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At least 253 records · Page 14Linked to original sources

Effect of partition coefficient, permeability surface product, and radioisotope on the signal-to-noise ratio in PET functional brain mapping: a computer simulation.

In this work we use a computer simulation to estimate the magnitude of improvement in the signal-to-noise ratio of PET functional brain mapping studies as a function of partition coefficient and permeability surface product for O-14, F-17, and O-15 labeled flow tracers. A model for signal-to-noise ratio is derived from the Kety model for inert diffusible blood flow tracers. The results of the simulation suggest that moderate increases in partition coefficient and permeability surface product compared with water would lead to an increase in signal-to-noise ratio of a factor of about 3.

Artifacts↗

Whole-brain functional MR imaging activation from a finger-tapping task examined with independent component analysis.

BACKGROUND AND PURPOSE: Independent component analysis (ICA), unlike other methods for processing functional MR (fMR) imaging data, requires no a priori assumptions about the hemodynamic response to the task. The purpose of this study was to analyze the temporal characteristics and the spatial mapping of the independent components identified by ICA when the subject performs a finger-tapping task. METHODS: Ten healthy subjects performed variations of the finger-tapping task conventionally used to map the sensorimotor cortex. The scan data were processed with ICA, and the temporal configuration of the components and their spatial localizations were studied. The locations with activation were tabulated and compared with locations known to be involved in the organization of motor functions in the brain. RESULTS: Components were identified that correlated to varying degrees with the conventional boxcar reference function. One or more of these components mapped to the sensorimotor cortex, supplementary motor area (SMA), putamen, and thalamus. By means of ICA components, sensorimotor cortex, supplementary motor area, and superior cerebellar activation were identified bilaterally in 100% of the subjects; thalamus activation was contralateral to the active hand in 80%; and putamen activation was contralateral to the active hand in 60%. CONCLUSION: ICA processing of multislice fMR imaging data acquired during finger tapping identifies the sensorimotor cortex, SMA, cerebellar, putamen, and thalamic activation. ICA appears to be a method that provides information on both the temporal and spatial characteristics of activation. Multiple task-related components can be identified by ICA, and specific activation maps can be derived from each separate component.

Brain↗

The use of somatosensory evoked responses in carotid surgery for monitoring brain function.

One of the problems in carotid surgery is the intra-operative detection of brain ischemia. None of the methods applied so far have been successful. Experience has shown that the results were unsatisfactory. Experimental studies have detected a strong correlation between regional cerebral blood flow and somatosensory evoked potentials. At the Surgical Clinic of the University of Cologne, 60 patients had continuous intraoperative monitoring of somatosensory evoked responses during carotid endarterectomy. Our previous experiences suggest that monitoring of somatosensory evoked responses during carotid endarterectomy provides a suitable method for the registration of brain function. Furthermore it is possible to pinpoint the causes of ischemia and to immediately begin treatment based on the causes of ischemia.

Aged↗

Functional brain development in infants: elements of an interactive specialization framework.

One future direction for cognitive development research involves a closer integration with our knowledge about the developing brain. I present a framework for analyzing and interpreting postnatal functional brain development in human infants. Three specific hypotheses contribute to this framework, within which a variety of phenomena associated with the neural basis of perception and cognition in normal and abnormal development can be characterized.

Brain↗

The effects of cocaine on nonhuman primate brain function are age dependent.

The effects of acute intravenous (i.v.) cocaine (COC) on several complex brain functions were studied in rhesus monkeys at 1.5, 3 and 10-11 years of age. Subjects performed several operant tasks (for food) that were used to model learning, short-term memory, color and position discrimination, and motivation, and disruption of performance of these tasks was used to quantitate drug effect. Drug effects were age dependent: The youngest subjects were 3 to 10 times less sensitive than the oldest. Presuming the observed behavioral effects of cocaine were caused primarily via its interaction with dopamine (DA) systems, changes in sensitivity to its effects with age are likely a reflection of the functional status of the DA system. These data, along with preliminary data on levels of DA transporters, suggest that the age-related differences in sensitivity to cocaine lie in, 'downstream' from, the dopamine receptor.

Aging↗

Preserving brain function during neonatal asphyxia.

Presently, there is no intervention that can be used that preserves brain function in hypoxic-ischemic encephalopathy. This review covers the interventional strategies that are available to the health care worker at present and suggests a different approach to this frustrating problem. The proposal is to use clinically available interventions and combine them into an effective intervention strategy. The merits of each intervention is discussed.

Antioxidants↗

The event-related optical signal: a new tool for studying brain function.

This paper presents an overview of a new method for the non-invasive measurement of brain function, the event-related optical signal (EROS). This technique is based on measures of the optical properties of cortical brain tissue, which change while the tissue is active. These changes are likely to be due to changes in light scattering, and are very rapid and localized, being related to phenomena occurring within or around the neuronal membrane. EROS, therefore yields images of cortical activity that combine spatial specificity (i.e. they can be related to patches of tissue less than a cubic centimeter in size) with temporal resolution (i.e. they depict the time course of the neural activity in the cortical areas under measurement). A limitation of this technique is its reduced penetration into the head (less than 3-5 cm). EROS appears to be a suitable technique for studying the time course of activity in selected cortical areas, and for providing a bridge between hemodynamic and electrophysiological imaging methods.

Brain↗

Steroid hormones use non-genomic mechanisms to control brain functions and behaviors: a review of evidence.

Progestins, estrogens, androgens, and corticosteroids are capable of modifying brain functions and behaviors by mechanisms that involve the classic genomic model for steroid action. However, experimental evidence indicates that some responses to steroid hormones use non-classical, non-genomic mechanisms. This paper reviews the evidence that steroids can bind to receptors in the plasma membrane, activate cell signaling pathways, and regulate responses on a time scale of seconds or a few minutes. The existence of these alternative regulatory pathways for steroid hormones should make endocrinologists and neurobiologists change how they think about steroid hormones. It is no longer valid to assume that minute-to-minute changes in steroid concentrations are not regulating biologically important, short-term responses, or that the only steroids with biological functions are the ones that bind with high affinity to intracellular steroid receptors.

Androgens↗

Reduced prefrontal and increased subcortical brain functioning assessed using positron emission tomography in predatory and affective murderers.

There appear to be no brain imaging studies investigating which brain mechanisms subserve affective, impulsive violence versus planned, predatory violence. It was hypothesized that affectively violent offenders would have lower prefrontal activity, higher subcortical activity, and reduced prefrontal/subcortical ratios relative to controls, while predatory violent offenders would show relatively normal brain functioning. Glucose metabolism was assessed using positron emission tomography in 41 comparisons, 15 predatory murderers, and nine affective murderers in left and right hemisphere prefrontal (medial and lateral) and subcortical (amygdala, midbrain, hippocampus, and thalamus) regions. Affective murderers relative to comparisons had lower left and right prefrontal functioning, higher right hemisphere subcortical functioning, and lower right hemisphere prefrontal/subcortical ratios. In contrast, predatory murderers had prefrontal functioning that was more equivalent to comparisons, while also having excessively high right subcortical activity. Results support the hypothesis that emotional, unplanned impulsive murderers are less able to regulate and control aggressive impulses generated from subcortical structures due to deficient prefrontal regulation. It is hypothesized that excessive subcortical activity predisposes to aggressive behaviour, but that while predatory murderers have sufficiently good prefrontal functioning to regulate these aggressive impulses, the affective murderers lack such prefrontal control over emotion regulation.

Affect↗

How accurate is magnetic resonance imaging of brain function?

Since it was introduced a decade ago, functional magnetic resonance imaging (fMRI) has come to dominate research on the human brain. However, fMRI maps are based on secondary metabolic and hemodynamic events that follow neuronal activity, and not on the electrical activity itself. Therefore, the representation provided by fMRI cannot be assumed a priori to be exact. The accuracy of these maps depends on the spatial extent of the metabolic and hemodynamic changes induced by neuronal activity, and the role played by the vasculature in converting these changes to signals detected by magnetic resonance imaging. Significant progress has been made in both areas, suggesting that it is possible to obtain both spatially accurate and quantitative data on brain function from magnetic resonance methodologies.

Brain↗

Biochemical and neuropsychological effects of elevated plasma phenylalanine in patients with treated phenylketonuria. A model for the study of phenylalanine and brain function in man.

Phenylketonuria provides a human model for the study of the effect of phenylalanine on brain function. Although irreversible mental retardation is preventable through newborn diagnosis and dietary phenylalanine restriction, controversy exists regarding the effects of increased concentrations of phenylalanine in older patients. We have studied ten older, treated, phenylketonuric patients using a triple-blind, multiple trials, crossover design. Each patient was tested at the end of each of three 1-wk periods of high or low phenylalanine intakes. Tests included a repeatable battery of neuropsychological tests, analysis of plasma amino acids, and measurement of urine amino acids, phenyl organic acids, dopamine, and serotonin. In all 10 patients plasma phenylalanine rose (900-4,000 microM). In 9 of 10 patients there was an inverse relationship between plasma phenylalanine and urine dopamine excretion. When blood phenylalanine was elevated, these patients had prolonged performance times on neuropsychological tests of higher but not lower integrative function. Urinary serotonin fell during phenylalanine loading in six patients. The concentration of phenylacids in the urine was not proportional to the plasma phenylalanine at concentrations below 1.5 mM. In one patient, neither performance time nor dopamine excretion varied as blood phenylalanine rose or fell. We interpret these data as follows: blood phenylalanine above 1.3 mM impairs performance on neuropsychological tests of higher integrative function, this effect is reversible, and one mechanism may involve impaired biogenic amine synthesis.

Adolescent↗

Role of the supraoptic decussation in the development of asymmetry of brain function in the chicken.

The supraoptic decussation plays an important role in the development of asymmetry of brain function for visual discrimination learning in the chicken. Lesioning the decussation on day 2 has no effect on the asymmetry normally revealed by unilaterally treating either the left or right forebrain hemisphere with cycloheximide on day 4 of life. However, the lesion removes the asymmetry revealed by cycloheximide treatment on day 8 and reverses that revealed by treatment on day 10, albeit to a lesser extent. The asymmetry of learning performance between the left and right eyes present in untreated chickens tested monocularly in the second week of life is also removed by lesioning the supraoptic decussation. Thus, in the first week of life functional asymmetry is present but not dependent on left-to-right side coupling via the supraoptic decussation. The difference between lesioning during the first and second week of life may relate to the relative degree of maturation in the supraoptic decussation.

Age Factors↗

Improvement of brain function in hemodialysis patients treated with erythropoietin.

To evaluate the effects of recombinant human erythropoietin (rHuEPO) on brain function, 15 chronic hemodialysis patients were studied by event-related P300, stimulus-related evoked potentials, and trailmaking before (hematocrit 22.7%) and after rHuEPO (hematocrit 30.6%). P300 peak latency elicited by a tone discrimination paradigm improved (391 before vs. 366 ms after; Cz = vertex; P less than 0.01) confirming beneficial effects on cerebral cognitive processing. P300 amplitude (13.6 vs. 15.8 microV; P = 0.06) and trailmaking tended to improve (55 vs. 43 s). P300 measures were influenced by low hemoglobin levels before rHuEPO (P less than 0.01), suggesting that severe anemia may contribute to uremic brain dysfunction. Furthermore, decrease of stimulus-related auditory brainstem I-V interpeak latency (4.28 before vs. 4.17 ms after; P less than 0.05) and increase of somatosensory N20/P25 amplitude (4.8 vs. 7.0 microV; P less than 0.05) pointed to improvement of sensory pathways by mechanisms unrelated to cognition. Brain dysfunction in chronic hemodialysis patients may, beside other factors, in part be caused by severe anemia and can be improved by rHuEPO treatment.

Anemia↗

The role of neural activity in synaptic development and its implications for adult brain function.

In much of the developing nervous system, electrical activity guides the formation of neural connections, with lasting effects on adult brain function. Epilepsy, a defect in neuronal excitability, might result from abnormal patterns of activity in the young brain. Many connections are organized by selective stabilization of synapses when they are activated simultaneously on the same postsynaptic cell during a sensitive period in early life. This process often involves calcium entry through the N-methyl-D-aspartate (NMDA) subtype of glutamate receptor. The magnitude of the current passed by this receptor depends on its subunit composition, which varies with age and brain region. Although receptor configurations that admit large calcium currents are permissive of synaptic plasticity, they also increase neural vulnerability to excitotoxic cell death. In most regions of developing brain, activity that can drive NMDA receptors initially is low and increases with maturation. Thus, the replacement of NMDA receptors that flux large calcium currents during early periods of synaptic organization with NMDA receptor subtypes that flux less calcium as synapses become more active, more effective, and less plastic allows maturing neurons to maintain optimal levels of intracellular calcium in the face of drastic developmental changes in their inputs. We have proposed that this transition in NMDA receptors from high to low calcium permeabilities is itself activity dependent. This idea is supported by data showing that many synaptic proteins, including receptor subunits, can be regulated by activity. Cultured cerebellar granule neurons require NMDA receptor stimulation for survival and differentiation, which may replicate the activation provided by the arrival of mossy fiber innervation in vivo. In these cultures, chronic depolarization and glutamate or NMDA treatment induces more mature NMDA receptor subunit expression patterns and function and also increases the expression of several gamma-aminobutyric acid type A (GABAA) receptor subunits, changing that receptor's function. In addition, evidence from in vivo studies indicates that synaptic maturation itself may depend on NMDA receptor activity. During the formation of topographic connections between the retina and superior colliculus (SC) of young rats, chronic local application of the competitive NMDA receptor antagonist +2-amino-5-phosphonovalerate (D-APV) blocks the normal developmental up-regulation of NMDA receptor subunit 1 (NR1) mRNA and nitric oxide synthase activity, as well as maturation of calcium and calmodulin-dependent kinase distribution, activity, and substrate phosphorylation. Together, these recent molecular findings suggest that chronic seizure disorders could result from any of a variety of early developmental events. Any disturbance that locally perturbs regulation of NMDA receptors or the temporal correlations in synaptic activity that drive these receptors has the potential to alter the normal development of local circuitry and the critical balance of inhibition and excitation required to contain seizure activity.

Aging↗

Neural modeling, functional brain imaging, and cognition.

The richness and complexity of data sets acquired from PET or fMRI studies of human cognition have not been exploited until recently by computational neural-modeling methods. In this article, two neural-modeling approaches for use with functional brain imaging data are described. One, which uses structural equation modeling, estimates the functional strengths of the anatomical connections between various brain regions during specific cognitive tasks. The second employs large-scale neural modeling to relate functional neuroimaging signals in multiple, interconnected brain regions to the underlying neurobiological time-varying activities in each region. Delayed match-to-sample (visual working memory for form) tasks are used to illustrate these models.

Journal Article↗

[Long-term correction of brain function. Prospects of immunologic approaches].

Among various approaches to long-term correction of the highest functions of the brain there are two methods that are particularly promising. These included: 1) induction of autoantibodies against the enzymes involved in the metabolism of neuroregulators by means of immunization of respective heterologous enzymes; 2) immunization by covalent conjugates of monomolecular neurotropic compounds and neuropeptides with antigen carriers. The investigations of both methods are reviewed and illustrated in experiments on albino rats during alcoholization and some other processes of pathological behavior formation. Evidence is provided for that behavior can be corrected for several months or longer.

Alcoholism↗

[New approaches in correcting disorders of higher integrative brain functions in the pharmacotherapy of arterial hypertension with propranolol].

In experiments on rats it is found that propranolol in a dose of 2 mg/kg has a negative effect on higher integrative functions of the brain. Nootropics--pyracetam (200 mg/kg), AKF-94 (20 mg/kg), PIR-87-6-O (50 mg/kg) and actoprotector bemityl (40 mg/kg)--normalized orientative-trying behavior, memory, and emotionality of the animals. A possible mechanism of the drug action and prospects of their clinical application are discussed.

Animals↗

A single photon emission computerised tomography study of regional brain function in elderly patients with major depression and with Alzheimer-type dementia.

The uptake, at rest, of 99mTc-exametazime into different brain regions was compared using SPECT for 20 elderly subjects with major depressive disorder, 20 with Alzheimer-type dementia, and 30 age-matched normal volunteers. Uptake was referred to calcarine-occipital cortex as a reference sensory area. Cross-sectional differences between the three groups were highly statistically significant, but reflected primarily the reductions in cortical uptake in the Alzheimer group. A detailed comparison of depressed patients and controls identified decrements in anterior cingulate, temporal and frontal cortex and in caudate and thalamus in men only. These decrements were correlated with impairment of performance on a trail-making task, but were also associated with continuing treatment with antidepressants or benzodiazepines. However, most depressed patients had quantitatively normal scans for posterior parietal association cortex, and this suggests that SPECT may find a limited role in the differential diagnosis of depression and dementia. The reduced brain function in some depressed patients may parallel the findings from studies of brain structure in elderly depressives; there was between good outcome at 6-18 months and increased tracer uptake in subcortical areas.

Age of Onset↗