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Biomedical subjects

A M Hakim

Publications and source records attributed to A M Hakim.

At least 19 recordsLinked to original sources

Nestin expression in reactive astrocytes following focal cerebral ischemia in rats.

During central nervous system (CNS) development, intermediate filaments are subjected to a sequential remodelling process. Nestin is a distinct intermediate filament which is transiently expressed in proliferating neuroepithelial stem cells during the neurulation stage of development. Nestin re-expression in the adult rat was studied following transient (2 h) middle cerebral artery occlusion. Seven days after the ischemic insult, nestin reactive astrocytes were found in the border zone surrounding cerebral infarction. Nestin immunoreactivity delineated a zone between infarction and the surrounding intact cerebral parenchyma. In situ hybridization for nestin mRNA showed early changes in small cells in the surround of the ischemic lesion. These results with nestin, along with other stem cell markers expressed by reactive astrocytes, suggest an embryonic reversion of the mature cytoskeleton as a response of astrocytes to cerebral injury.

Animals

Apoptosis is restricted to the thalamus in thiamine-deficient rats.

Thiamine deficiency (TD) produces lesions in the thalamus, mamillary and medial geniculate nuclei, and inferior colliculus. To clarify the pathogenesis of these lesions, we examined the occurrence of hallmarks of apoptosis following TD in rat brain. Histological assessment showed apoptotic cells in the thalamus and medial geniculate nucleus but not in the inferior colliculus. We used terminal deoxynucleotidyl transferase-mediated deoxyuridine (dUPT)-biotin nick-end labelling (TUNEL) and gel electrophoresis to demonstrate that TD is associated with apoptotic cell death. In the thalamus, DNA fragmentation appeared from day 14 of deficiency and preceded the appearance of ataxia. The inferior colliculus and mamillary nucleus were without electrophoretic DNA fragments, and only rare TUNEL-positive labelling was observed. This model shows a rare combination of both apoptosis and necrosis in the same lesioned brain.

Animals

Elevation of neuronal expression of NAIP reduces ischemic damage in the rat hippocampus.

We show here that transient forebrain ischemia selectively elevates levels of neuronal apoptosis inhibitory protein (NAIP) in rat neurons that are resistant to the injurious effects of this treatment. This observation suggests that increasing NAIP levels may confer protection against ischemic cell death. Consistent with this proposal, we demonstrate that two other treatments that increase neuronal NAIP levels, systemic administration of the bacterial alkaloid K252a and intracerebral injection of an adenovirus vector capable of overexpressing NAIP in vivo, reduce ischemic damage in the rat hippocampus. Taken together, these findings suggest that NAIP may play a key role in conferring resistance to ischemic damage and that treatments that elevate neuronal levels of this antiapoptotic protein may have utility in the treatment of stroke.

Adenoviridae

In vivo uptake of [3H]nimodipine into brain during cortical spreading depression.

We report autoradiographic measurements of the in vivo uptake of [3H]nimodipine during the nonischemic depolarization of cortical spreading depression (CSD) in rat brain. [3H]Nimodipine uptake in brain was determined regionally in rats undergoing CSD (n = 8) and was significantly increased in cortex (14 +/- 7%) and hippocampus (10 +/- 6%) on the stimulated side relative to the contralateral hemisphere when compared with the same measurements in a control group (n = 8). A similar measurement using the physiologically inert radiotracer [14C]iodoantipyrine to control for potential effects of CSD on radioligand distribution showed a minimal increase (2.4 +/- 0.7%) of radiotracer uptake in cortex after CSD. This increase was significantly less than that observed in the [3H]nimodipine uptake studies. We hypothesize that increased in vivo [3H]nimodipine uptake in CSD identifies regions of depolarization and thus infers activation of the L-type voltage sensitive calcium channels.

Animals

Subtle neuronal death in striatum after short forebrain ischemia in rats detected by in situ end-labeling for DNA damage.

BACKGROUND AND PURPOSE: Neuronal cell death after global brain ischemia occurs predominantly by necrosis, whereas only a minor fraction of cell death may occur through apoptosis. Brief or moderate insults are thought to facilitate apoptosis, which is associated with DNA fragmentation. After 10 minutes of four-vessel occlusion in rats, conventional neuropathological analysis shows neuronal cell death in hippocampal CA1 but not in the striatum. Thus, we compared hippocampus and striatum for occurrence of cells with DNA fragmentation. METHODS: A brief insult of 10 minutes of forebrain ischemia was induced in rats using four-vessel occlusion, and groups of brains were studied at 1, 3, 6, and 12 hours and at 1, 3, and 7 days after ischemia. In situ end-labeling (ISEL) was used to detect neurons undergoing DNA fragmentation. The hippocampal CA1 area was compared with the striatum. Conventional staining and immunohistochemical markers served to exclude ischemic neuronal cell death in the striatum. RESULTS: Hippocampal CA1 neurons were ISEL-positive by 3 days after ischemia. In contrast, positive cells became evident in the striatum between 3 hours to 3 days after ischemia. The ISEL-positive cells were scattered throughout the striatum with a preference for the dorsomedial areas and accounted for about 0.2% of the neurons per striatal area at 1 day. Conventional staining and immunohistochemical markers failed to reveal areas of overt cell damage in the striatum. CONCLUSIONS: The scattered cell damage in the striatum after brief forebrain ischemia suggests the occurrence of an apoptotic process. The striatum therefore may be prone to subtle cell death due to metabolic insults.

Analysis of Variance

Cortical spreading depression protects against subsequent focal cerebral ischemia in rats.

The possibility that cortical spreading depression (CSD) may have neuroprotective action during subsequent focal cerebral ischemia was examined in rats. Three days before the imposition of focal cerebral ischemia CSDs were elicited by applying potassium chloride (KC1) for 2 h through a microdialysis probe implanted in the occipital cortex. Control animals were handled identically except that saline was infused instead of KC1. Focal ischemia was produced by the intraluminal suture method and cortical and subcortical infarct volumes were measured 7 days later. Neocortical infarct volume was reduced from 124.8 +/- 49.5 mm(3) in the controls to 62.9 +/- 59.5 mm(3) in the animals preconditioned with CSD (p = 0.012). There was no difference between the two groups in the subcortical infarct volume or in CBF, measured by the hydrogen clearance method, during or immediately after the ischemic interval. Our data indicate that preconditioning CSD applied 3 days before middle cerebral artery occlusion may increase the brain's resistance to focal ischemic damage and may be used as a model to explore the neuroprotective molecular responses of neuronal and glial cells.

Animals

Relationship between extracellular glutamate concentration and voltage-sensitive calcium channel function in focal cerebral ischemia in the rat.

Ischemic cell death occurs when extracellular glutamate levels increase, causing tissue depolarization and an excessive rise in intracellular calcium concentrations. The relative occurrence of the depolarization events and the changes in glutamate concentration in ischemia have not been studied. In a model of focal cerebral ischemia in the rat, three measurements were made simultaneously in vivo: cerebral blood flow (CBF) by the H2-clearance method, extracellular glutamate concentration by microdialysis, and activation of the voltage-sensitive calcium channel (VSCC) by its binding to [3H]nimodipine. Effects of probe implantation on these measurements were accounted for. The CBF to control ratio obtained during the experiments spanned the range of 1.08 to 0.07. Binding to [3H]nimodipine became significantly activated when CBF fell to approximately 0.49 of its control value while extracellular glutamate concentrations increased significantly only at a CBF ratio of < 0.33. Activation of the VSCC at this high CBF ratio may be due to ischemic depolarization, which has been shown to activate the binding to [3H]nimodipine. It may be useful to define a CBF threshold of 50% of normal in focal ischemia for opening of the VSCC. The same threshold has been linked to an overall depression of protein synthesis and to activation of a number of molecular responses.

Animals

In vitro binding of [3H]nimodipine and [3H]CGS-19755 to rat brain in focal cerebral ischemia.

Focal cerebral ischemia results in increased in vivo binding of calcium channel antagonists to both the L-type voltage sensitive calcium channel (VSCC) and the N-methyl-D-aspartate (NMDA) receptor-linked calcium channel. It was the aim of this study to investigate the effect of focal cerebral ischemia on the in vitro binding of calcium channel antagonists to rat brain. Quantitative autoradiography was used to measure regional in vitro binding of the L-type VSCC antagonist [3H]nimodipine and the competitive NMDA receptor antagonist [3H]CGS-19755 to rat brain following 4 h of irreversible focal cerebral ischemia. [3H]Nimodipine binding to the nonischemic hemisphere was characterized by one binding site with regional binding affinity (KD) estimates ranging from 221 to 482 pM and maximal binding site densities (BMAX) ranging from 13.2 (9.6-17.5) pmol/g tissue (estimate and 95% confidence interval) in CA1 to 32.5 (26.5-39.9) pmol/g tissue in dentate. [3H]CGS-19755 binding to the nonischemic hemisphere was characterized by KD estimates ranging from 59 to 97 nM and BMAX values ranging from 143 (108-192) pmol/g tissue in cortex to 569 (515-641) pmol/g tissue in CA1. For [3H]CGS-19755 a model of two binding sites was applicable in several brain regions. No difference in binding site densities or binding affinities between ischemic and paired nonischemic structures (cortex and striatum) was observed with either ligand. In vitro binding of [3H]nimodipine and [3H]CGS-19755 to ischemic brain failed to identify ischemic-induced changes in calcium channel function previously reported by in vivo binding methods.

Animals

Transient forebrain ischemia protects against subsequent focal cerebral ischemia without changing cerebral perfusion.

BACKGROUND AND PURPOSE: The possibility that the brain may be preconditioned to be more tolerant of ischemia is an important concept with important clinical implications. Exploring the concept offers the possibility of advancing our understanding of protective molecular responses in the brain. This article compares two preconditioning methods and explores the role that changes in regional cerebral blood flow (rCBF) may play in conferring ischemic protection. METHODS: Temporary occlusion of the middle cerebral artery (MCA) using the thread model was preceded 4 days earlier by short-lasting focal or global ischemia or by sham surgery. rCBF was measured in the frontoparietal region of the ischemic hemisphere during all focal ischemia episodes. Four days after the second ischemic exposure, animals were killed, and the size of infarction was determined. RESULTS: rCBF was significantly higher in the frontoparietal region during MCA occlusion when it was preceded by prior focal ischemia (36.8 +/- 7.6 mL x 100 g-1 at 30 minutes) compared with controls (24.7 +/- 4.0 mL x 100 g-1.min-1, P = .0008). Despite this, there was no significant difference in the resulting infarct volume. In contrast, when MCA occlusion was preceded by global ischemia, infarct volume was significantly reduced (68.1 +/- 30.9 mm3 in the controls versus 22.9 +/- 22.1 mm3 in the preconditioned group, P = .002) without significant change in rCBF. CONCLUSIONS: Protection from ischemic injury requires specific conditions of prior exposure to ischemia. Improved perfusion would not seem to be a sufficient or necessary accompaniment to providing neuroprotection.

Analysis of Variance

Relevance of interstitial glutamate to selective vulnerability in focal cerebral ischemia.

Glutamate concentrations in striatum and cortex were measured by means of in vivo cerebral microdialysis before and for 4 h after middle cerebral and ipsilateral common carotid artery occlusion in rats. The peak glutamate concentration reached 7.28 +/- 3.60 microM in dialysate from striatum and 5.64 +/- 2.24 microM in that from cortex. An index of exposure of each region to glutamate was calculated by integrating glutamate concentrations after occlusion. During ischemia the striatum was exposed to statistically higher cumulative concentrations of glutamate than the cortex (p < 0.01). The difference in vulnerability between striatum and cortex may arise from the additional time needed for the cortex to be exposed to cumulative threshold levels of glutamate.

Animals

In vivo binding of [3H]nimodipine in rat brain after transient forebrain ischemia.

We report the regional variation in relative in vivo binding of the L-type voltage sensitive calcium channel (VSCC) antagonist [3H]nimodipine to brain following transient forebrain ischemia in the rat. At 30-min of reperfusion after 20 min of forebrain ischemia, [3H]nimodipine binding was significantly increased in striatum, CA3 and CA4, and dentate relative to binding in sham-operated rats, suggesting that VSCCs were responding to ischemic depolarization. Two h following ischemia, binding in all brain structures returned to normal levels indicating repolarization of cell membranes. At 24 h of recirculation, increased [3H]nimodipine binding was again observed in striatum and dentate. Binding remained elevated in the striatum and dentate, and increased binding became evident in the CA1 region of the hippocampus after 48 h of reperfusion. With the exception of the dentate gyrus, the second rise in [3H]nimodipine binding anticipated or coincided with the observed regional ischemic cell changes. These observations in global cerebral ischemia support previous work indicating that in vivo binding of [3H]nimodipine to the L-type VSCC may be an early and sensitive indicator of impending ischemic injury. Such measurements may be of use in identifying vulnerable brain regions and defining a therapeutic window of opportunity in models of cerebral ischemia.

Animals

Calcium-mediated mechanisms of ischemic injury and protection.

Our understanding of calcium's role in cerebral ischemia continues to evolve from the initial recognition that it may be harmful to the ischemic cell. A multitude of experiments have supported the hypothesis that excessive influx of calcium into the cell under ischemic conditions is a major mechanism of cell injury and death. Pharmacological intervention to restore cellular calcium homeostasis is protective in many models of cell anoxia. Principle routes of calcium entry are the voltage-sensitive (VSCC) and N-methyl-D-aspartate linked receptor operated (ROCC) calcium channels. Regional variations in channel densities have been described and it is now known that these classes of channels are located in different regions of the neurons. Activation of both channel types has been identified in in vivo models of cerebral ischemia. Although the ROCC is predominant in number, the VSCC appears to activate at higher cerebral blood flow values suggesting that it is an earlier conduit for calcium than the glutamate-driven ROCC. Intracellular calcium is well recognized as a second messenger system and there is increasing appreciation that it induces immediate early genes (IEG). Since IEGs function as transcriptional regulating factors, the differential expression of specific target genes may be of importance for determining death or survival of the ischemic tissue.

Animals

Cerebral vulnerability is associated with selective increase in extracellular glutamate concentration in experimental thiamine deficiency.

Microdialysis in the awake, freely moving rat was used to determine the effect of pyrithiamine-induced thiamine deficiency on the levels of amino acids in the brain. Studies were carried out on (a) presymptomatic animals immediately before the development of behavioral changes and (b) acute symptomatic animals within 6 h following loss of righting reflexes. This latter stage precedes the appearance of histological lesions. The results were compared with pair-fed controls. Dialysis probes were implanted in one vulnerable structure [ventral posterior medial thalamus (VPMT)] and one nonvulnerable area [frontal parietal cortex (FPC)] on the contralateral side. In VPMT of acute symptomatic animals, the glutamate concentration was significantly increased (3.37 +/- 0.64 microM; p < 0.005) compared with control values (0.93 +/- 0.09 microM), whereas in FPC no change in glutamate content was evident. These results suggest that glutamate plays a significant role in the development of central thiamine deficiency lesions. The absence of any increase in glutamate levels in the nonvulnerable FPC suggests that a glutamate-mediated excitotoxic mechanism may be responsible for the selective cerebral vulnerability in thiamine deficiency.

Amino Acids

In vivo distribution of CGS-19755 within brain in a model of focal cerebral ischemia.

The blood-brain barrier permeability of the competitive N-methyl-D-aspartate receptor antagonist CGS-19755 [cis-4-(phosphonomethyl)-2-piperidine carboxylic acid] was assessed in normal and ischemic rat brain. The brain uptake index of CGS-19755 relative to iodoantipyrine was assessed using the Oldendorf technique in normal brain. The average brain uptake index in brain regions supplied by the middle cerebral artery was 0.15 +/- 0.35% (mean +/- SEM). The unidirectional clearance of CGS-19755 from plasma across the blood-brain barrier was determined from measurements of the volume of distribution of CGS-19755 in brain. These studies were performed in normal rats and in rats with focal cerebral ischemia produced by combined occlusion of the proximal middle cerebral artery and ipsilateral common carotid artery. In normal rats the regional plasma clearance across the blood-brain barrier was low, averaging 0.015 ml 100 g-1 min-1. In ischemic rats this clearance value averaged 0.019 ml 100 g-1 min-1 in the ischemic hemisphere and 0.009 ml 100 g-1 min-1 in the nonischemic hemisphere. No significant regional differences in plasma clearance of CGS-19755 were observed in either normal or ischemic rats except in cortex injured by electrocautery where a 14-fold increase in clearance across the blood-brain barrier was measured. We conclude that CGS-19755 crosses the blood-brain barrier very slowly, even in acutely ischemic tissue.

Animals

Reversibility of nimodipine binding to brain in transient cerebral ischemia.

Using autoradiography, we have measured the in vivo binding of [3H]nimodipine to brain in a rat model of reversible cerebral ischemia. Ischemia was induced by simultaneous occlusion of the middle cerebral artery (MCA) and ipsilateral common carotid artery by microaneurysm clips. Rats were studied after 15 min of ischemia (ischemic group) or after 45 min of reperfusion following 15 min of ischemia (reperfused group). Regional cerebral blood flow (CBF) was determined autoradiographically using [14C]iodoantipyrine in both ischemic (n = 6) and reperfused (n = 6) groups. During ischemia blood flow in the territory of the MCA was depressed and recovered to normal only in the distal territory of the MCA following reperfusion. [3H]Nimodipine binding in the ischemic group (n = 12) was elevated in ischemic brain regions and declined significantly (p < 0.01) in these regions in the reperfused group (n = 11). The ratio of the volume of cortex showing increased binding to the total volume of the forebrain was 0.113 +/- 0.025 (mean +/- SD) in the ischemic group and declined to 0.080 +/- 0.027 following reperfusion (p < 0.005). In general, infarct was only observed in regions showing persistent elevation of nimodipine binding following reperfusion as determined by histology performed in a separate group of rats (n = 8) after 24 h of reperfusion. We conclude that increased nimodipine binding to ischemic tissue is initially reversible with prompt reestablishment of CBF and is a sensitive indicator of early and reversible ischemia-induced cerebral dysfunction.

Animals

Time course of cerebral blood flow and histological outcome after focal cerebral ischemia in rats.

BACKGROUND AND PURPOSE: The relation between time-dependent changes in cerebral blood flow and the appearance of infarction after focal cerebral ischemia is still a matter for debate. The aim of this study was to measure perfusion after simultaneous occlusions of the left middle cerebral artery and ipsilateral common carotid artery in rats and correlate it with the timing and distribution of histological changes. METHODS: We studied histological and cerebral blood flow changes 5 minutes and 4, 24, and 48 hours after the onset of focal ischemia. Blood flow was determined autoradiographically using [14C]iodoantipyrine. A coronal template subdivided into regions of interest was applied to the autoradiographs and the histological data. RESULTS: In some regions of the nonoccluded hemisphere, cerebral blood flow 5 minutes after occlusion fell below 50% of normal. Many ischemic structures showed stable blood flow for 48 hours after occlusion, confirming that in this model reperfusion is minimal. Infarction occurred eventually in all areas in which blood flow at 5 minutes fell below 10% of that in control rats, but infarction appeared earlier in regions in which blood flow at 5 minutes was below 5% of that in control rats. When blood flow at 5 minutes rose above 12% of that in control rats, the occurrence of infarction became unpredictable. CONCLUSIONS: Despite the general dependence of infarction on perfusion levels, blood flow was not a reliable indicator of those regions committed to infarction.

Animals

Attention modulates somatosensory cerebral blood flow response to vibrotactile stimulation as measured by positron emission tomography.

In human primary somatosensory cortex, the cerebral blood flow response to vibrotactile stimulation of the fingers (110 Hz), as measured by positron emission tomography and H2(15)O, was 13% higher (p less than 0.025) when the subjects attended to the stimulus, compared to when they were simultaneously engaged in a distraction task. This suggests that the physiological response of a primary cortical area can be modulated by the attentive behavior of the subject.

Adult