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Inhibition of cyclooxygenase 2 by nimesulide improves cognitive outcome more than motor outcome following diffuse traumatic brain injury in rats.

Prostanoid synthesis is regulated by the enzyme cyclo-oxygenase (COX) that is present in at least two isoforms: COX-1, the constitutive form, and COX-2, the inducible form. Expression of COX-2 has recently been shown to be an important determinant of the cytotoxicity connected with inflammation following ischemic injury to the brain. The present study examines the temporal and spatial profiles of COX-2 expression following diffuse traumatic brain injury (TBI) in rats, and the effects of the COX-2 inhibitor nimesulide on cognitive and motor outcomes. Adult, male Sprague-Dawley rats were injured using the 2-meter impact acceleration model of diffuse TBI. At preselected time points after injury, animals were killed and the expression of COX-2 was measured in the hippocampus and parietal cortex by immunohistochemistry and Western blotting techniques. Effects of nimesulide (6 mg/kg daily over ten days) on cognitive and motor outcome was assessed in a separate group of animals using the Barnes circular maze and rotarod test, respectively. A highly significant up-regulation of COX-2 expression was found in the hippocampus as early as 3 h post-trauma and persisting for at least 12 days after TBI. In contrast, a slight but significant upregulation of COX-2 expression occurred in the cortex only at 3 days after trauma. Administration of the COX-2 inhibitor nimesulide resulted in a significant and substantial improvement in cognitive function compared to vehicle-treated controls, while motor deficits after injury was only improved at 24 h after injury. We conclude that COX-2 is involved in the development of functional deficits following diffuse TBI, particularly cognitive deficits, and that these can be improved by administration of COX-2 inhibitors.

Animals↗

Inflicted head injury in infants.

There is scant neuropathological information in the child abuse literature; even the best reviews include assumptions based on the findings of a few inadequate early studies. Our recent series of 53 fatal cases (Brain 124 (2001) 1290, 1299 [1,2]) demonstrated age-related patterns of brain injury and showed the substrate of severe encephalopathy in the infants to be hypoxic brain damage, not diffuse traumatic axonal injury ('DAI'), as had previously been thought. About one-third had craniocervical injuries, particularly in the brain stem, suggestive of stretch injury to the neuraxis. Our interpretation was that this finding implied a mechanism of injury--brain stem damage from stretch injury to the neck with resultant apnoea--that could account for the clinical scenario in many cases, and for which violence would not necessarily be required. Since publishing this study we have turned our attention to the subgroup of infants who die without objective signs of injury, such as skull fracture or impact, whose carers are accused of abuse, usually, "violent shaking", on the pathologic findings alone. Given the striking discrepancy that there often is in such cases between the relatively trivial findings in the brain and the accusations of violence, we have been looking at the pathogenesis of the typical intracranial bleeding. A histologic study of dura from 50 paediatric autopsies, none of whom had suffered a head injury, has led us to propose that the subdural and retinal bleeding in such cases may well have a physiological aetiology, rather than being caused directly by trauma.

Brain↗

Cognitive neuroactivation using SPECT and the Stroop Colored Word Test in patients with diffuse brain injury.

Psychomotor slowing in patients with diffuse brain injury frequently underlies impaired cognitive performance on neuropsychological tests, for example, the Stroop Colored Word test. The aim of the present study was to determine the neural basis associated with performance on the Stroop interference subtask in patients with diffuse brain injury. We hypothesized that patients would be slower than healthy controls, and that this would be associated with brain activations other than those seen in healthy subjects. Brain perfusion, using a split-dose activation paradigm with single photon emission tomography (SPECT) and the Stroop test, was assessed in 9 patients with diffuse brain injury. The Stroop interference score was calculated as a behavioral parameter, and functional imaging data were analyzed with statistical parametrical mapping (SPM99) to determine significant voxel-wise differences of activation between the control and the activation condition. Patients were impaired on the interference subtask of the Stroop test. Comparison of the SPECT data obtained during the activation condition with those obtained during the control condition by means of SPM showed significant activations in the left inferior parietal lobe, the right anterior cingulate extending into the right middle frontal gyrus and the right caudate, and the left posterior cingulate cortex. Patients with diffuse brain injury were slower than healthy controls on the interference subtask of the Stroop test, suggesting difficulty with resistance to distractions. This finding was associated with activation effects in posterior (mainly parietal) brain areas in addition with activation of previously observed anterior (mainly anterior cingulate) brain regions.

Adult↗

[Overview of the recent clinical trials in severe head injury and analysis of their therapeutic failure].

During the past "Decade of the Brain" several neuroprotective agents have been tested in phase III clinical trials for severe head injury (SHI) but unfortunately none of them significantly improved the outcome of these patients. In contrast to the success achieved by these drugs in animal laboratory studies, the results in terms of neuroprotection in the clinical setting have been disappointing. This paper has been divided in three parts: in the first one, we summarize the pathophysiological mechanisms related to SHI, targeted by the neuroprotective agents. In the second part we review the main clinical trials carried out for SHI to date, and in the third one, we analyze the possible reasons that explain why these agents have failed to show efficacy.

Anti-Inflammatory Agents↗

Dynamic stretch correlates to both morphological abnormalities and electrophysiological impairment in a model of traumatic axonal injury.

In this investigation, the relationships between stretch and both morphological and electrophysiological signs of axonal injury were examined in the guinea pig optic nerve stretch model. Additionally, the relationship between axonal morphology and electrophysiological impairment was assessed. Axonal injury was produced in vivo by elongating the guinea pig optic nerve between 0 and 8 mm (Ntotal = 70). Morphological damage was detected using neurofilament immunohistochemistry (SMI 32). Electrophysiological impairment was determined using changes in visual evoked potentials (VEPs) measured prior to injury, every 5 min for 40 min following injury, and at sacrifice (72 h). All nerves subjected to ocular displacements greater than 6 mm demonstrated axonal swellings and retraction bulbs, while nerves subjected to displacements below 4 mm did not show any signs of morphological injury. Planned comparisons of latency shifts of the N35 peak in the VEPs showed that ocular displacements greater than 5 mm produced electrophysiological impairment that was significantly different from sham animals. Logit analysis demonstrated that less stretch was required to elicit electrophysiological changes (5.5 mm) than morphological signs of damage (6.8 mm). Moreover, Student t tests indicated that the mean latency shift measured in animals exhibiting morphological injury was significantly greater than that calculated from animals lacking morphological injury (p < 0.01). These data show that distinct mechanical thresholds exist for both morphological and electrophysiological damage to the white matter. In a larger context, the distinct injury thresholds presented in the report will aid in the biomechanical assessment of animate models of head injury, as well as assist in extending these findings to predict the conditions that cause white matter injury in humans.

Animals↗

Corpus callosum lesions after closed head injury in children: MRI, clinical features and outcome.

Thirty-four children who sustained moderate to severe closed head injury underwent magnetic resonance imaging (MRI). Eight (24%) had MRI evidence of corpus callosum injury, most commonly within the posterior body and splenium. In contradistinction to reports in adults, there was no definite relationship between callosal injury and lower initial Glasgow Coma Scale scores, nor was there a significantly higher incidence of primary brain-stem lesions, diffuse axonal shear injury or intraventricular hemorrhage. In none of these 8 children did the initial admission computed tomography show evidence of callosal injury. Callosal injuries on MRI are not necessarily a poor prognostic finding, the majority of the 8 children showing good functional recovery.

Adolescent↗

Diffusion-weighted MRI and the evaluation of spinal cord axonal integrity following injury and treatment.

Diffusion-based magnetic resonance imaging (MRI) (DWI) has been shown experimentally to detect both injury and functionally significant neuroprotection of injured spinal cord white matter that would otherwise go undetected with conventional MRI techniques. The diffusion of water in the central nervous system (CNS) is thought to be affected by both its location (intracellular or extracellular), and by diffusion barriers formed by cell membranes and myelin sheaths. There is, however, controversy concerning how to obtain, interpret, and present DWI data. Computer simulations and MR microscopy have been helpful in resolving some of these issues, as well as determining exact histologic correlates to DWI findings.

Animals↗

An L-type calcium channel blocker, nimodipine influences trauma induced spinal cord conduction and axonal injury in the rat.

The influence of the potent L-type Ca[2+] channel antagonist Nimodipine on spinal cord evoked potentials (SCEP) and axonal injury following trauma to the spinal cord was examined in a rat model. Spinal cord injury (SCI) was produced by an incision into the right dorsal horn of the T10-11 segments under urethane anaesthesia (1.5 g/kg, i.p.). SCEPs were recorded by epidural electrodes placed over the T9 (rostral) and T12 (caudal) segments after stimulation of the right tibial and sural nerves. SCI induced a pronounced decrease of the SCEP negative amplitude in the rostral (T9) recordings immediately after trauma. Axonal injury seen as degradation of myelin basic protein (MBP) immunostaining and myelin vesiculation at the ultrastructural level was most pronounced at 5 h. Continuous administration of Nimodipine (2 microg/kg/min, i.v.) from 30 min prior to injury until sacrifice markedly attenuated the changes in SCEP amplitude and latency. Axonal damage, loss of MBP, and myelin vesiculation were much less evident in the nimodipine treated traumatised rats. These observations suggest that Ca[2+] channels play an important role in the trauma induced alterations in SCEP and axonal injury, and indicate a therapeutic value of Ca[2+] blockers in SCI.

Animals↗

Injury to axons and oligodendrocytes following endothelin-1-induced middle cerebral artery occlusion in conscious rats.

Injury to axons and oligodendrocytes has been poorly characterized in most animal models of stroke, and hence has been difficult to target therapeutically. It is therefore necessary to characterize axonal and oligodendroglial injury in these models, in order to rationally design putative protective compounds that minimize this injury. This study aims to characterize injury to axons and oligodendrocytes in the endothelin-1 (ET-1) model of middle cerebral artery occlusion (MCAO) in conscious rats. Transient forebrain ischemia was induced in conscious adult male Long Evans rats by the perivascular microinjection of ET-1. Quantitative histopathology was performed on forebrain sections at 6, 24, 48 and 72 h after ET-1 administration, using ballistic light analyses and immunohistochemistry for amyloid precursor protein (APP), SMI32, and Tau-1. Ballistic light analyses of cortical and striatal lesions revealed that the infarct volume was maximal in these regions by 6 h. APP and SMI32 immunohistochemistry demonstrated that axonal injury was maximal by 6 h in this model; however, some injured axons appeared to maintain good structural integrity up to 72 h after insult. Density measurements for Tau-1-immunopositive oligodendrocytes were significantly elevated within the corpus callosum from 48 h, but reductions in total oligodendrocyte numbers were not apparent up 72 h after ET-1 injection. These results indicate that axonal and oligodendroglial injury should be investigated as potential targets for delayed therapeutic intervention after MCAO.

Amyloid beta-Protein Precursor↗

A pig model with secondary increase of intracranial pressure after severe traumatic brain injury and temporary blood loss.

There is a lack of animal models of traumatic brain injury (TBI) that adequately simulate the longterm changes in intracranial pressure (ICP) increase following clinical TBI. We therefore reproduced the clinical scenario in an animal model of TBI and studied long-term postinjury changes in ICP and indices of brain injury. After induction of anesthesia, juvenile piglets were randomly traumatized using fluid-percussion injury (FPI) to induce either moderate (mTBI = 6 pigs: 3.2 +/- 0.6 atm) or severe (sTBI = 7 pigs: 4.1 +/- 1.0 atm) TBI. Injury was followed by a 30% withdrawal of blood volume. ICP and systemic hemodynamic were monitored continuously. Repeated measurements of global cerebral blood flow (CBF) and cerebral metabolic rate of oxygen (CMRO2) were performed at baseline, at the end of blood withdrawal, after volume replacement, and at 8 and 24 h postinjury. Histological and immunocytochemical studies have also performed. ICP peaked immediately following FPI (mTBI: 33 +/- 16 mm Hg; sTBI: 47 +/- 14 mm Hg, p < 0.05) in both groups. In the sTBI group, we noted a second peak at 5 +/- 1.5 h postinjury. This second ICP peak was accompanied by a 50% reduction in CBF (44 +/- 31 mL . min . 100 g(-1)) and CMRO(2) (2.5 +/- 2.0 mL . min . 100 g(1)). Moderate TBI typically resulted in focal pathological change whereas sTBI caused more diffuse change, particularly in terms of the ensuing axonal damage. We thus describe an animal model of severe TBI with a reproducible secondary ICP increase accompanied by patterns of diffuse brain damage. This model may be helpful in the study of pathogenetic relevance of concomitant affections and verify new therapeutic approaches in severe TBI.

Animals↗

The effects of BclXL and Bax over-expression on stretch-injury induced neural cell death.

The Bcl-2 family of proteins has recently been implicated as a possible player in the complex cascade of neural cell death due to traumatic brain injuries. However, it is unclear if the Bcl-2 pathways are activated in mechanically injured neurons. Here we report the effects of BclX(L) and Bax over-expression on stretch-induced neural cell death using an in vitro uniaxial stretch model of traumatic axonal injury. Specifically, YFP, YFP-tagged Bax and YFP-tagged BclX(L) proteins were expressed in differentiated NG108-15 cells and stretch-injury assays were carried out at different strain and strain rate combinations. As a control, insults known to act within the Bcl-2 pathways were used to study cell viability and to compare with the results of cell death due to mechanical stretching. Surprisingly, under the stretch-injury conditions in this study, BclXL did not provide protection against cell death. Further, translocation of Bax could not be identified after stretch-injury. The implications of these findings to cell death pathways in traumatic brain injury are discussed.

Animals↗

[Diffuse axonal damages to the brain (the clinical picture, diagnosis and outcome)].

On the basis of complex clinical, computed tomographic, catamnestic, and pathomorphological examination of 336 patients with severe cerebrocranial injury the authors substantiate the need to distinguish, along with localized contusions and intracranial hematomas, diffuse axonal injuries of the brain whose biomechanics and pathogenesis are linked with trauma of angular or rotational acceleration-deceleration. The clinical manifestations and the course of diffuse axonal injuries are characterized by protracted coma occurring immediately after the injury with marked disorders of stem functions, postural motor reactions, slow recovery from coma, with the formation of a stable or transitory vegetative state, the development of syndromes of disconnection of the cerebral hemispheres and the brain stem, and severe invalidization of the patients due to mental and neurological deficits.

Acute Disease↗

Trials and tribulations of using beta-amyloid precursor protein immunohistochemistry to evaluate traumatic brain injury in adults.

Axonal pathology is increasingly identified by beta-amyloid precursor protein (betaAPP) immunohistochemistry in the brains of patients who may or may not have a history of trauma. The presence of betaAPP-IR(+) has been variously interpreted as either that diffuse traumatic axonal injury (TAI) is indeed a universal finding in cases of fatal traumatic brain injury (TBI) or there are other causes of betaAPP-IR(+) axons which under certain circumstances may be sufficient to mimic TBI and therefore make the medico-legal interpretation of certain cases very difficult. To address some of the uncertainties we have undertaken a detailed analysis of the amount and distribution of betaAPP immunohistochemistry in 63 cases of fatal TBI, 17 cases of patients dying after cardiac arrest, 12 cases dying in association with status epilepticus, 3 cases of carbon monoxide (CO) poisoning, 13 cases of hypoglycaemia and in 60 controls. Three patterns of betaAPP-IR(+) were identified. First, diffuse multi-focal, second, corresponding to the outline of an infarct or haematoma, and thirdly a mixture of the two. The first pattern was seen in cases of the lesser grades of TAI, CO poisoning, and hypoglycaemia, the second pattern in cases in which there was evidence of raised intracranial pressure and the third in cases of severe TAI. It is concluded that the proper interpretation of cases requires the examination of a sufficient number of blocks ( [Formula: see text] ), processing using standardised protocols including betaAPP immunohistochemistry and in some cases the mapping of any IR(+) on anatomical line diagrams. betaAPP carried out on a small number of randomly taken blocks is likely to lead to misinterpretation of the clinico-pathological correlations and possibly to a miscarriage of justice.

Adolescent↗