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Biomedical subjects

S Isenmann

Publications and source records attributed to S Isenmann.

At least 55 records · Page 3Linked to original sources

Transforming growth factor-beta 1 inhibits the production of IL-8 and the transmigration of neutrophils through activated endothelium.

A central mechanism of inflammation is the activation of vascular endothelium by the inflammatory cytokines TNF-alpha and IL-1. These cytokines induce the expression of adhesion molecules, the elaboration of chemokines, and the transendothelial migration of white cells. TGF-beta 1 has anti-inflammatory properties, is expressed in the vessel wall, and has previously been shown to inhibit leukocyte adhesiveness to the endothelium at least in part by inhibiting the expression of E-selectin. We now show that TGF-beta 1 also inhibits the migration of neutrophils through endothelial monolayers activated by TNF-alpha. At a dose of 10 U/ml TNF-alpha, the transmigration of neutrophils was inhibited 42.7 +/- 7.9% (n = 8) by 0.2 ng/ml TGF-beta 1. Furthermore, TGF-beta 1 inhibited, in a time- and dose-dependent fashion, the elaboration of IL-8 by TNF-activated endothelial cells by between 33 and 78% (TNF doses from 100 down to 0.1 U/ml) and the elaboration of mRNA for IL-8 by 69%. TGF-beta 1 treatment did not significantly alter the TNF-induced IL-8 mRNA stability, suggesting that the mechanism of action of TGF-beta 1 is on gene transcription. Neutrophil transmigration through cytokine-activated endothelium involves both IL-8-dependent and IL-8-independent mechanisms. Using an anti-IL-8 Ab, we show that TGF-beta 1 inhibits only the IL-8-dependent pathway, but does not affect the IL-8-independent transendothelial migration mechanism. These and our previous results show that TGF-beta1, achieves its anti-inflammatory properties by inhibiting the expression of at least two genes, E-selectin and IL-8, which are essential in the inflammatory pathway.

Cell Movement↗

Normal host prion protein necessary for scrapie-induced neurotoxicity.

Accumulation of the prion protein PrPSc, a pathological and protease-resistant isoform of the normal host protein PrPC, is a feature of prion disease such as scrapie. It is still unknown whether scrapie pathology comes about by neurotoxicity of PrPSc, acute depletion of PrPC, or some other mechanism. Here we investigate this question by grafting neural tissue overexpressing PrPC into the brain of PrP-deficient mice which are scrapie-resistant and do not propagate infectivity. After intracerebral inoculation with scrapie prions, the grafts accumulated high levels of PrPSc and infectivity and developed the severe histopathological changes characteristic of scrapie. Moreover, substantial amounts of graft-derived PrPSc migrated into the host brain. Even 16 months after inoculation no pathological changes were seen in PrP-deficient tissue, not even in the immediate vicinity of the grafts. Therefore, in addition to being resistant to scrapie infection, brain tissue devoid of PrPC is not damaged by exogenous PrPSc.

Animals↗

Electrophysiology in the locked-in-syndrome.

We investigated five patients with a locked-in-syndrome (LIS) and reported the clinical, electrophysiologic, neuroradiologic, and neuropathologic findings. EEG reactivity was present in two and absent in three cases. Somatosensory evoked potentials (SEP) varied from unilaterally normal to bilaterally absent. We conclude that there is no specific pattern of SEP abnormality characteristic of LIS and that EEG reactivity cannot be taken as a sole measure of consciousness.

Adult↗

Telencephalic transplants in mice: characterization of growth and differentiation patterns.

Telencephalic grafting represents a powerful tool for developmental studies and for the investigation of biological features of transgenic brain tissue. The interpretation of grafting experiments, however, requires detailed knowledge of graft biology. Therefore, we have characterized growth rates, graft size, and differentiation of embryonic telencephalic tissue harvested at various developmental stages and grafted into the caudoputamen and lateral ventricles of histocompatible mice. A total of 164 grafts were analysed up to 500 days after transplantation. Of all transplants, 79.3% resulted in the formation of solid neural grafts. Grafted cells were identified by 3H-thymidine labelling and autoradiography. Proliferation was studied by bromodeoxyuridine incorporation and decreased from an initial 35% at 1-3 d after grafting to less than 1.6% after 40 days. The graft size was measured as a function of the embryonic age of the transplanted tissue. Our data indicate that telencephalic tissue harvested at embryonic day E 12.5 reproducibly yields large, fully differentiated neuroectodermal grafts. The parameters defined in this study will be useful for detailed analysis of neuroectodermal tissue from mice undergoing fatal neurodegeneration, such as knockout mice bearing lethal mutations.

Animals↗

Comparative in vivo and pathological analysis of the blood-brain barrier in mouse telencephalic transplants.

The post-transplantation status of the blood-brain barrier (BBB) is still a matter of debate. In an attempt to define BBB properties after neural transplantation in mice of a defined genetic background, we have used two exogenous markers (horseradish peroxidase and Evans blue), one endogenous marker (immunoglobulins), and in vivo contrast enhanced magnetic resonance imaging (MRI) and compared the results obtained with the different methods. With all four techniques employed, we found the BBB to be reconstituted in 67% of the grafts 3 weeks after grafting, and in more than 90% of all grafts 50 days after grafting. Horseradish peroxidase and contrast enhanced MRI were the most sensitive techniques, the latter offering the unique advantage of repetitive scanning of individual grafts. Our findings provide important information for transplantation studies in mouse models for neurodegenerative diseases.

Animals↗

[Gene therapy of neurologic diseases. Experimental approaches and clinical perspectives].

So far, it has not been possible to treat many neurological conditions causally. However, in the past few years underlying genetic defects have been characterized for a substantial number of neurodegenerative disorders. Experimental methods have been developed that allow for efficient gene transfer into defined regions of the mammalian CNS. Such techniques can be applied to deliver genes into target cells of a recipient organism or to transfer genetically modified cells into defined regions of the CNS. Candidate genes for gene therapy are those encoding for neurotrophins and neurotransmitters for symptomatic therapy and, in the case of neurodegenerative disorders with localized gene defects, the wild-type allele as a causal treatment approach. In this review article, we describe some of the most widely used strategies for gene transfer to the CNS. We also report on the results obtained with animal models for human disease, and discuss both the chances and problems of gene therapy approaches in clinical medicine.

Animals↗

Neuroectodermal grafting: a new tool for the study of neurodegenerative diseases.

Transgenic and knockout mice have contributed much to our current understanding of the role played by single genes during development and in pathological processes of the CNS, such as neuro-degeneration. However, embryonic lethality resulting from the disruption of important genes has often hindered the interpretation of such experiments. Grafting of immature cells from genetically modified organisms into healthy recipients promises to efficiently bypass this problem. We have used neural transplantation techniques which allow us to keep CNS tissue of knockout and transgenic mice viable for a prolonged period of time in the brain or in the kidney capsule of healthy recipients. We have characterized biological parameters such as growth, proliferation and differentiation and also the formation of an intact blood-brain barrier (BBB) after grafting of wild-type telencephalic anlage in this system. We have also employed this technique to study the longterm properties of neuroepithelial tissue derived from knockout mice. The results of our studies are discussed in the context of neurodegenerative diseases.

Adenosine Triphosphatases↗

Experimental Listeria meningoencephalitis. Macrophage inflammatory protein-1 alpha and -2 are produced intrathecally and mediate chemotactic activity in cerebrospinal fluid of infected mice.

In bacterial meningitis, the recruitment of leukocytes across the blood-brain barrier into the central nervous system may be crucial for both elimination of pathogens and tissue injury. In addition to bacterial cell wall products, host factors including chemokines may lead to accumulation of phagocytes within the central nervous system. As shown by Northern analysis, brains of mice infected intracerebrally with Listeria monocytogenes (LM) express mRNA for three chemokines, the macrophage inflammatory protein (MIP)-1 alpha, MIP-1 beta, and MIP-2. The cellular sources of these chemokines comprise both the blood-derived polymorphonuclear leukocytes (PMNs) and monocytes infiltrating the meninges, the ventricular system and the periventricular area. In the course of meningitis a time-dependent increase of MIP-1 alpha and MIP-2 was found in the cerebrospinal fluid (CSF) by ELISA. CSF taken 24 h after infection (CSF-LM24) induced migration of human leukocytes when treated in chemotactic chambers in vitro. Neutralizing Abs to chemokines identified MIP-1 alpha and MIP-2 to be responsible for CSF-LM24 mediated chemotaxis of monocytes and PMNs, respectively. CSF obtained from mock-infected animals contained no MIP-1 alpha or MIP-2 and did not lead to migration of leukocytes. When testing CSF-LM24 on mouse spleen cells, the chemotactic activity detected for mononuclear cells was only partly inhibited by Abs to MIP-1 alpha and -1 beta. Thus, in addition to MIP-1 and -2 other not yet defined chemotactic factors are of importance for recruitment of leukocytes in bacterial meningitis.

Animals↗

Essential role for the c-met receptor in the migration of myogenic precursor cells into the limb bud.

Limb muscles develop from cells that migrate from the somites. The signal that induces migration of myogenic precursor cells to the limb emanates from the mesenchyme of the limb bud. Here we report that the c-met-encoded receptor tyrosine kinase is essential for migration of myogenic precursor cells into the limb anlage and for migration into diaphragm and tip of tongue. In c-met homozygous mutant (-/-) mouse embryos, the limb bud and diaphragm are not colonized by myogenic precursor cells and, as a consequence, skeletal muscles of the limb and diaphragm do not form. In contrast, development of the axial skeletal muscles proceeds in the absence of c-met signalling. The specific ligand of the c-met protein, the motility and growth factor scatter factor/hepatocyte growth factor, is expressed in limb mesenchyme and can thus provide the signal for migration which is received by c-met. We have therefore identified a paracrine signalling system that regulates migration of myogenic precursor cells.

Animals↗

The E-selectin-ligand ESL-1 is a variant of a receptor for fibroblast growth factor.

E-SELECTIN is an inducible cell-adhesion molecule on endothelial cells, which mediates the binding of neutrophils and functions as a Ca(2+)-dependent lectin. We have recently identified a 150K glycoprotein as the major ligand for E-selectin on myeloid cells, using a recombinant antibody-like form of mouse E-selectin as an affinity probe. Here we report the isolation of a mouse complementary DNA for this E-selectin ligand (ESL-1). The predicted amino-acid sequence of ESL-1 is 94% identical (over 1,078 amino acids) to the recently identified chicken cysteine-rich fibroblast growth-factor receptor, except for a unique 70-amino-acid aminoterminal domain of mature ESL-1. Fucosylation of ESL-1 is imperative for affinity isolation with E-selectin-IgG. A fucosylated, recombinant antibody-like form of ESL-1, but not of L-selectin, supports adhesion of E-selectin-transfected Chinese hamster ovary cells. Antibodies against ESL-1 block the binding of mouse myeloid cells to E-selectin. ESL-1, with a structure essentially identical to that of a receptor, thus functions as a cell adhesion ligand of E-selectin.

Amino Acid Sequence↗

The role of perforin-expression by granular metrial gland cells in pregnancy.

The pregnant uterus of humans and rodents contains a population of granulated lymphoid cells, which, in the mouse, are called granular metrial gland (GMG) cells and have been described to express high levels of perforin. Since there is evidence for cytolytic activity of these cells and since perforin is a crucial effector molecule for the lytic action of cytotoxic T cells and natural killer cells, we evaluated the function of perforin in the pregnant uterus by using perforin-deficient mice. Perforin-deficient female mice were found to reproduce as efficiently as normal control females when bred either with syngeneic or allogeneic males. However, perforin-deficient mice differed from normal mice in that the frequency of GMG cells was significantly higher within maternal blood spaces and within several compartments of the feto-maternal interface. Proliferating GMG cells, identified by [3H] thymidine incorporation, were observed during more advanced stages of pregnancy when compared to normal controls. In contrast to normal mice, perforin-deficient mice did not display GMG cells attached to degenerating trophoblasts; instead perforin-deficient GMG cells were often observed in association with small maternal lymphocytes. In addition, the lack of transmission of lymphocytic choriomeningitis virus from infected pregnant perforin-deficient mice to the fetuses argued against a role of perforin expression by GMG cells in prevention of virus transmission from the mother to the fetus. Our data indicate that functional perforin is not necessary for successful pregnancies. The morphological changes in the pregnant uterus of perforin-deficient mice might, however, point to a certain, as-yet undefined function of perforin in the uterus of pregnant normal mice, which is functionally compensated in perforin-deficient mice.

Animals↗

Transgenic and gene disruption techniques in the study of neurocarcinogenesis.

Transgenic technologies have come of age, and the field of carcinogenesis has profited extensively from the availability of these methods. Both the inappropriate expression of dominant oncogenes in specific tissues and the ability to "knock out" tumor suppressor genes in mammalian organisms have enabled substantial advancements of our understanding of development and progression of the neoplastic phenotype. In the first part of this article, we review the most popular techniques for modification of the mammalian genome in vivo, i.e. microinjection of fertilized eggs, retrovirus-mediated gene transfer, and targeted gene deletion through homologous recombination. Subsequently, we attempt a critical evaluation of the available models of neurocarcinogenesis, and discuss their impact and future potential for the study of cancer in the nervous system.

Animals↗

The AMOG/beta 2 subunit of Na,K-ATPase is not necessary for long-term survival of telencephalic grafts.

Adhesion molecule on glia (AMOG) represents the beta 2-subunit of murine Na,K-ATPase. Mice carrying a targeted deletion of the AMOG/beta 2 gene exhibit tremor and limb paralysis at postnatal day (P) 15 and die 2 days after the onset of symptoms. The brains of these mice show edema and swelling of astrocytic end feet. However, the cause of death has remained unclear. To identify long-term consequences of AMOG/beta 2 deficiency, we have grafted parts of the embryonic telencephalic anlage of AMOG/beta 2-deficient mice into the caudoputamen of wild-type mice and analyzed the grafts up to 500 days after transplantation. Histological, immunocytochemical, and in situ hybridization techniques were applied to examine histoarchitecture, proliferation, differentiation, and long-term survival of grafts. AMOG/beta 2-deficient telencephalic grafts develop normally and form solid neural tissue that cannot be distinguished from control grafts by morphological features or with immunocytochemical stains for neuronal and glial markers. No signs of degeneration can be found. Expression analysis, however, revealed that no AMOG/beta 2 protein of possible host origin can be detected in AMOG/beta 2-deficient grafts. Graft-borne astrocytes express neither the AMOG/beta 1 nor the AMOG/beta 2 subunit of Na,K-ATPase as examined with immunocytochemistry and in situ hybridization. These findings indicate that AMOG/beta 2 is not necessary for long-term survival of telencephalic graft tissue.

Adenosine Triphosphatases↗

Secondary manifestation of medulloblastoma: metastases and local recurrences in 66 patients.

Although primary treatment of medulloblastoma is now successful in a high percentage of patients, its secondary manifestations still bear a poor prognosis. Thorough studies of secondary manifestations are therefore pivotal to plan therapeutic approaches for the long-term management of medulloblastoma. Here we describe the incidence of secondary tumour manifestations in 66 patients of a single centre who underwent surgery for medulloblastoma between 1975 and 1990. No patient was excluded due to a poor postoperative course. Thirty-five patients showed evidence of secondary tumour growth. Of these, 17 suffered from local recurrence, and 27 developed metastastatic disease. The median latencies for secondary manifestations were 25 months for local recurrence (n = 17), 11 months for spinal metastases (n = 10), 15 months for supratentorial metastases (n = 8), 8 months for subleptomeningeal dissemination (n = 6), and 23 months for systemic metastases (n = 8). Two patients developed primary metastatic spread to the posterior fossa. Of 8 patients with supratentorial metastases, 6 developed fronto-basal lesions. In our patients, 89% of secondary lesions occurred within less than 3 years after primary diagnosis. 85% of patients with extra-axial tumour spread had been treated with a permanent shunt. Radical tumour resection and radiotherapy with 30 Gy to the neuraxis and 20 Gy boost to the posterior fossa was an important prognostic factor in this series. Patients with additional chemotherapy did not benefit significantly from this treatment. We conclude that optimal management of the primary lesions should aim at (i) total resection, (ii) avoid permanent shunting, and (iii) completion of the radiotherapy with inclusion of the medial frontobasal cisterns in the radiotherapeutic regimen. Our analysis suggests that adequate postoperative screening programmes should consist of 3-monthly scans of the neuraxis in the first three postoperative years and 6-monthly scans thereafter.

Adolescent↗

Activation of HIV transcription by human foamy virus in transgenic mice.

BACKGROUND: Although infection by HIV-1 is the primary cause of AIDS, cofactorial agents of an infectious nature may be involved in the pathogenesis of the disease. The present work addresses the cofactorial potential of human foamy virus (HFV) in AIDS. It has been suggested that HFV seroprevalence reaches 5% in East Africa, and HFV seroprevalence in East African patients suffering from AIDS and AIDS-related complex may be as high as 20%. Although the pathogenic potential of HFV in humans has not yet been investigated in detail, HFV transgenic mice develop an encephalopathy reminiscent of some of the features of HIV-associated brain diseases. EXPERIMENTAL DESIGN: We set out to investigate the possibility that the regulatory genes of HFV may act as transcriptional cofactors of HIV. To study the effects of bel1, the transcriptional activator of HFV, on the HIV-1 LTR, we generated double transgenic mice for bel1 and for the HIV-1 LTR linked to a lacZ reporter gene. Moreover, to identify the cis-acting elements mediating bel1 action on the HIV LTR, we analyzed the consequences of deletions in the negative regulatory element or in the NF-kappa B binding sites. RESULTS: We demonstrate that bel1 is capable of activating the transcription of HIV-1 LTR in vivo. Such transactivational activity, however, was observed exclusively in a subset of hippocampal neurons, whereas cortical neurons expressing bel1 did not show transactivation. Transactivation was completely abolished by the deletion of the NF-kappa B binding sites. In contrast, deletion of the negative regulatory element region seems to enhance transactivation of bel1 on HIV-1 LTR over a prolonged period of time. CONCLUSIONS: Our study indicates that transcriptional transactivation of HIV-1 by HFV can be accomplished in vivo and is dependent on NF-kappa B binding sequences. Therefore, transcriptional transactivation is a potential mechanism of cooperation between HFV and HIV. It is conceivable that this phenomenon attains clinical significance in a situation of coinfection with both viruses.

Animals↗

Monospecific and common glycoprotein ligands for E- and P-selectin on myeloid cells.

E- and P-selectin are inducible cell adhesion molecules on endothelial cells, which function as Ca(2+)-dependent lectins and mediate the binding of neutrophils and monocytes. We have recently identified a 150-kD glycoprotein ligand for E-selectin on mouse myeloid cells, using a recombinant antibody-like form of mouse E-selectin. Here, we report that this ligand does not bind to an analogous P-selectin fusion protein. Instead, the chimeric P-selectin-IgG protein recognizes a 160-kD glycoprotein on the mouse neutrophil progenitor 32D cl 3, on mature mouse neutrophils and on human HL60 cells. The binding is Ca(2+)-dependent and requires the presence of sialic acid on the ligand. This P-selectin-ligand is not recognized by E-selectin. Removal of N-linked carbohydrate side chains from the 150-kD and the 160-kD monospecific selectin ligands abolishes the binding of both ligands to the respective selectin. Treatment of HL60 cells with Peptide: N-glycosidase F inhibited cell binding to P- and E-selectin. In addition, glycoproteins of 230 and 130 kD were found on mature mouse neutrophils, which bound both to E- and P-selectin in a Ca(2+)-dependent fashion. The signals detected for these ligands were 15-20-fold weaker than those for the monospecific ligands. Both proteins were heavily sialylated and selectin-binding was blocked by removal of sialic acid, but not by removal of N-linked carbohydrates. Our data reveal that E- and P-selectin recognize two categories of glycoprotein ligands: one type requires N-linked carbohydrates for binding and is monospecific for each of the two selectins and the other type binds independent of N-linked carbohydrates and is common for both endothelial selectins.

Amidohydrolases↗

Transgenic and knock-out mice: models of neurological disease.

Besides providing useful model systems for basic science, studies based on modification of the mammalian germ line are changing our understanding of pathogenetic principles. In this article, we review the most popular techniques for generating specific germ line mutations in vivo and discuss the impact of various transgenic models on the study of neurodegenerative diseases. The "gain of function" approach, i.e., ectopic expression of exogenous genes in neural structures, has deepened our understanding of neurodegeneration resulting from infection with papova viruses, picorna viruses, and human retroviruses. Further, inappropriate expression of mutated cellular molecules in the nervous system of transgenic mice is proving very useful for studying conditions whose pathogenesis is controversial, such as Alzheimer's disease and motor neuron diseases. As a complementary approach, ablation of entire cell lineages by tissue-specific expression of toxins has been useful in defining the role of specific cellular compartments. Modeling of recessive genetic diseases, such as Lesch-Nyhan syndrome, was helped by the development of techniques for targeted gene deletion (colloquially termed "gene knock-out"). Introduction of subtle homozygous mutations in the mouse genome was made possible by the latter approach. Such "loss of function" mutants have been used for clarifying the role of molecules thought to be involved in development and structural maintenance of the nervous system, such as the receptors for nerve growth factor and the P0 protein of peripheral myelin. In addition, these models are showing their assets also in the study of enigmatic diseases such as spongiform encephalopathies.

Alzheimer Disease↗

[Morphology and development of neural transplants of AMOG-deficient mice].

The adhesion molecule on glia (AMOG) has been reported to function as cell adhesion molecule and also to constitute the beta 2-subunit of the murine Na,K-ATPase. In order to elucidate these functions in vivo, Magyar et al. have generated mice carrying a targeted deletion of the AMOG gene. These mice exhibit behaviourally normal development till postnatal day P16. At this time, they develop muscular weakness, incoordination, and tremor. Death invariably occurs 24-36 hours after onset of the symptoms. Histological and ultrastructural examination of brain sections show enlarged ventricles, brain edema, and swelling of astrocyte end feet. However, no disturbances of the architecture or cell migration in the brain can be detected. In order to identify long-term consequences of AMOG deficiency which might not yet be detectable at the time of death, we have established a CNS grafting model. The embryonal brain anlage (E10.5-E13.5) was grafted into the caudoputamen of wild type mice. The graft recipients are sacrificed up to 7 months after the procedure. Both wild type and AMOG deficient grafts develop and form solid neural tissue with neurons, myelinated axons, glial cells, and ventricular structures, as shown by histological and immunocytochemical analysis. However, no differences in grafts derived from wild type, heterozygous, and AMOG-deficient donors can be detected. Proliferation has been examined by BrdU immunocytochemistry. The blood-brain barrier as examined by repeated magnetic resonance imaging after injection of Gadolinium-DTPA has been shown to be largely reconstituted five weeks after grafting.

Adenosine Triphosphatases↗