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G Stoll

Publications and source records attributed to G Stoll.

At least 19 recordsLinked to original sources

Blockade of signaling via the very late antigen (VLA-4) and its counterligand vascular cell adhesion molecule-1 (VCAM-1) causes increased T cell apoptosis in experimental autoimmune neuritis.

We characterized the early effects of anti-very late antigen (VLA-4) and its counterligand vascular cell adhesion molecule-1 (VCAM-1) antibody therapy on T cell infiltration and apoptosis in adoptive transfer experimental autoimmune neuritis of female Lewis rats. At the peak of disease, animals were treated with anti-VCAM-1 monoclonal antibody (mAb), anti-VLA-4 mAb, or the respective isotype mAb controls 18, 12, or 6 h before perfusion. Anti-VCAM-1 led to a rapid, significant increase of apoptotic T cells in the sciatic nerve with a maximum after 6 h, preceding the significant decrease of T cell infiltration seen after 18 h. This was accompanied by a significant reduction in mRNA levels for IFN-gamma and inducible nitric oxide synthase. The results for anti-VLA-4 treatment showed a similar trend. The early increase of T cell apoptosis following disruption of VLA-4/VCAM-1 interaction may reflect a novel signaling component of proapoptotic pathways.

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Induction of the proinflammatory cytokine interleukin-18 by axonal injury.

Interleukin-18 (IL-18) is an important cytokine in innate immunity and in the induction phase of autoimmunity. We report the expression of IL-18 mRNA and protein after nerve crush during Wallerian degeneration (WD) of the rat nervous system. In normal optic nerves (ON) constitutive IL-18 mRNA levels as revealed by semiquantitative reverse transcriptase polymerase chain reaction were higher than in sciatic nerves (SN). After nerve crush, steady-state levels moderately increased in the distal nerve part of the SN but not the ON. By immunocytochemistry no SN or faint ON IL-18 protein expression was detectable in normal nerves. In contrast, IL-18 expression dramatically increased after SN and ON crush. On the cellular level, ED1(+) macrophages infiltrating the crush site strongly expressed IL-18 at days 2 and 4 after SN crush. By days 4 and 8, in addition, the entire distal nerve part was covered by IL-18(+) macrophages. At day 16, IL-18 immunoreactivity had disappeared despite the persistence of large numbers of ED1(+) macrophages. A similar infiltration of IL-18(+) macrophages was seen at the crush site in the ON. Moreover, microglia in the distal ON stump lacking macrophage infiltration and undergoing delayed myelin degradation up-regulated IL-18. In conclusion this study shows that IL-18 is involved in the cytokine network associated with the robust inflammatory response during WD of the SN. Despite up-regulation of the proinflammatory cytokine IL-18, major histocompatibility complex class II, and CD4 molecules similar to macrophages in the PNS, microglial activation after ON injury appears to be insufficient to mount an effective phagocytic response as a prerequisite for successful regeneration in the CNS.

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Interleukin-18 is induced in acute inflammatory demyelinating polyneuropathy.

T lymphocytes of the Th1 subset producing the proinflammatory cytokine interferon-gamma (IFN-gamma) have been implicated in the pathogenesis of immune-mediated diseases of the peripheral nervous system (PNS) such as the acute Guillain-Barré syndrome (GBS) and its animal model experimental autoimmune neuritis (EAN). Interleukin-18 (IL-18) is a potent IFN-gamma-inducing cytokine that is synthesized as an inactive precursor molecule and cleaved by caspase-1 into its mature active form. In our present study we analyzed the expression of IL-18 and caspase-1 in the nerve roots of EAN rats using reverse transcriptase-polymerase chain reaction and immunocytochemistry. Using an enzyme-linked immunosorbent assay, we furthermore determined IL-18 protein levels in paired serum and cerebrospinal fluid (CSF) samples from patients with GBS as well as from noninflammatory neurologic disease (NIND) controls. In EAN, IL-18 and caspase-1 mRNA levels in the nerve roots increased during the stage of active disease progression. Immunocytochemically, both perivascular and parenchymal IL-18 protein expression was increased in the roots of EAN rats and mainly associated with ED1+ macrophages stained on serial sections. IL-18 serum levels were significantly higher in GBS patients than in NIND controls (238+/-71 vs. 42+/-7 pg/ml, P<0.001). Our data implicate the Th1-inducing cytokine IL-18 in the pathogenesis of acute immune-mediated PNS demyelination.

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Dynamic changes of magnetic resonance imaging abnormalities in relation to inflammation and glial responses after photothrombotic cerebral infarction in the rat brain.

This investigation analyzed the potential of high-resolution magnetic resonance imaging (MRI) at a field strength of 7T to depict leukocyte infiltration and glial responses after focal cerebral ischemia induced by photothrombotic occlusion of cerebral microvessels. For this purpose we superimposed multiparametric MRI (apparent diffusion coefficient, T2, perfusion-weighted, and gadolinium-DTPA-enhanced T1-weighted imaging) on tissue sections stained for phagocytes and astrocytes and, moreover, assessed the regional distribution of tissue pH and ATP content by invasive biochemical methods. Comparing the histological data with the various MRI parameters, high-resolution MRI did not allow a spatial discrimination between distinct areas of phagocyte accumulation or astroglial scar formation, based on image contrast or even quantitative parameter value differences. However, MRI parameters underwent characteristic changes and differentiated distinct stages of tissue remodeling between days 3 and 14 after photothrombosis. Low apparent diffusion coefficient (ADC) and high T2 values indicated an early stage (3 days) with necrosis and beginning glial activation. Normal ADC and reduced T2 elevation characterized an infarct with advanced glial activation and infiltration of hematogenous cells at 7 days after photothrombosis. Heterogeneous ADC together with T2 elevation reflected a late infarct stage (14 days) when pseudocystic degeneration and scar formation had occurred.

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CD8+ phagocytes in focal ischemia of the rat brain: predominant origin from hematogenous macrophages and targeting to areas of pannecrosis.

We have recently described a novel population of CD8+ phagocytes that are strongly recruited to focal ischemic lesions of the rat brain but absent from axotomized central fiber tracts. To assess the relative contribution of infiltrating macrophages and resident microglia to the CD8+ phagocyte response, we selectively depleted peripheral macrophages by systemic administration of dichloromethylene diphosphonate-filled liposomes prior to the induction of permanent ischemia by photothrombosis of cortical microvessels. Macrophage depletion led to a dramatic reduction but not complete abolishment of CD8+ cells in the ensuing infarcts. Systemic administration of monoclonal antibody Ox-8 eliminated CD8+ cells from peripheral lymphoid organs but had no effect on CD8+ phagocytes in the ischemic brain lesions. To further characterize the lesion conditions inducing the recruitment of CD8+ phagocytes, we induced mild focal ischemia by transient occlusion of the middle cerebral artery that leads to a core infarction with ischemic pannecrosis surrounded by areas with selective neuronal cell death. Recruitment of CD8+ phagocytes was restricted to areas of ischemic pannecrosis. In areas undergoing selective neuronal loss microglia up-regulated complement receptor-3, exhibited ED1 immunoreactivity (indicating phagocytic activity), and to some extent expressed CD4, but not CD8 antigens. In conclusion our present study shows that CD8+ phagocytes in focal brain ischemia are predominantly derived from hematogenous macrophages and selectively target to areas of ischemic pannecrosis.

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The role of macrophages in immune-mediated damage to the peripheral nervous system.

Macrophage-mediated segmental demyelination is the pathological hallmark of autoimmune demyelinating polyneuropathies, including the demyelinating form of Guillain-Barré syndrome and chronic inflammatory demyelinating polyneuropathy. Macrophages serve a multitude of functions throughout the entire pathogenetic process of autoimmune neuropathy. Resident endoneurial macrophages are likely to act as local antigen-presenting cells by their capability to express major histocompatibility complex antigens and costimulatory B7-molecules, and may thus be critical in triggering the autoimmune process. Hematogenous infiltrating macrophages then find their way into the peripheral nerve together with T-cells by the concerted action of adhesion molecules, matrix metalloproteases and chemotactic signals. Within the nerve, macrophages regulate inflammation by secreting several pro-inflammatory cytokines including IL-1, IL-6, IL-12 and TNF-alpha. Autoantibodies are likely to guide macrophages towards their myelin or primarily axonal targets, which then attack in a complement-dependent and receptor-mediated manner. In addition, non-specific tissue damage occurs through the secretion of toxic mediators and cytokines. Later, macrophages contribute to the termination of inflammation by promoting T-cell apoptosis and expressing anti-inflammatory cytokines including TGF-beta1 and IL-10. During recovery, they are tightly involved in allowing Schwann cell proliferation, remyelination and axonal regeneration to proceed. Macrophages, thus, play dual roles in autoimmune neuropathy, being detrimental in attacking nervous tissue but also salutary, when aiding in the termination of the inflammatory process and the promotion of recovery.

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Cortical spreading depression induces proinflammatory cytokine gene expression in the rat brain.

Cortical spreading depression (CSD) is characterized by reversible neuronal dysfunction in the absence of cell death. Preconditioning by CSD induces tolerance against subsequent lethal ischemia. In this study, we used quantitative reverse transcriptase-polymerase chain reaction and immunocytochemistry to analyze proinflammatory cytokine expression after CSD induced by topical application of potassium chloride (KCl) to the cortical surface of rat brains. Relative to control cortex, we found an increase of tumor necrosis factor-alpha (mean 62-fold, P < 0.001) and interleukin (IL)-1beta (mean 24-fold, P < 0.001) mRNA levels within 4 hours ipsilateral to the site of KCl application. At 16 hours cytokine expression was decreasing toward baseline levels. Ipsilateral cytokine induction was abolished by pretreatment with the noncompetitive N-methyl-d-aspartate antagonist, MK-801. In contrast to focal cortical infarction, cytokine induction in CSD was not accompanied by the expression of inducible nitric oxide synthase mRNA. In immunocytochemical studies, expression of IL-1beta protein was localized to ramified microglia in cortical layers I to III of the ipsilateral hemisphere. Our finding that NMDA receptor signaling without subsequent neuronal cell death is sufficient to induce inflammatory cytokine expression in the brain has basic implications for central nervous system immunoregulation. We postulate that cytokine expression in CSD forms part of a physiologic stress response that contributes to the development of ischemic tolerance in this and other preconditioning paradigms.

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Molecular mechanisms of cellular interactions in peripheral nerve regeneration.

The peripheral nervous system, as opposed to the central nervous system, has the intrinsic capacity to regenerate. It was recognized long ago that this can be achieved only after an extensive clean-up procedure, the so-called Wallerian degeneration, in which myelin debris is removed and a suitable environment for growing axons is generated. Wallerian degeneration and the regeneration process itself both depend on direct cellular interactions as well as on long-range signals between all participating cell types. Elucidating the nature and functional consequences of these signals is a main goal in understanding peripheral nerve repair.

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Differential recruitment of CD8+ macrophages during Wallerian degeneration in the peripheral and central nervous system.

The strong macrophage response occurring during Wallerian degeneration in the peripheral but not central nervous system has been implicated in tissue remodeling and growth factor production as key requirements for successful axonal regeneration. We have previously identified a population of CD8+ phagocytes in ischemic brain lesions that differed in its recruitment pattern from CD4+ macrophages/microglia found in other lesion paradigms. In the present study we show that crush injury to the sciatic nerve induced strong infiltration by CD8+ macrophages both at the crush site and into the degenerating distal nerve stump. At the crush site, CD8+ macrophages appeared within 24 hours whereas infiltration of the distal nerve parenchyma was delayed to the second week. CD8+ macrophages were ED1+ and CD11b+ but always MHC class II-. Most CD8+ macrophages coexpressed CD4 while a significant number of CD4+/CD8-macrophages was also present. Expression of the resident tissue macrophage marker ED2 was largely restricted to the CD4+/CD8- population. Following intraorbital crush injury to the optic nerve, infiltration of CD8+ macrophages was strictly confined to the crush site. Taken together, our study demonstrates considerable spatiotemporal diversity of CD8+ macrophage responses to axotomy in the peripheral and central nervous system that may have implications for the different extent of axonal regeneration observed in both systems.

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Expression of tissue factor in high-grade carotid artery stenosis: association with plaque destabilization.

BACKGROUND AND PURPOSE: The procoagulant protein tissue factor (TF) has been implicated in thromboembolic complications associated with advanced atherosclerosis. In this study, we investigated whether TF expression in high-grade stenoses of the internal carotid artery (ICA) is associated with clinical features of plaque destabilization and addressed the relationship between TF expression and plaque inflammation. METHODS: In 36 consecutive patients undergoing surgery for high-grade ICA stenosis, clinical evidence of plaque instability was provided by the recent occurrence of ischemic symptoms attributable to the stenosis and the detection of cerebral microembolism by means of transcranial Doppler ultrasound monitoring of the ipsilateral middle cerebral artery. Endarterectomy specimens were stained immunocytochemically for TF expression as well as macrophage (CD68) and T cell (CD3) infiltration. RESULTS: Morphologically, TF immunoreactivity was codistributed with plaque inflammation and predominantly localized to CD68+ macrophages. Accordingly, statistical analysis revealed a significant association of TF expression with plaque infiltration by macrophages (P<0.0001) and T cells (P=0.013). Plaques extensively stained for TF (median of TF+ total section area >40% in semiquantitative assessment) were more frequent in symptomatic (12/27) than in asymptomatic patients (1/9). Conversely, plaques exhibiting little TF expression (median of TF+ section area <20%) were more frequent in asymptomatic (3/9) than in symptomatic (1/27) patients (P=0.016). Likewise, we found a highly significant association of TF expression with the occurrence of cerebral microembolism (P=0.008). CONCLUSIONS: Induction of TF at sites of plaque inflammation may play an important role in the destabilization of high-grade ICA stenosis.

Carotid Artery, Internal↗

Molecular mechanisms of high-dose antigen therapy in experimental autoimmune encephalomyelitis: rapid induction of Th1-type cytokines and inducible nitric oxide synthase.

High-dose Ag administration induces apoptotic death of autoreactive T cells and is an effective therapy of experimental autoimmune diseases of the nervous system. To explore the role of cytokines in Ag-specific immunotherapy, we analyzed mRNA induction and protein expression for the proinflammatory cytokines TNF-alpha and IFN-gamma, the anti-inflammatory cytokine IL-10, and the cytokine-inducible NO synthase (iNOS) during high-dose Ag therapy of adoptive transfer experimental autoimmune encephalomyelitis (AT-EAE) in the Lewis rat. Using semiquantitative and competitive RT-PCR, we found 5- to 6-fold induction of TNF-alpha mRNA and 3-fold induction of IFN-gamma mRNA in the spinal cord that occurred within 1 h after i.v. injection of Ag and was accompanied by a 2-fold increase of iNOS mRNA. Both IFN-gamma and iNOS mRNA remained elevated for at least 6 h, whereas TNF-alpha mRNA was already down-regulated 6 h after Ag injection. A comparable time course was found for circulating serum levels of TNF-alpha and IFN-gamma. IL-10 mRNA levels did not change significantly following Ag injection. Neutralization of TNF-alpha by anti-TNF-alpha antiserum in vivo led to a significant decrease in the rate of T cell and oligodendrocyte apoptosis induced by high-dose Ag administration, but did not change the beneficial clinical effect of Ag therapy. Our data suggest profound activation of proinflammatory but not of anti-inflammatory cytokine gene expression by high-dose Ag injection. Functionally, TNF-alpha contributes to increased apoptosis of both autoaggressive T cells and oligodendrocytes in the target organ and may thereby play a dual role in this model of Ag-specific therapy of CNS autoimmune diseases.

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Role of NMDA receptor signaling in the regulation of inflammatory gene expression after focal brain ischemia.

Inflammatory mediators are involved in the pathogenesis of focal ischemic brain damage. In this study we used quantitative reverse transcriptase-polymerase chain reaction to analyze the spatiotemporal pattern of tumor necrosis factor-alpha (TNF-alpha), interleukin-1beta (IL-1beta), and inducible nitric oxide synthase (iNOS) expression in focal ischemia of the rat brain. Focal ischemia of the rat parietal cortex was induced noninvasively by photothrombosis of cortical microvessels. In a proportion of the animals NMDA receptor signaling was blocked by the noncompetitive receptor antagonist MK-801. Within 4 h after ischemia we found induction of TNF-alpha and IL-1beta mRNA not only in the infarcts but also in all representative tissue samples removed from noninfarcted frontal, lateral, and occipital cortex of the ipsilateral, but not contralateral hemisphere. Contrastingly, the expression of iNOS mRNA remained restricted to the evolving infarcts. Pretreatment with MK-801 strongly inhibited remote cytokine expression (mean reduction by 80% relative to vehicle treated animals at 4 h; P<0.001) whereas in the lesions only partial reductions in the expression of IL-1beta and iNOS mRNA were found. Our data for the first time demonstrate remote cytokine induction following focal brain ischemia and suggest that NMDA receptor-mediated signaling can activate inflammatory gene expression independently from the occurrence of neuronal cell death.

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Time course of inwardly rectifying K(+) current reduction in glial cells surrounding ischemic brain lesions.

K(+) currents of activated glial cells surrounding ischemic infarcts are investigated using acutely dissociated cells from the periinfarct area after permanent middle cerebral artery occlusion in rats. Inwardly rectifying K(+) currents (K(IR)) were markedly reduced in cells neighboring infarcts with maximal alteration at day 3 after infarct followed by a partial recovery. This reduction of glial K(IR) currents may contribute to the functional disturbances in the periinfarct area.

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Differential regulation of microglial keratan sulfate immunoreactivity by proinflammatory cytokines and colony-stimulating factors.

Resident microglia of the rat CNS express a unique type of keratan sulfate immunoreactivity (KS-IR) that is lacking on peripheral monocytes/macrophages and associated with a so far unknown proteoglycan core protein. Microglial KS-IR is downregulated during T-cell-mediated autoimmune inflammation but largely preserved in degenerative lesion paradigms. This study addresses the role of cytokines and colony-stimulating factors in the regulation of microglial KS-IR. In vitro, ramified microglia in coculture with astrocytes, but not isolated microglia, constitutively expressed KS-IR under control conditions. In both culture paradigms, KS-IR was increased significantly by macrophage- (M-CSF) and granulocyte/macrophage colony-stimulating factors (GM-CSF), as well as tumor necrosis factor-alpha (TNF-alpha). By contrast, the Th1 cytokine interferon-gamma (IFN-gamma) downregulated KS-IR, both when applied alone or in combination with either GM-CSF, M-CSF, or TNF-alpha. In vivo, the intracerebroventricular administration of IFN-gamma, but not TNF-alpha, to healthy rats led to an almost complete disappearance of KS-IR from ramified brain microglia. Our data suggest that the expression of microglial KS-IR is under dominant negative control by the Th1 cell cytokine IFN-gamma and represent the first evidence of cytokine-dependent proteoglycan regulation in the CNS.

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Cytokines in CNS disorders: neurotoxicity versus neuroprotection.

Cytokines orchestrate T cell-mediated immune responses. In experimental autoimmune encephalomyelitis (EAE) the proinflammatory cytokines interferon (IFN)-gamma, tumor necrosis factor (TNF)-alpha, interleukin (IL)-1beta, IL-6, IL-12 and IL-18 are critically involved in the initiation and amplification of the local immune response in the CNS which is counter-balanced by upregulation of antiinflammatory cytokines such as IL-10. The predicted function of individual cytokines during EAE has recently been challenged by transgenic animal studies and neutralization experiments. Cytokine induction is not restricted to autoimmunity in the nervous system. Cytokines are involved in nerve regeneration and induced in focal cerebral ischemia both at the site of infarction and in remote nonischemic brain regions. In cerebral ischemia TNF-alpha and IL-1beta probably have dual functions: In concert with upregulation of inducible NO synthase (iNOS) they exert neurotoxicity while in the absence of iNOS, TNF-alpha and IL-1beta may contribute to neuroprotection and plasticity. The interplay between glial cells, infiltrating leukocytes and induced cytokines leading to CNS pathology is complex and incompletely understood. Further assessment of the functional contribution of cytokines critically depends on the elucidation of downstream secondary signaling mechanisms.

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[Unstable carotid stenosis--an inflammatory disease?].

Arterioarterial thromboembolism from extracranial internal carotid artery (ICA) stenosis is an important pathogenic mechanism of ischemic stroke. However, even a high-grade ICA stenosis carries a greatly variable annual risk of stroke, as high as 13% following a recent occurrence of transient or minor cerebral ischemia or as low as 1-2% in clinically asymptomatic patients. There is increasing evidence that inflammatory processes play a central role in atherosclerosis and particularly in plaque destabilization converting chronic atherosclerosis into an acute neurological disorder. In thromboendarterectomy specimens from patients with high-grade ICA stenoses, the extent of inflammatory infiltration and the expression of matrixmetalloproteinase-9 correlated to clinical and ultrasonic features of plaque destabilization such as cerebral microembolism. Inflammation might become a new therapeutic target in symptomatic carotid artery disease.

Carotid Artery, Internal↗

The role of microglia and macrophages in the pathophysiology of the CNS.

Microglia are a major ghal component of the central nervous system (CNS) and are extremely sessile. Only a subtype, the perivascular microglia, are regularly replaced from the bone marrow in adult animals. Microglia respond to virtually any, even minor pathological events in the CNS. In most pathological settings microglia are aided by infiltrating hematogenous macrophages. Upon activation microglia and macrophages share most phenotypical markers and can exert similar effector functions. After transection of a CNS fibre tract microglia are insufficiently activated and hematogenous macrophages do not significantly enter the degenerating nerve stump. Thereby myelin debris that contains neurite outgrowth inhibiting activity persists for long time. This is in sharp contrast to the peripheral nervous system in which hematogenous macrophages are rapidly recruited in response to axotomy and clear myelin debris allowing regrowth of axons from the proximal stump. However, CNS lesion paradigms with breakdown of the blood-brain barrier such as cerebral ischemia, brain abscesses and stab wounds elicit prompt microglial activation, macrophage recruitment and debris clearance. There is increasing evidence that microglia play an active part in degenerative CNS diseases. In Alzheimer's disease activated microglia appear to be involved in plaque formation. In experimental globoid cell dystrophy T-cell independent induction of major histocompatibility complex class II molecules on microglia accelerates demyelination. In autoimmune diseases microglia probably have dual functions. Microglia present antigen to infiltrating T cells and exert effector functions thereby locally augmenting immune responses. On the other hand, microglia have the capacity to downregulate T cell responses. In the human acquired immunodeficiency syndrome (AIDS) virus infected macrophages probably introduce the virus to the CNS and in concert with microglia are involved in the pathophysiology of the AIDS dementia complex.

Acquired Immunodeficiency Syndrome↗

Heterogeneity of the microglial response in photochemically induced focal ischemia of the rat cerebral cortex.

This study examined microglial responses after photochemically induced focal ischemia of the rat cortex. Microglial activation exceeded by far the area of the ischemic lesion. Based on morphological criteria and expression of immunomolecules three distinct patterns could be distinguished. (1) In the infarct core and the border zone microglia transformed into phagocytes and removed debris with the aid of hematogeneous macrophages. Exclusively in this area a subpopulation of CD8+ microglia/mnacrophages was present. (2) In secondarily degenerating fibre tracts and nuclei with retrograde neuronal loss, microglia were activated with a delay of days and showed increased expression of complement receptor 3, major histocompatibility complex class II and CD4 molecules, but only low phagocytic activity. (3) In remote ipsilateral cortex devoid of neuronal damage, microglia transiently responded by increased complement receptor 3, but not by major histocompatibility complex class II and CD4 expression. Furthermore, the total number of microglia had increased. This remote response could partly be blocked by dizocilpine maleate, a non-competitive N-methyl-D-aspartate receptor antagonist, implicating a functional role of spreading depression. Taken together, our findings point to a tight and differential regulation of microglial responses in the infarct core, degenerating fibre tracts and remote brain regions without neuronal loss.

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