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Biomedical subjects

K G Go

Publications and source records attributed to K G Go.

At least 19 recordsLinked to original sources

Dextran-magnetite particles: contrast-enhanced MRI of blood-brain barrier disruption in a rat model.

Dextran-magnetite particles (DMP) were studied for their use as a MR contrast agent to visualize lesions with a blood-brain barrier (bbb) disruption. A freezing injury to the rat cerebral cortex was used as a model of bbb disruption. The biodistribution of iv-injected DMP was studied using atomic absorption spectrophotometry, electron microscopy, and MRI. One hour after injection, focal accumulation of the particles in capillary endothelial cells could be demonstrated in the freezing lesion. Despite the observation that the relaxivity of DMP in vivo appears to be less well pronounced than that in vitro, the MR imaging studies show that DMP can be used to visualize bbb disruption with adequate contrast.

Animals

Specific MR imaging of human lymphocytes by monoclonal antibody-guided dextran-magnetite particles.

Human lymphocytes were labeled with biotinylated anti-lymphocyte-directed monoclonal antibodies, to which streptavidin and subsequently biotinylated dextran-magnetite particles were coupled. This labeling resulted in a strong and selective negative contrast enhancement of lymphocyte suspensions at 2.0 T, caused predominantly by the specific increase of R2 with a small but significant specific increase of R1. The R1 was found to decrease with increasing field strength. The immunolabeling procedure described here may be used for the selective signal depletion of target cells in MR imaging.

Antibodies, Monoclonal

The pathogenesis of cerebral gliomatous cysts.

In this study, the authors have examined the mechanism of the formation of tumor cysts. Cyst fluid samples were obtained during surgery and by percutaneous aspiration from 22 patients with cystic cerebral gliomas. The concentration of protein was measured in the cyst fluid and blood plasma. Analysis of brain tumor cyst fluids revealed that plasma proteins constituted a major fraction (92%) of cyst fluid proteins; moreover, the protein fractions occurred in concentrations (relative to the plasma concentrations) that were around 50-fold of those in cerebrospinal fluid. This strongly indicates blood-brain barrier disruption. Evidence from computed tomographic and magnetic resonance imaging scans as well as from electron microscopy of tumor cyst walls suggests the transition of spongy edematous tissue in or around tumors into the contents of associated cysts. Pathophysiologically, blood-brain barrier breakdown is inherent to the occurrence of vasogenic brain edema. It is therefore plausible that the development of cysts is related to peritumoral vasogenic edema.

Albumins

Evaluation of results of temporal bone resection.

The results of 16 cases of temporal bone resection were evaluated. The resections, 12 of which were total and 4 partial, had mostly been performed for squamous cell carcinoma invading the temporal bone. Five patients in whom the intervention was considered radical and not followed by irradiation, were alive and well 9 years or more later. The significance of postoperative radiotherapy was demonstrated in 3 patients who were alive and in good health 9 years or more later, although histological examination of resection margins showed residual tumour. Eight patients died 10 months to 5 1/3 years after operation, 6 of whom from recurrence, one from radiation necrosis of the temporal lobe of the brain, and one from cerebrovascular occlusion. Histologically, squamous cell carcinoma was found significantly more among the patients who died from recurrence than among those still living.

Adult

Passage of DMP across a disrupted BBB in the context of antibody-mediated MR imaging of brain metastases.

To study the possible application of monoclonal antibody/dextran-magnetite conjugates in specific MR imaging of brain metastases, both components of these conjugates were tested for their ability to penetrate the endothelium during conditions of local blood-brain barrier (BBB) impairment. The passage of dextran-magnetite particles (DMP) across a disrupted blood-brain barrier was studied in a freezing lesion model using electron microscopy (EM) and MR imaging. One hour after i.v. injection, focal accumulation of DMP in capillary endothelial cells within the freezing lesion was shown by EM. In parallel with this, MR imaging indicated a strong contrast enhancement in the lesion. EM observations showed that the particles were still present in the endothelial cells four and eight hours after injection. The passage of an anti-small cell lung cancer (SCLC) monoclonal antibody across the endothelium of intracerebrally xenografted human SCLC was studied using immunohistological techniques. It was found that passage across endothelial cell occurred in the tumor within four hours after injection.

Animals

An improved synthesis of carbon-11 labeled acetoacetic acid and an evaluation of its potential for the investigation of cerebral pathology by positron emission tomography.

1-11C-acetoacetic acid was synthesized by carboxylation of the acetone carbanion. Purification was carried out using HPLC. The product was obtained with a radiochemical yield of up to 58%, corrected for decay, in a total preparation time of 30 min. The distribution of 1-11C-acetoacetic acid after injection into adult Wistar rats and cats was investigated by PET. When the tracer was injected into cats, 3 weeks after inflicting a unilateral freezing lesion upon the brain, accumulation of 1-11C-acetoacetic acid in the ipsilateral brain hemisphere was observed.

Acetoacetates

Qualitative and quantitative examination of rat and human fetal dopaminergic grafts.

This study was carried out as a prelude to possible implantations of cultured human fetal dopaminergic grafts in parkinsonian patients. Examination of fetal rat ventral mesencephalon tissue for morphology, viability, and dopamine content showed an optimal gestational age for neural grafting in rat experiments of approximately 17 days. Moreover, fetal rat ventral mesencephalon tissue was cultured, and neural dopaminergic cells were observed in cell culture in 4 (11%) out of 36 ventral mesencephalon specimens derived from 15- to 21-day-old rat fetuses. Human fetal donor material from elective abortions was examined for morphology and cell culture possibilities. In 48 curettements, fetal tissue was seen in 34 (71%) of these, resulting in 17 (50%) cultures containing dopaminergic cells. Both fetal rat and human cell cultures were continued for approximately 8 weeks and appeared to remain positive upon immunocytochemical dopamine staining.

Animals

Proton-nuclear magnetic resonance relaxation times in brain edema.

Proton relaxation times of protein solutions, bovine brain, and edematous feline brain tissue were studied as a function of water concentration, protein concentration, and temperature. In accordance with the fast proton exchange model for relaxation, a linear relation could be established between R1 and the inverse of the weight fraction of tissue water. This relation also applied to R2 of gray matter and of protein solutions. No straightforward relation with water content was found for R2 of white matter. Temperature-dependent studies indicated that in this case, the slow exchange model for relaxation had to be applied. The effect of macromolecules in physiological relevant concentrations on the total relaxation behavior of edematous tissue was weak. Total water content changes predominantly affected the relaxation rates. The linear relation may have high clinical potential for assessment of the status of cerebral edema on the basis of T1 and T2 readings from MR images.

Animals

Positron emission tomography study of 11C-acetoacetate uptake in a freezing lesion in cat brain, as correlated with 11C-tyrosine and 18F-fluorodeoxyglucose uptake, and with proton magnetic resonance imaging.

Using 11C-ACAC, 11C-TYR, and 18FDG as tracers, brain uptake of these substrates was studied in cat brain with a freezing lesion, by PET, at 1 day to 3 weeks after injury. Also MRI was conducted. Although the MRI scans depicted the morphological changes, such as edema formation, the PET studies of the brain uptake of substrates visualized the pattern of changes, which in the fresh lesion was largely governed by impairment of the BBB, but in the chronic lesion they were indicative of the proliferation of reactive cells in the process of tissue repair and edema resolution.

Acetoacetates

Positron emission tomographical studies of 1-11C-acetoacetate, 2-18F-fluoro-deoxy-D-glucose, and L-1-11C-tyrosine uptake by cat brain with an experimental lesion.

In cat brain with a freezing injury, the uptake of 1-11C-acetoacetate (11C-ACAC), 2-18F-fluorodeoxy-D-glucose (18FDG), and L-1-11C-tyrosine (11C-TYR) was monitored by positron emission tomography following intravenous administration of the tracers, at 1 day, and 1-3 weeks after the injury. The development and further course of the cold-induced oedema was monitored by magnetic resonance imaging. In the fresh (1 day old) lesion there was increased uptake of 11C-ACAC, probably due to release of the restrictive influence of the blood-brain barrier upon passage of the substance into brain. The uptake of 18FDG, which normally occurs by carrier-mediated transport at the barrier, was decreased in the fresh lesion, probably as a result of damage of the carrier mechanism. In the 3 week old lesion 18FDG uptake was still reduced, and 11C-ACAC uptake was still increased, although barrier function to Evans blue had recovered. It is suggested, that the increased 11C-ACAC uptake in the chronic lesion bears upon the proliferation of macrophages and reactive glial cells in the lesion. This is supported by the increased uptake of 11C-TYR in the 2 weeks old lesion, while in the fresh lesion 11C-TYR uptake was unchanged.

Acetoacetates

Interaction of metallic neurosurgical implants with magnetic resonance imaging at 1.5 Tesla as a cause of image distortion and of hazardous movement of the implant.

Metallic implants used in neurosurgery, comprising vascular clips, shunt valves, and metallic surgical wire for spondylodesis, induce distortion of magnetic resonance images. The image deformation usually pertains to small areas of signal suppression in its immediate vicinity, when the implant is non-ferromagnetic. The image deformation is more pronounced when the implant is ferromagnetic, but more important, as is the case with some strongly ferromagnetic aneurysm clips, the magnetic field may cause movement of the clip. Therefore, it is advisable to refrain from magnetic resonance imaging in patients harbouring intracranial aneurysm clips, as the movement in the magnetic field may be hazardous.

Animals

Rat striatal cation shifts reflecting hypoxic-ischemic damage can be predicted by on-line impedance measurements.

We investigated the earliest time at which irreversible damage takes place after hypoxia-ischemia in the Levine preparation of rats. In 60 rats anesthetized with chloral hydrate and maintained at one of three body temperatures, we unilaterally ligated the left common carotid artery and placed electrodes in the striatum to measure impedance (reflecting the extracellular space) during hypoxia, recovery, and/or cardiac arrest. We measured blood gases and pH at regular intervals during hypoxia in 47 rats and assessed blood-brain barrier function with Evans blue and tissue damage using Na+:K+ ratios. Shortly after hypoxia, impedance normalized in 24 rats without brain damage (normal Na+:K+ ratios, 4 hours of recovery). Sustained elevation of striatal impedance during recovery in six rats was related to an elevated Na+:K+ ratio and a disrupted blood-brain barrier. Damage was not obviously related to blood gases, pH, or the net reduction of the extracellular space during hypoxia. Hypothermia in 17 rats prevented impedance changes, and no striatal damage was found. Thus, irreversible brain damage very likely occurs during or very shortly after hypoxia. Persistent reduction of the extracellular space indicates tissue damage and can be used to monitor potential in vivo therapeutic measures.

Animals

Nuclear magnetic resonance relaxation in experimental brain edema: effects of water concentration, protein concentration, and temperature.

Proton relaxation times T1 and T2 of macromolecular solutions, bovine brain tissues, and experimental cat brain edema tissues were studied as a function of water concentration, protein concentration, and temperature. A linear relation was found between the inverse of the weight fraction of tissue water and the spin-lattice relaxation rate, R1, based on a fast proton exchange model for relaxation. This correlation was also found for the spin-spin relaxation rate, R2, of gray matter samples and macromolecular solutions at low concentrations. Concentrated solutions of protein-water samples showed an enhanced relaxation due to viscosity effects. The T2 of white matter was considerably lengthened with elevated water concentration, but showed no straightforward relation with the total tissue water content. The relaxation times of all samples increased with temperature, supporting the assumption of fast proton exchange in the model for relaxation. This was not found for white matter, in which T2 decreased with increasing temperature, which indicated that intermediate or even slow exchange was present. The relation found between relaxation times and tissue water content can be used to predict the amount of and/or increase in tissue water due to water-elevating processes such as edema.

Animals

Protective effect of fasting upon cerebral hypoxic-ischemic injury.

This study was designed to determine the effect of fasting upon cerebral hypoxic-ischemic injury. In the first part of the study the effect of fasting was determined for survival, brain tissue water and kation contents, and blood-brain barrier integrity. In the second part of the study the administration of the substrates beta-hydroxybutyrate (BHB) and glucose has been evaluated regarding their influence upon the effect of fasting. The study used the Levine-Klein model of unilateral carotid occlusion and hypoxia because it mimics clinical situations of ischemia with hypoxia. The data show that fasting did protect rats from developing brain infarction following hypoxia-ischemia. Hypoglycemia seems to be involved in the mitigation of ischemic blood-brain barrier disruption. The plasma glucose level seems to be not the only factor involved in the genesis of the tissue kation changes. Starvation-induced ketosis probably does not play a role in the protection mechanism.

Acetoacetates

The neurosurgeon and the blood-brain barrier. A survey.

A survey is given on the history of the discovery of the blood-brain barrier, of its functions and of its clinical importance. Also attempts to circumvent or disrupt the barrier with the aim of introducing therapeutic or diagnostic agents into the brain tissue have been reported. Finally the possible negative effects of lasting barrier defects in transplanted foetal tissue are mentioned.

Blood-Brain Barrier

Cerebral cation shifts in hypoxic-ischemic brain damage are prevented by the sodium channel blocker tetrodotoxin.

We investigated the effect of the sodium channel blocker, tetrodotoxin, in two animal models of brain pathology. In the first, an acute model, we recorded the interstitial brain potential in the striatum of rats after cardiac arrest. The time of deflection of this potential, an indication of changes in cerebral cation concentrations, was determined in control rats, and in rats pretreated with intrastriatal tetrodotoxin. In control rats a deflection of the brain potential was noted 2 min after cardiac arrest; tetrodotoxin pretreatment delayed this deflection to about 5 min. The second, a survival model, was based on the Levine preparation in rats. A combination of ischemia and hypoxia produced unilateral, cerebral infarcts, which were characterized by a decrease of brain [K+], and by increases of [Ca2+] and [Na+] and thus of the Na+:K+ ratio. Data on the cation shifts, determined by chemical assay methods, were complemented by those of more conventional methods of assessment of brain damage, such as the determination of survival, of Evans blue staining, and of brain water content. Cation shifts could be prevented locally by tetrodotoxin. In conclusion, the drug can, at least partially, prevent the detrimental effects of an ischemic insult. In addition, our results showed that protective effects observed in the acute model may sometimes offer an indication of the effects to be expected in the survival model. Furthermore, the effect of tetrodotoxin on the brain potentials in the acute model showed that its protective action in the survival model may be brought about by delaying cell depolarization and by shortening the actual duration of the depolarized state. We conclude that Na+ influx and, consequently, neurotransmission may play a crucial role in the development of cerebral damage.

Animals

Peritumoral brain edema associated with meningiomas.

Although generally benign, meningiomas may be associated with extensive peritumoral brain edema, as visualized on computed tomographic (CT) scans. An analysis of 38 meningiomas indicated that severity of edema on CT scans positively correlated with tumor size and also with evidence of disruption of the cortical layer, which initially separates the tumor from the white matter, in which edema tends to accumulate. The various histological subtypes also seemed to be distinct in their tendency to induce edema, with the transitional and meningotheliomatous subtypes associated with the more severe grades of edema. There was no correlation between grade of edema and location of the tumor. Contact of the edematous area or the tumor itself with the ventricle, which is relevant to the possibility of drainage of edema fluid into the ventricle, seemed to occur in cases of the more severe grades of edema rather than in cases showing slight or no edema.

Brain Edema

Interpretation of magnetic resonance images making use of in vitro examinations of spinal tissue.

T1 and T2 relaxation times were determined in vitro at 21 MHz (0.5 T) for a variety of spinal and paraspinal tissues. Intensity formulas for spin echo and inversion recovery sequences were derived and used to calculate the intensities of these tissues as they would appear in magnetic resonance images. The intensity was calculated as a function of various repetition, echo, and inversion times. It is shown that the combination of acquiring in vitro relaxation time values and calculating intensity as a function of pulse timings is useful to predict the parameter setting for optimal contrast between certain tissues without applying series of magnetic resonance images.

Electron Spin Resonance Spectroscopy