 86% of controls), whereas PD 7-9 binge exposure had no significant effect (98% of controls). Unexpectedly, all three alcohol treatments resulted in significant impairments on the parallel bar task. The time of exposure during the early neonatal period in rats strongly influences the degree of Purkinje cell loss, but Purkinje cell loss is not necessary for the alcohol-induced motor performance deficits. Both neuromorphological and neurobehavioral assessments are needed for a full description of alcohol-related neurodevelopmental disorders.

Animals

Sex differences in vulnerability to developmental spatial learning deficits induced by limited binge alcohol exposure in neonatal rats.

The two main objectives of this study were (1) to replicate previous findings that 6 days of binge-like exposure to alcohol during the neonatal brain growth spurt induces significant place learning deficits in juvenile rats and (2) to determine whether more limited (3-day) binge-like exposure during the neonatal period induces place learning deficits and whether the effects depend on the developmental timing of the exposure. Using artificial rearing methods and a split-litter experimental design, groups of male and female neonatal rats were given binge-like exposure to 4.5 g/kg/day of ethanol in milk formula either on Postnatal Days (PD) 4-6, PD 7-9, or PD 4-9, which yielded mean peak blood alcohol concentrations of 230-260 mg/dl. Controls included an artificially reared gastrostomy control group (GC) given an isocaloric milk formula diet on PD 4-9 and a suckle control group reared normally by lactating dams. Acquisition of place learning in the Morris spatial navigation task was trained for 6 consecutive days beginning on PD 26; a probe trial was given at the end of the sixth day. As expected, both males and females given alcohol on PD 4-9 had significant deficits in acquisition and probe trial performance relative to SC and GC groups. Males given the PD 7-9 exposure had significant place learning deficits which were as severe as with the full 6-day exposure. The PD 4-6 exposure in males produced only a nonsignificant trend toward slower acquisition. Females were not significantly affected by either 3-day exposure. The latter phase of the neonatal brain growth spurt appears to constitute a sex-specific period of enhanced vulnerability to alcohol-induced developmental spatial learning deficits.

Animals

NMDA prevents alcohol-induced neuronal cell death of cerebellar granule cells in culture.

Neuronal cell loss is one of the most debilitating effects of alcohol exposure during development of the nervous system. In this study, primary cultures of neuronal cells (cerebellar granule cells) were used to examine mechanisms of alcohol-induced neuronal cell death. Previously, we established that (Pantazis et al., Alcohol Clin Exp Res 17:1014-1021, 1993): (1) alcohol exposure caused neuronal cell death in cultures of cerebellar granule cells and this cell loss was both time-dependent and dose-dependent; and (2) the vulnerability of cerebellar granule cells to alcohol-induced loss changed with the length of time the cells were in culture before initiating alcohol exposure-that is, younger cultures (1 day in vitro) were much more susceptible to alcohol-induced neuronal cell death than older cultures (4 or 7 days in vitro). The primary goal of the present study was to examine the potential role of the NMDA receptor in alcohol-induced death of cerebellar granule cells in culture. Experiments were performed to test the hypothesis that the alcohol-induced death of cerebellar granule cells can be prevented or reduced by NMDA treatment. Our results indicate that stimulation of the NMDA receptor has a neuroprotective effect and can significantly reduce the alcohol-induced neuronal cell death of newly established cerebellar granule cell cultures. This neuroprotective effect of NMDA is blocked by 2-amino-5-phosphonovalerate, a competitive inhibitor of the NMDA receptor, confirming that this neuroprotective effect is mediated via the NMDA receptor. This is the first report that alcohol's neurotoxic effect can be ameliorated by activation of the NMDA receptor.

Animals

Transient cortical astrogliosis induced by alcohol exposure during the neonatal brain growth spurt in rats.

The astrocyte response to central nervous system injury induced by neonatal alcohol exposure was evaluated using radioimmunoassay and immunocytochemistry of glial fibrillary acidic protein (GFAP). Rat pups were exposed to alcohol on postnatal days 4 through 9 via artificial rearing. Alcohol solutions were administered as one of the following treatments: 10.2% (v/v) in two feedings (4.5 g/kg/day), 5.1% (v/v) in four feedings (4.5 g/kg/day), or 2.5% (v/v) in 12 feedings (6.6 g/kg/day), producing mean blood alcohol concentrations (BACs) of approximately 300, 180, and 50 mg/dl, respectively. Littermates were included as gastrostomy controls (GC) and suckle controls (SC). On postnatal day 10, GFAP concentration increased as a function of BAC, and the 10.2% alcohol treatment significantly and dramatically increased GFAP in the cortex (325% of SC). GFAP immunocytochemistry revealed frequent loci of heavily labeled reactive astrocytes surrounding small cortical blood vessels in the 10.2% group. In addition, a generalized increase in GFAP immunoreactivity was present in the deep layers of the cortex in all alcohol groups, marked by astrocytic fibrillary hypertrophy and increased density. Three-dimensional counts in layer V of parietal cortex using confocal microscopy indicated that the density of GFAP-labeled astrocytes of the 10.2% group was twice that of controls. The layer V gliosis was observable even at low BACs, while gliosis around the vasculature occurred only with high BACs. By postnatal day 15, the astroglial effects were no longer evident. These transient astroglial reactions likely constitute an important aspect of cortical pathophysiology resulting from binge alcohol exposure during the brain growth spurt of the third trimester equivalent.

Analysis of Variance

Vulnerability of cerebellar granule cells to alcohol-induced cell death diminishes with time in culture.

This study examined the effects of alcohol exposure on the viability of cerebellar granule cells in culture. Continuous alcohol exposure, starting 1 day after the cultures were established, significantly reduced granule cell numbers, even with a single day of exposure to an alcohol concentration as low as 100 mg/dl. The depletion of cerebellar granule cells by alcohol was concentration-dependent (greater loss of cells at higher alcohol concentrations) and duration-dependent (greater loss of cells at longer exposure durations). The loss of granule cells also depended on the number of days the granule cells were in culture before alcohol exposure. Alcohol was significantly more effective in reducing the cell numbers of newly established granule cell cultures (1 day in vitro) compared with older cultures (4 or 7 days in vitro). Cell cycle analysis established that the cerebellar granule cells did not proliferate in culture, indicating that alcohol exposure did not reduce cell numbers by interfering with cell proliferation in this system. Instead, alcohol-induced killing of the granule cells was the most likely mechanism to account for the depletion of granule cells in vitro. Granule cell cultures are a useful in vitro model system to study the cellular and molecular aspects of neuronal cell depletion associated with fetal alcohol exposure. The potential role of the N-methyl-D-aspartate receptor in this alcohol-induced neuronal cell death is discussed.

Animals

Dissociation of spatial navigation and visual guidance performance in Purkinje cell degeneration (pcd) mutant mice.

Spatial learning in rodents requires normal functioning of hippocampal and cortical structures. Recent data suggest that the cerebellum may also be essential. Neurological mutant mice with dysgenesis of the cerebellum provide useful models to examine the effects of abnormal cerebellar function. Mice with one such mutation, Purkinje cell degeneration (pcd), in which Purkinje cells degenerate between the third and fourth postnatal weeks, were evaluated for performance of spatial navigation learning and visual guidance learning in the Morris maze swim-escape task. Unaffected littermates and C57BL/6J mice served as controls. Separate groups of pcd and control mice were tested at 30, 50 and 110 days of age. At all ages, pcd mice had severe deficits in distal-cue (spatial) navigation, failing to decrease path lengths over training and failing to express appropriate spatial biases on probe trials. On the proximal-cue (visual guidance) task, whenever performance differences between groups did occur, they were limited to the initial trials. The ability of the pcd mice to perform the proximal-cue but not the distal-cue task indicates that the massive spatial navigation deficit was not due simply to motor dysfunction. Histological evaluations confirmed that the pcd mutation resulted in Purkinje cell loss without significant depletion of cells in the hippocampal formation. These data provide further evidence that the cerebellum is vital for the expression of behavior directed by spatial cognitive processes.

Age Factors

Forebrain ischemia induces selective behavioral impairments associated with hippocampal injury in rats.

Two groups of rats were tested on a variety of motor and cognitive tasks after either 10 minutes of two-vessel occlusion forebrain ischemia (n = 8) or sham operative procedures (n = 6). Histological injury was absent in the sham-operated group. In the ischemic group, hippocampal injury was restricted to field CA1, while damage in the neocortex and caudoputamen was sparse. Motor tests performed on postoperative days 18 and 28 revealed no significant differences between the ischemic and sham-operated groups. Retention performance of a radial maze discrimination task was impaired, with a significant but transient increase in both working and reference memory errors. Passive avoidance acquisition and retention were not significantly affected, although conclusions concerning the utility of this task must be reserved because of variability in the behavior of the sham-operated rats. Morris maze spatial navigation (place learning) and open-field activity were insensitive to treatment group. These functional results are consistent with the observed histological injury and what is known about hippocampal injury and behavior, and they provide further guidance for the development of neurological assays appropriate for discriminating outcome from forebrain ischemia in rats.

Animals

Regional differences in the timing of dendritic outgrowth of Purkinje cells in the vermal cerebellum demonstrated by MAP2 immunocytochemistry.

Detailed, within-subjects Golgi analyses of regional differences in cerebellar Purkinje cell dendritic development are impractical due to the capriciousness of that technique. Immunocytochemical labeling of microtubule-associated protein 2 (MAP2) was used to reveal the dendritic development of Purkinje cells, and indicated marked differences in the timing of initial outgrowth of Purkinje cell dendrites for different lobules in the developing rat cerebellar vermis. In particular, an early maturing region of Purkinje cell dendritic outgrowth (lobules I, II, IX and X and along the primary fissure), and a late maturing region (distal lobule VI, lobule VII and dorsal lobule VIII) were documented.

Aging

New approaches to research on the long-term consequences of prenatal exposure to alcohol.

As the summary presentation of a symposium on prenatal alcohol-induced brain damage and long-term postnatal consequences, this paper proposes the establishment of two main research priorities--to begin to correlate long-term behavioral effects with alterations in underlying neural substrates, and to explore the mechanisms of neuroteratogenicity. To reach these goals, three objectives are described. First, animal and human research must become more interrelated. Second, experimental observations should be integrated into formal models that incorporate both neural structure and function. Third, researchers should choose well-defined dependent measures that are derived from models of brain function based on modern concepts of cognitive neuroscience. Examples of neuropsychological tests that may serve as the bases for structure/function relationships are presented. Incorporating these objectives into future research will facilitate understanding of the fundamental issues concerning prenatal alcohol exposure and will begin to provide the bases for rational intervention or treatment.

Alcohol Drinking

Cell population depletion associated with fetal alcohol brain damage: mechanisms of BAC-dependent cell loss.

Neuronal death is one of the most serious consequences of alcohol exposure during development. Studies described in this paper used a neonatal rat model to address factors affecting neuronal death following alcohol exposure during the period of rapid brain growth, and relate them to possible mechanisms of damage. The profile of blood alcohol concentrations (BACs) is an important variable influencing both brain growth deficits and neuronal death--a smaller daily dose of alcohol can be more damaging than a larger daily dose, if it is consumed in a binge-like pattern that produces relatively higher BACs. Alcohol exposure for a single day also can be damaging, producing both brain growth deficits and neuron loss, if high BACs are obtained. Various brain regions and different neuronal populations within a given brain area exhibit different degrees of vulnerability. Some neuronal loss clearly is a function of cell death due to direct effects of alcohol, while other deficits may be due to either primary or secondary effects of the alcohol insult. In the cerebellum, a maturational or metabolic factor also appears to be involved with alcohol-induced neuronal death. Immunocytochemical studies using a monoclonal antibody against microtubule-associated protein 2 (MAP2) indicated that cerebellar lobules containing Purkinje cells that are in the process of extending dendrites are ones that are more vulnerable to alcohol than lobules containing Purkinje cells that mature later. Alcohol exposure during brain development may be producing neuron attrition in multiple ways, including disruption of membrane integrity, inhibition of protein synthesis or other alterations such as lipid solubility, or by disruption of cytoskeletal elements.

Animals

Teratogenic effects of alcohol on brain development.

There is convincing evidence that alcohol is teratogenic both in humans and animals and that its most devastating effects are on the developing brain. However, much information is still needed to determine the circumstances that increase the risk and severity of fetal alcohol-induced brain damage and to identify the mechanisms underlying such damage. Animal research has been used to address these issues because, for the most part, they are unapproachable experimentally in humans. In the past, the rather restricted focus of research into the teratology of alcohol has led to several theoretical biases. Recent findings conflict with these biases. Alcohol-induced damage to the developing brain encompasses a longer developmental time-frame, affects more cell populations, occurs at lower levels of exposure, produces greater numbers of permanent effects, and is modulated by more factors than was initially suggested by earlier teratological studies.

Abnormalities, Drug-Induced

Alz-50 immunoreactivity in the neonatal rat: changes in development and co-distribution with MAP-2 immunoreactivity.

Alz-50 is a monoclonal antibody that recognizes pathological alterations in Alzheimer's disease. It has recently been noted also to mark some subplate neurons in human infants under the age of 2 years. We now report that Alz-50 recognizes many neurons in the normal neonatal rat in a pattern that changes with development. Immunoreactivity decreases substantially in intensity as the rat matures. This immunoreactivity co-distributes with microtubule-associated protein-2 (MAP-2) immunoreactivity in terms of topography, cellular localization and changes over the developmental time-course. This observation raises the possibility of exploring cytologic triggers that may lead to re-expression of Alz-50 immunoreactivity in aging and in pathological conditions.

Alzheimer Disease

Long-term deficits in water maze spatial conditional alternation performance following retrohippocampal lesions in rats.

The effects of large bilateral retrohippocampal lesions on long-term performance of conditional spatial alternation, incorporating a strong working memory component, were examined using a T-maze task motivated by swim-escape. The lesions, which included entorhinal cortex, subiculum, pre- and parasubiculum and invaded the molecular layer of the dentate gyrus, completely eliminated the previously acquired conditional alternation learning, and performance failed to recover with 40 days of testing. These findings support the contention that retrohippocampal structures are an important and necessary component of the neural circuitry mediating working memory.

Animals