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Chainllie Young

Publications and source records attributed to Chainllie Young.

14 recordsLinked to original sources

Spatiotemporal evolution of apoptotic neurodegeneration following traumatic injury to the developing rat brain.

Closed head injury to the developing rat brain causes an acute excitotoxic lesion and axonal disruption at the impact site followed by a delayed pattern of apoptotic damage at various distant sites. Using an electromagnetic impact device to deliver a precisely controlled degree of mechanical deformation to the P7 infant rat skull, we studied the distribution of distant apoptotic lesions and the sequence and time course with which these lesions evolve following relatively mild closed head injury. The first major wave of apoptotic neurodegeneration occurred at 8 h postimpact in the retrosplenial cortex and pre- and parasubiculum. The next major wave occurred in the 16- to 24-h interval and was localized to the anterior thalamic nuclei. A third wave was detected at 36 to 48 h in the mammillary nuclei. We propose that the first and second waves were triggered by injury to a specific fiber tract, the corpus callosum/cingulum bundle that conveys reciprocal connections between the anterior thalamic nuclei and retrosplenial/pre- and parasubicular neurons. This fiber tract passes through a zone of maximum mechanical strain, as measured by tagged MRI. The third wave affecting mammillary neurons occurred because the principal synaptic targets of these neurons are the anterior thalamic neurons that were destroyed in the second wave of degeneration. Prevention of these apoptotic waves of brain damage is a realistic goal in view of the long delay between the impact event and onset of apoptotic degeneration.

Animals↗

ACTH therapy for Taiwanese children with West syndrome -- efficacy and impact on long-term prognosis.

To study the efficacy of adrenocorticotrophic hormone (ACTH) in treating Taiwanese children with West syndrome (WS) and the impact on long-term prognosis, 66 patients with WS (54 symptomatic and 12 cryptogenic) were collected from 1987 to 1998 in a medical center in Taiwan. A total of 53 patients were enrolled in this study and treated with ACTH at the dosage of 2.5IU/kg daily for 2 weeks with gradual tapering in subsequent 6 weeks. Immediate responses, side effects of ACTH and long-term outcomes of the patients including seizure and developmental status were evaluated during the average follow-up period of 35.6 months. The spasm-free percentage after one or two courses of ACTH treatment was 77.4%. Nine (17%) patients encountered severe side effects such as major infections, which prompted us to stop ACTH. At the end of follow-up, 22 (41.5%) patients had intractable seizures but 25 (47.2%) patients remained seizure free with or without anticonvulsants. The ACTH-responders had a better chance of remaining seizure free (P<0.05). Regarding the long-term developmental outcome, 12 (22.6%) patients had normal or borderline development; two thirds of them belonged to the crytpogenic group. Six (11.3%) patients expired and 24 (45.3%) were severely retarded; all but one of them belonged to the symptomatic group. The prognosis of WS heavily relies on whether a patient is cryptogenic or symptomatic (P<0.001). Good response to therapy or short treatment lag did not favorably affect the developmental outcomes of the symptomatic cases. We conclude that the long-term outcomes of WS in Taiwan were generally poor despite of treatment. Only cryptogenic patients had favorable prognosis. For symptomatic patients, ACTH therapy may be used to control the spasms and decrease the incidence of subsequent epilepsy, but it will not improve developmental outcome. Considering a high percentage of severe side effects in our study, a lower dosage of ACTH with adequate therapeutic efficacy but less side effects should be considered for treating Taiwanese children with WS.

Adrenocorticotropic Hormone↗

Neuroapoptosis in the infant mouse brain triggered by a transient small increase in blood alcohol concentration.

Exposure of infant rats or mice to ethanol on a single occasion during the period of rapid synaptogenesis can cause extensive apoptotic neurodegeneration throughout the developing CNS. Prior studies were designed to assess the effects of large doses of ethanol (comparable to heavy binge drinking), whereas in the present study, we sought to determine what magnitude and duration of blood ethanol elevation are required to trigger a minimal neuroapoptotic response. We found that a rise in blood ethanol to a level in the range of 50 mg/dl for a duration of 30 to 45 min was sufficient to trigger a significant neuroapoptosis response deleting approximately 20,000 neurons per infant mouse brain. Since blood ethanol elevations in this range are commonly achieved by humans in a social drinking context, a mother with only a moderate drinking habit might expose her fetus to such elevations on multiple occasions during pregnancy.

Alcohol-Induced Disorders, Nervous System↗

Role of caspase-3 in ethanol-induced developmental neurodegeneration.

Acute, transient exposure to ethanol causes a widespread pattern of caspase-3 activation and neuroapoptosis in the developing rodent brain. To determine whether caspase-3 activation is an essential step in ethanol-induced developmental neuroapoptosis, we treated homozygous caspase-3 knockout mice or wild-type mice on postnatal day 7 with an apoptosis-inducing dose of ethanol and examined the brains at appropriate survival times for evidence of apoptotic neurodegeneration. In caspase-3 knockout mice, the cell death process evolved more slowly than in wild-type mice, and morphological changes observed were not those typically associated with apoptosis. However, neuronal cell counts performed 2 weeks post-treatment revealed that the extent of neuron loss was similar in wild-type and caspase-3-deficient mice. We conclude that absence of functional caspase-3 alters the time course and morphological characteristics of the neurodegenerative process but does not prevent ethanol-induced neuron death.

Alcohol-Induced Disorders, Nervous System↗

Potential of ketamine and midazolam, individually or in combination, to induce apoptotic neurodegeneration in the infant mouse brain.

Recently, it was reported that anesthetizing infant rats for 6 h with a combination of anesthetic drugs (midazolam, nitrous oxide, isoflurane) caused widespread apoptotic neurodegeneration in the developing brain, followed by lifelong cognitive deficits. It has also been reported that ketamine triggers neuroapoptosis in the infant rat brain if administered repeatedly over a period of 9 h. The question arises whether less extreme exposure to anesthetic drugs can also trigger neuroapoptosis in the developing brain. To address this question we administered ketamine, midazolam or ketamine plus midazolam subcutaneously at various doses to infant mice and evaluated the rate of neuroapoptosis in various brain regions following either saline or these various drug treatments. Each drug was administered as a single one-time injection in a dose range that would be considered subanesthetic, and the brains were evaluated by unbiased stereology methods 5 h following drug treatment. Neuroapoptosis was detected by immunohistochemical staining for activated caspase-3. It was found that either ketamine or midazolam caused a dose-dependent, statistically significant increase in the rate of neuroapoptosis, and the two drugs combined caused a greater increase than either drug alone. The apoptotic nature of the neurodegenerative reaction was confirmed by electron microscopy. We conclude that relatively mild exposure to ketamine, midazolam or a combination of these drugs can trigger apoptotic neurodegeneration in the developing mouse brain.

Animals↗

Apoptotic neurodegeneration induced by ethanol in neonatal mice is associated with profound learning/memory deficits in juveniles followed by progressive functional recovery in adults.

Administration of ethanol to rodents during the synaptogenesis period induces extensive apoptotic neurodegeneration in the developing brain. This neurotoxicity may explain the reduced brain mass and neurobehavioral disturbances in human Fetal Alcohol Syndrome (FAS). Here, we report binge-like exposure of infant mice to ethanol on a single postnatal day triggered apoptotic death of neurons from diencephalic structures that comprise an extended hippocampal circuit important for spatial learning and memory. The ethanol exposure paradigm yielding these neuronal losses caused profound impairments in spatial learning and memory at 1 month of age. This impairment was significantly attenuated during subsequent development, indicating recovery of function. Recovery was not associated with increased neurogenesis, suggesting plastic reorganization of neuronal networks compensated for early neuronal losses. We hypothesize that neuroapoptotic damage in homologous regions of human brain underlies cognitive deficits in FAS and the human brain of FAS victims has a similar capacity to effect functional recovery.

Animals↗

Excitotoxic versus apoptotic mechanisms of neuronal cell death in perinatal hypoxia/ischemia.

Hypoxic/ischemic (H/I) neuronal degeneration in the developing central nervous system (CNS) is mediated by an excitotoxic mechanism, and it has also been reported that an apoptosis mechanism is involved. However, there is much disagreement regarding how excitotoxic and apoptotic cell death processes relate to one another. Some authors believe that an excitotoxic stimulus directly triggers apoptotic cell death, but this interpretation is largely speculative at the present time. Our findings support the interpretation that excitotoxic and apoptotic neurodegeneration are two separate and distinct cell death processes that can be distinguished from one another by ultrastructural evaluation. Here we review evidence supporting this interpretation, including evidence that H/I in the developing CNS triggers two separate waves of neurodegeneration, the first being excitotoxic and the second being apoptotic. The first (excitotoxic) wave destroys neurons that would normally provide synaptic inputs or synaptic targets for the neurons that die in the second (apoptotic) wave. Since neurons, during the developmental period of synaptogenesis, are programmed to commit suicide if they fail to achieve normal connectivity, this explains why neuroapoptosis occurs following H/I in the developing CNS. However, it does not support the interpretation that H/I directly triggers apoptotic neurodegeneration. Rather, it documents that H/I directly triggers excitotoxic neurodegeneration, and apoptotic neurodegeneration ensues subsequently as the natural response of developing neurons to a specific kind of deprivation - loss of the ability to form normal synaptic connections.

Animals↗

Bilateral central retinal vein occlusion with multiple intracerebral hemorrhage in a neonate.

Central retinal vein occlusion and intracerebral hemorrhage are rare diseases during infancy and are both related to venous thrombosis. We present the case of a full-term male hydrops infant without specific neurologic symptoms initially but later demonstrating bilateral central retinal vein occlusion and intracerebral hemorrhage. We conclude that routine funduscopic examination in high-risk newborns should be seriously considered.

Cerebral Hemorrhage↗

Ethanol-induced apoptosis in the developing visual system during synaptogenesis.

PURPOSE: Ethanol is known to have deleterious effects on the human fetal nervous system (fetal alcohol syndrome), including components of the visual system, but only modest progress has been made in understanding these effects. The authors have recently demonstrated that, during the period of synaptogenesis, a single episode of ethanol intoxication lasting for several hours triggers a massive wave of apoptotic neurodegeneration in several regions of the developing rat or mouse forebrain. The present study was undertaken to determine to what extent the developing visual system is vulnerable to the apoptogenic effects of ethanol. METHODS: Infant rats and mice at ages from birth to 21 days were treated subcutaneously with a single dose of ethanol or with two doses, 2 hours apart, on a single day. Blood alcohol levels were determined, and the retinas and visual centers in the brain were examined by light and electronmicroscopy at various times from 4 to 24 hours after treatment. RESULTS: Retinal ganglion cells and neurons in the lateral geniculate nucleus, superior colliculus, and visual cortex were all highly susceptible to ethanol's apoptogenic action, the period of peak sensitivity being postnatal days 1 to 4 for ganglion cells and 4 to 7 for the other visual neurons. A transient elevation of blood alcohol to approximately 120 mg/dL was sufficient to activate the cell death program in visual neurons. CONCLUSIONS: During synaptogenesis, a single ethanol intoxication episode triggers apoptotic cell death of neurons at all levels of the visual system from retina to the visual cortex.

Alcohol-Induced Disorders, Nervous System↗

Agyria-pachygyria: clinical, neuroimaging, and neurophysiologic correlations.

Agyria-pachygyria complex is a disorder of neuronal migration and organization. Patients suffer either motor or intellectual retardation. We report our experiences of 10 patients with agyria-pachygyria complex and evaluate their clinical features, electroencephalography, and evoked potentials. Of nine electroencephalography examinations, five patients demonstrated characteristically high-amplitude fast activity. One of nine patients had an abnormal brainstem auditory-evoked potential. Three of seven patients had abnormal goggled visual-evoked potential. Six patients received somatosensory-evoked potential examinations, and five of these were abnormal, including four with prolonged central conduction times. Of the 10 patients, eight survived with variable intellectual and motor retardation; two died of sepsis. Patients with grades 1-4 agyria-pachygyria had high incidences of somatosensory-evoked potential abnormalities and also suffered worse neurologic outcomes. Normal brainstem auditory-evoked potential but abnormal cortical somatosensory-evoked potential components and prolonged central conduction time in these patients indicate that agyria-pachygyria is a supratentorial disease. We conclude that somatosensory-evoked potential examination is supplemental to neuroimaging in predicting the neurologic prognosis of patients with agyria-pachygyria.

Adolescent↗

Schwartz-Jampel syndrome: report of one case.

We report a case of Schwartz-Jampel syndrome in a 2-year-9-month-old Taiwanese girl and her clinical response to treatment. She had a history of generalized muscle stiffness and hypertrophy since birth. Clinical and electromyographic myotonia were noted. Other clinical features included short stature, unusual facial appearance, ophthalmoplegia, elbow joint contractures, and developmental hip dysplasia. Muscle stiffness and myotonia improved after infusion of lidocaine. She then received oral mexiletine and the symptoms significantly improved.

Child, Preschool↗

Hypopituitarism associated with neurofibromatosis type 1: report of one case.

Neurofibromatosis type 1 (NF-1) is an autosomal dominant disorder with a wide range of clinical manifestations. Hydrocephalus unrelated to brain tumors is rare in neurofibromatosis type 1. A 16-year-and-6-month-old girl with primary amenorrhea was found to have hydrocephalus associated with neurofibromatosis type 1. After endocrine and brain imaging study, the cause of primary amenorrhea was proven to be hypopituitarism due to hydrocephalus. She entered puberty soon after relieving the hydrocephalus with a ventriculoperitoneal shunt. However, arrest of puberty was noted three months later. Therefore estrogen replacement therapy was given. Early detection of hydrocephalus was difficult in this patient. From the experience of our case, MRI study of brain is indicated in patient with neurofibromatosis type 1 and endocrine dysfunction.

Adolescent↗