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Biomedical subjects

C Jacque

Publications and source records attributed to C Jacque.

At least 19 recordsLinked to original sources

Specific pattern of nitric oxide synthase expression in glial cells after hippocampal injury.

In the central nervous system (CNS), nitric oxide (NO) is thought to be involved in a variety of functions including synaptic plasticity, long term potentiation, and neurotoxicity. The aim of the present study was to investigate the expression of nitric oxide synthase (NOS) in the mouse CNS, following surgical injury to the hippocampus. NOS expression was assessed by histochemical detection of nicotinamide adenine dinucleotide phosphate diaphorase (NADPH-diaphorase) activity and immunohistochemistry of the inducible NOS (iNOS). Two days after injury to the CA1 hippocampal field, NADPH-diaphorase activity was detected in pyramidal and granular neurons and also in glial cells in the hippocampus, in contrast to the non-injured one where NADPH-diaphorase staining was observed only in a few interneurons. NADPH-diaphorase histochemistry combined with immunolabelling for GFAP and F4/80 demonstrated that these glial cells were astrocytes and microglia. This pattern of NOS expression is induced specifically after a hippocampal injury since lesion to the prefrontal or cerebellar cortex leads to NOS activity only in monocytes/macrophages like cells. Despite the large expression of NOS detected by NADPH-diaphorase histochemistry after lesioning the hippocampus, immunostaining for iNOS was confined to microglia. The fact that induction of high levels of NOS activity are detected in glial cells after a lesion to the hippocampus could be accounted for by the sensitivity of this structure to a high release of glutamate.

Animals

Widespread neuronal expression of c-Fos throughout the brain and local expression in glia following a hippocampal injury.

Fos oncoprotein is an immediate early gene product and a marker of cell activation following a variety of insults. We have previously shown that a mechanical lesion to the hippocampus of adult mice induces a neuronal expression of the cytokines interleukin-1alpha (IL-1alpha) and tumor necrosis factor-alpha (TNF alpha) whereas a lesion to the striatum does not. The role of these inflammatory cytokines in the pathophysiology of central neurons is still unclear. The present work was undertaken to study a possible correlation between the central expression patterns of c-Fos on the one hand and IL-1alpha and TNF alpha on the other hand. We show that Fos is expressed in a majority of brain neurons after a unilateral lesion to the hippocampus whereas it is confined to the site of injury when applied to the striatum, as previously described for the expression of the cytokines.

Animals

Gene transfer to the central nervous system by transplantation of cerebral endothelial cells.

A cerebral endothelial immortalized cell line was used in transplantation experiments to deliver gene products to the adult rat brain. Survival of grafted cells was observed for at least 1 year, without any sign of tumor formation. When genetically modified to express bacterial beta-galactosidase and transplanted into the striatum, these cells were shown, by light and electron microscope analysis, to integrate into the host brain parenchyma and microvasculature. Following implantation into the striatum and nucleus basalis of adult rats, endothelial cells engineered to secrete mouse beta-nerve growth factor (NGF) induced the formation of a dense network of low-affinity NGF receptor-expressing fibers near the implantation sites. This biological response was observed from 3 to 8 weeks after engraftment. The present study establishes the cerebral endothelial cell as an efficient vector for gene transfer to the central nervous system.

Animals

Identification and topography of neuronal cell populations expressing TNF alpha and IL-1 alpha in response to hippocampal lesion.

In previous studies, we have shown that a traumatic lesion to the hippocampus of adult mice induces the transitory expression of TNF alpha and IL-1 alpha by neurons of different brain areas and also by glial cells at the site of injury. The aim of the present study was to establish whether the expression of TNF alpha and IL-1 alpha is restricted to defined subpopulations, or else is common to most of the central neuronal populations. Using polyclonal anti-GAD 67, anti-TH and monoclonal anti-ChAT, and anti-5-HT antibodies in a double-labeling immunohistochemical procedure in combination with murine anti-TNF alpha and anti-IL-1 alpha polyclonal antibodies, we show that most GABAergic, catecholaminergic, and serotoninergic neurons, and a subgroup of the cholinergic neurons, express these cytokines. Although not immunohistochemically characterized, neurons in some glutamatergic structures such as the hippocampus and the prefrontal cortex also express these cytokines. Thus, we conclude that the capacity of central neurons to express cytokines like TNF alpha and IL-1 alpha in reaction to a brain injury is not restricted to peculiar neuronal subtypes, but could include most of the neuronal populations of the brain.

Acetylcholine

Differential oligodendroglial expression of the tumor necrosis factor receptors in vivo and in vitro.

The cytokine tumor necrosis factor-alpha (TNF alpha) has been proposed to play a key role in the degenerative processes observed in demyelinating diseases such as multiple sclerosis (MS). In the immune system the cellular responses to TNF are mediated by two different receptors: TNF-RI, which is involved in cell death, and TNF-RII, which has been shown to mediate cell proliferation. We investigated the oligodendroglial expression of TNF-RI and -RII. In vivo, in normal adult rodent brain, oligodendrocytes express TNF-RII but not TNF-RI. However, after 3 days in culture, both types of receptors were expressed by mature oligodendrocytes, purified from 4-week-old rats, suggesting that expression of TNF-RI was induced by either the isolation process or the culture conditions. This inducibility of TNF-RI may explain the differences in oligodendrocyte cell death reported in various experimental conditions and in the pathology of MS lesions.

Animals

TNF alpha gene expression is induced in neurones after a hippocampal lesion.

The tumour necrosis factor alpha (TNF alpha) protein is normally absent in the brain. Its production in the nervous tissue during pathological processes is commonly attributed to cells of the macrophage or astroglial lineages. However, an immunoreactivity for TNF alpha has been observed recently in adult mouse brain after a lesion to the hippocampus. The identification, in the present study, of the cells responsible for this synthesis demonstrates a neuronal localization of the TNF alpha messenger RNA. We propose that neurone-produced TNF alpha acts as a modulatory effector in post-traumatic regenerative attempts of the brain.

Animals

[New concepts on the role of cytokines in the central nervous system].

Initially described as modulatory molecules in the peripheral immune system and during haematopoiesis, several cytokines also play a role in the brain. Their synthesis in the central nervous system (CNS) is not due solely to glial cell activation or invading immune cells. On the one hand, several functions of central neurons are modulated by cytokines such as IL-1, TNF alpha, IL-2 and IL-6. Thus, IL-1 and TNF alpha modulate the synthesis of several neuromediators and modify ion influxes. IL-2 regulates the effects of central dopaminergic neurons on cholinergic, noradrenergic, serotoninergic and glutamatergic functions. On the other hand, neurons have recently been shown to be able to synthesize some of these cytokines under specific traumatic conditions. For example, a lesion to the hippocampus induces neuronal synthesis of IL-1 alpha and TNF alpha. This induction through neuronal circuits may operate at a distance in contrast to the glial reaction operating only locally. The recent demonstration of the expression by central neurons of receptors specific for these cytokines support a potentially crucial role for these molecules in brain function. Some data emerge in the literature demonstrating a potent expression of cytokines in the central nervous system in numerous pathological situations. Then, it appears that, at the interface between nervous and immune systems, cytokines may bear a pivotal role in the development of specific symptoms in neuroimmune diseases.

Brain

[Cytokine synthesis: a new form of response of central neurons].

This report provides the immunohistochemical demonstration of the appearance of tumor necrosis factor alpha and interleukin-1 alpha in neuronal cells of different regions of the brain after a surgical injury to the hippocampus. We also demonstrate, by an in situ hybridization technique using a digoxigenin-labeled probe, the induction of TNF alpha mRNA in these neurons. Control lesions in brain areas such as the striatum, the parietal cortex or the cerebellum do not induce the neuronal expression of these cytokines. We hypothesize that cytokines production by neurons may be related with neurotrophin synthesis and restoration of homeostasis in an attempt to promote survival and regeneration of specific neuronal cell populations after a lesion to the hippocampus.

Animals

Regional and developmental variations of GFAP and actin mRNA levels in the CNS of jimpy and shiverer mutant mice.

Gliosis is a common reaction to brain damage. Glial fibrillary acidic protein (GFAP) is a classical astrocytic marker. We have undertaken to measure the level of GFAP-mRNA as an index of gliosis in the brain of jimpy (jp) and shiverer (shi) murine mutants, in which hypomyelination is either severe or moderate, respectively. This study was conducted in five different CNS regions and at different ages. In young jp mutant, the amount of GFAP-mRNA was either normal or lower than in control animals; but after 3 wk of age, the level of GFAP-transcript increased dramatically in all regions examined. A parallel increase in actin-mRNA was also observed, mostly in the diencephalon and to a lesser extent in cortex and spinal cord, but not in the cerebellum and brainstem. In the shi mutant, variations in the amount of GFAP-mRNA were less important than in the jp with two exceptions: In brainstem of 3-wk-old animals, a 2.5-fold increase was observed, and in all the regions but the spinal cord of 12-d-old shi, the levels of GFAP-transcript were 2-5 times lower than in controls. In this mutant, the levels of actin message were usually close to normal, or slightly lower than in controls.

Actins

Migration pathways, differentiation and survival of macroglial cells from a xenograft implanted into the thalamus of newborn mice.

Embryonic rabbit corpus callosum transplants were grafted into thalamus of newborn shiverer mice in order to compare the fates of oligodendroglial and astroglial cells derived from the transplants. Our model allowed the identification of the two populations of macroglial cells. The thalamus was chosen as site of implantation because of its situation at a crossroad of numerous neuronal fascicles. Previous studies, where the dorsal striatum was used as site of implantation, had shown that corpus callosum was one of the favorite routes of migration for both populations of macroglial cells. In the present study special attention was given to the comparison of the migration pathways and areas of settlement of implanted astroglia and oligodendroglia. The internal capsule, the medial lemniscus, the crus cerebri and the thalamic radiations were used by both populations of transplant derived macroglial cells for their migrations through the host parenchyma. They integrated into the host tissue on these routes or further away in areas such as the putamen, the mesencephalon or the colliculi. Signs of degeneration of the implanted astroglia were often observed after 1 month post-implantation.

Animals

Localization of TNF alpha and IL-1 alpha immunoreactivities in striatal neurons after surgical injury to the hippocampus.

Since the inflammatory process develops after transplantation to the brain, we sought to determine the presence of cytokines following a surgical trauma to the brain of an adult mouse. We report the early and marked presence of tumor necrosis factor-alpha and interleukin-1 alpha in neuronal somata of the striatum following a surgical injury to the hippocampus. The expression of cytokines later extends to neuronal cells of the hippocampus, thalamus, cerebral cortex, brain stem, and cerebellum and to glial cells of the corpus callosum. By contrast, these cytokines are not expressed by neuronal cells following injury to other regions, such as the striatum, cerebellum, and cortex. This study suggests a possible role for certain neurons in the brain's early reaction to a penetrating injury.

Animals

Glial biology and disorders.

Much work has been devoted this year to the localization and mode of expression of growth factors and cytokines. Although it is not possible to extrapolate directly from in vitro to in vivo conditions, the plasticity of glial cells seems to be very influenced by growth factors. Astrocytes in vivo do not express many growth factors during normal conditions, but a pathologic event can lift these restrictions. Cytokines and their receptors have been localized on neuronal or glial cell types. The programmed cell death, well identified in neurons, seems to occur also in oligodendrocytes and may be influenced by survival factors. In the adult brain, glial progenitors are present and may be a potential source to generate myelinating oligodendrocytes for myelin repair. In the peripheral nervous system, axonal-Schwann cell signaling may function in both directions during development. Some animal neurologic mutants are models for human diseases; one of them, the Trembler mouse, has effectively led to the genetic characterization of Charcot-Marie-Tooth disease type 1a. As for myelin destruction, the relationship between demyelination and inflammation is still not very clear.

Cell Death

Human Schwann cells in culture: characterization and reactivity with human anti-sulfated glucuronyl glycolipid monoclonal IgM antibodies.

Schwann cells in cultures derived from human fetal peripheral nervous system were characterized by their morphology and indirect immunofluorescence with anti-galactocerebroside and anti-laminin antibodies. They stained strongly with human monoclonal IgM anti-sulfated glucuronyl glycolipid antibodies in double labeling experiments.

Antibodies, Monoclonal

In situ transformation of striatal glia into cerebellar-like glia after brain transplantation.

Transplants of striatum from rabbit embryo were implanted into the colliculus posterior of newborn mice. After 4 weeks, astroglial cells derived from the transplant had migrated into the cerebellum of the host. Whenever they had settled in the cerebellum they presented forms similar to local glia. Some migrated glial cells were found to transform into forms of glia, such as radial-like glia, which are not present in the striatum. This observation confirms that glial precursor cells are highly plastic. It is an in vivo demonstration that local conditions alone define the morphology of glial cells. After grafting in an heterotopic location they take on forms that they were not destined to express in the region of origin.

Animals

Xenogenic transplantation into newborn rodent brain: neovascularization of the graft by the host.

Neoangiogenesis of transplants implanted into the brains of newborn rodent hosts was evaluated by immunohistochemistry for 2 weeks after the operation. The use of species-specific antibodies directed against mouse endothelial cells demonstrated the respective participation of the host and the donor in the formation of new vessels in the graft after crossed rabbit into mouse and mouse into rat transplantation experiments. We show that blood vessels made by host endothelial cells begin to penetrate the transplant 24 h after grafting, and cross it completely by 72 h. Simultaneously, host astrocytes invade the transplant.

Animals

Developmental expression of glial fibrillary acidic protein and actin-encoding messages in quaking and control mice.

Quaking is a neurological mutation leading to pleiotropic phenotypic expression, the most prominent being disturbed myelin formation in the central nervous system (CNS) with minor abnormalities in the peripheral nervous system. Previous immunochemical measurements of glial fibrillary acidic protein (GFAP) revealed a marked increase in the protein in several areas of the CNS. To further characterize the regulation parameters of GFAP synthesis, we analyzed the levels of GFAP mRNA in 5 regions of the CNS, some with elevated levels of GFAP and some without. This was compared to the developmental expression of GFAP transcripts in the same regions in normal mice. To establish the specificity of the variations observed with this astroglial specific message, we conducted a similar investigation with actin RNA which is expressed by several cell types in the CNS. Both the actin and the GFAP message were found to be increased in the adult mutant throughout the CNS. In 2-year-old normal mice the messengers for both cytoskeleton proteins were expressed in a higher amount than in young adults.

Actins

Comparative migration and development of astroglial and oligodendroglial cell populations from a brain xenograft.

In previous studies of brain transplantation, the fate of the implanted glial cells has been investigated separately; that is, the interest has been focused either on the astroglia or on the oligodendroglia. However, the two populations of implanted glial cells may interact with each other, for example by secreting species-specific factors or by inducing reactions by the host. We have used two different models of brain transplantation: one that allows the identification of the implanted astrocytes, and another that allows the identification of the implanted oligodendroglia. The present model is a combination of both; it consists of the grafting of embryonic rabbit brain fragments into the brains of neonatal Shiverer mice. The myelin made by the implanted oligodendrocytes is identified by anti-myelin basic protein immunohistochemistry. The implanted astrocytes are identified by a monoclonal antibody that combines with rabbit but not with mouse glial fibrillary acidic protein. This study shows that although they use the same major routes of migration, both populations of glial cells tend to move differently. They demonstrate areas of common settlement but also areas where only one population of implanted glia is present. From the site of implantation in the dorsal striatum, the major routes of migration are the corpus callosum, the white matter fascicles in the striatum, and the internal capsule. After a delay of 6 weeks, no significant prevalence of one population of implanted glial cells over the other was observed.

Animals

Disappearance of xenogenic astrocytes transplanted into newborn mice is associated with a T-cell response.

Following transplantation of fragments of embryonic rabbit brain into the brains of newborn mice, the proportion of mice bearing detectable xenogenic astrocytes increases to over 80% in the first 3-4 weeks. Recent studies have demonstrated that the host response at this time was dominated by non-specific elements of host defense: macrophages, microglia and astrocytes. In the second phase, the proportion of mice bearing xenogenic astrocytes declines rapidly after 4 weeks and reaches zero by 10 weeks. In the present experiments, designed to characterize the host defense during this period, a dramatic increase in the proportion of mice displaying T-cells in the brain in the fourth and fifth weeks after transplantation was found. This corresponded with a marked decline of xenogenic astrocytes. Both subsets of T-cell, helper-inducer (L3T4) and cytotoxic-suppressor (Lyt2), were found, with L3T4 more numerous in many samples. T-cells were found at the site of transplantation and at sites of migration. The division of the host-defense response in this model into a phase of antigen non-specific cells followed by a period when T-cells appear and transplanted astrocytes disappear, should facilitate kinetic studies into the mechanisms of brain-graft rejection.

Animals