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Biomedical subjects

A Aguzzi

Publications and source records attributed to A Aguzzi.

At least 19 recordsLinked to original sources

Oncogene complementation in fetal brain transplants.

Using a neural transplantation model and retrovirus-mediated gene transfer, we have introduced the oncogenes v-Ha-ras and v-myc into the developing rat brain. Upon insertion of a construct encoding v-Ha-ras and the Escherichia coli beta-galactosidase marker gene, the retroviral vector was found to be expressed in neurons, astrocytes, and endothelial cells of the graft. After latency periods of several months, fascicular neoplasms with expression of S-100 protein were observed in 50% of the transplants. The foreign genes were shown to be highly expressed in the tumors and in intact donor cells, by 5-bromo-4-chloro-3-indolyl-beta-D-galactopyranoside histochemistry, indicating that an activated Ha-ras oncogene has the potential to initiate neoplastic transformation of glial cells. Introduction of the v-myc oncogene into 15 grafts resulted in only a single primitive neuroectodermal tumor. However, simultaneous expression of the v-Ha-ras and v-myc genes yielded highly malignant, polyclonal neoplasms in all recipient animals, as early as 13 days after transplantation, from which cell lines could be easily derived. In addition, neoplastic transformation was also observed in vitro following introduction of ras and myc into embryonic forebrain cultures and into newborn cerebellar cultures. These data indicate a powerful complementary transforming effect of ras and myc on neural progenitors in vivo and in vitro. Coexpression of ras and myc may, therefore, provide a highly efficient tool for transforming neural precursor cells in distinct segments of the central nervous system at different stages of development.

Animals

Ovarian mucinous tumors frequently express markers of gastric, intestinal, and pancreatobiliary epithelial cells.

In 100 mucinous tumors of the ovary (37 benign, 24 borderline, and 39 malignant), the authors determined by histochemical and immunohistochemical techniques the frequencies and patterns of expression of a total of nine markers of gastric, intestinal, and pancreatobiliary duct epithelial cells. M1, a mucin antigen, and cathepsin E (CaE), an aspartic proteinase, two markers of normal gastric superficial/foveolar epithelial cells, were expressed in 95 and 92 tumors, respectively. Periodic acid-concanavalin A-reactive mucin or pepsinogen (PG) II, markers of gastric mucus neck and pyloric gland cells, were found in 79 tumors. All of these tumors also expressed M1 or CaE. DU-PAN-2 and the N-terminal epitope of gastrin-releasing peptide, markers of normal pancreatobiliary duct cells, were found in 70 and 49 tumors, respectively, and CAR-5 and M3SI, markers of intestinal mucin, were expressed in 51 and 30 tumors, respectively. All tumors expressed at least two of the nine markers studied; none expressed PG I, a marker of gastric chief cells. The mucopeptic cell marker, PG II, was significantly more common in benign and borderline than in malignant tumors (P less than 0.005), whereas CAR-5 and M3SI, markers of intestinal mucin, were expressed significantly more often in malignant than in benign and borderline tumors (P less than 0.001). By electron microscopic examination, many tumor cells had fine structural features characteristic of gastric superficial/foveolar and pyloric gland cells, intestinal columnar or goblet cells, and endocervical cells. The results indicate that gastroenteropancreatic cell differentiation--and, in particular, gastric type differentiation--is a prominent feature of ovarian mucinous tumors.

Adenocarcinoma, Mucinous

Mutually exclusive expression of a helix-loop-helix gene and N-myc in human neuroblastomas and in normal development.

We have isolated a novel human gene encoding a helix-loop-helix (HLH) protein by molecularly cloning chromosome 1p36-specific CpG islands. The gene termed heir-1 was localized to the neuroblastoma consensus deletion at 1p36.2-p36.12. Its predicted protein is 95.8% identical to the mouse HLH462 protein and has clear homology to the mouse Id and Drosophila emc proteins. Heir-1 does not encode a basic DNA binding domain as found in basic HLH proteins. The gene is expressed specifically at high abundance in adult lung, kidney and adrenal medulla, but not in adult brain. Despite prominent heir-1 expression in adrenal medulla, which is a prime target for neuroblastomas, 10 out of 12 neuroblastoma-derived cell lines revealed very low levels of heir-1 mRNA. Low heir-1 expression was generally found in tumor cell lines with N-myc overexpression, whereas the two cell lines displaying high heir-1 levels did not overexpress N-myc. Mutually exclusive expression of both genes was also found by in situ hybridization in developing mouse tissues, particularly in the forebrain neuroectoderm. We conclude that heir-1 expression is reduced specifically in the majority of neuroblastomas and suggest an inverse correlation between heir-1 and N-myc expression in neuroblastoma tumors and in embryonic development.

Adrenal Medulla

Pax-5 encodes the transcription factor BSAP and is expressed in B lymphocytes, the developing CNS, and adult testis.

BSAP has been identified previously as a transcription factor that is expressed at early, but not late, stages of B-cell differentiation. Biochemical purification and cDNA cloning has now revealed that BSAP belongs to the family of paired domain proteins. BSAP is encoded by the Pax-5 gene and has been highly conserved between human and mouse. An intact paired domain was shown to be both necessary and sufficient for DNA binding of BSAP. Binding studies with several BSAP recognition sequences demonstrated that the sequence specificity of BSAP differs from that of the distantly related paired domain protein Pax-1. During embryogenesis, the BSAP gene is transiently expressed in the mesencephalon and spinal cord with a spatial and temporal expression pattern that is distinct from that of other Pax genes in the developing central nervous system (CNS). Later, the expression of the BSAP gene shifts to the fetal liver where it correlates with the onset of B lymphopoiesis. BSAP expression persists in B lymphocytes and is also seen in the testis of the adult mouse. All of this evidence indicates that the transcription factor BSAP may not only play an important role in B-cell differentiation but also in neural development and spermatogenesis.

Amino Acid Sequence

A new approach to the molecular basis of neoplastic transformation in the brain.

Gene transfer into living organisms has evolved as a powerful approach to study in vivo effects of specific genes and to devise animal models of hereditary disorders. We have been particularly interested in an approach to introducing transforming genes into the nervous system. Since specific promoter sequences for targeting the expression of a transgene to many cell types of the brain are not yet isolated, a suitable transgenic mouse model was not available for these experiments. This has prompted us to develop an alternative strategy for gene transfer into the brain. The rationale is to introduce foreign genes into fetal brain transplants using embryonic CNS as donor tissue and replication-defective retroviral vectors as genetic vehicles. This technique relies on the extraordinary organotypic differentiation capacity of neural grafts and the expression of retrovirally transmitted genes in different cell types of CNS transplants. In contrast to transgenic animals but analogous to sporadic tumour formation, target cells for the retroviral vector will develop in an environment of unmodified neural tissue. We have introduced a number of neurotropic oncogenes into fetal brain transplants to study potential effects of such genes on the brain. This review will summarize some of the findings which have emerged from this experimental study including the tropism of several genes for endothelial cells, attempts to identify cooperating combinations of transforming genes and an experimental model for primitive neuroectodermal tumours in neural grafts.

Animals

Dominant and recessive molecular changes in neuroblastomas.

Of all human tumors, neuroblastomas bear the most prominent genetic changes. Amplifications and deletions of chromosomal DNA can be identified by light microscopy on chromosomal spreads of neuroblastoma cells with remarkable frequency and consistency. Consequently, extensive studies have been undertaken to elucidate the molecular basis of these cytogenetic changes. A rich body of information has accumulated on the role played by dominant oncogenes and recessive tumor suppressor genes in the pathogenesis of this disease. Most notably, it was found that amplification of N-myc is responsible for the presence of double minutes and homogeneously staining regions in neuroblastoma chromosomes. It has also been discovered that N-myc amplification is a prognostic sign of malignancy. More recently, recessive genetic alterations in neuroblastoma, such as deletion of putative tumor-suppressing genes have received increasing attention, and considerable efforts are being made to identify such genetic elements. Finally, the susceptibility of neuroblastoma cells to differentiating stimuli has made them a popular in vitro system for neurobiological and pharmacological research. The need for suitable in vivo systems has spurred the development of several animal models employing tumor viruses and transgenic technologies.

Amino Acid Sequence

Human foamy virus antigens in thyroid tissue of Graves' disease patients.

Human foamy virus (HFV) is a recently characterized member of the retrovirus subfamily Spumaretrovirinae. HFV has a complex structure: it encodes the classical three retroviral structural genes gag, pol and env, but also possesses additional regulatory, so-called bel sequences. Foamy viruses have been discussed occasionally as being possibly involved in the pathogenesis of autoimmune thyroiditis. By indirect immunofluorescence we were able to demonstrate the expression of HFV gag proteins on the epithelial cells of 7/7 thyroid glands of patients with Graves' disease, but not in those of 9 patients with struma parenchymatosa, 3 with follicular carcinoma and 2 normal thyroids. The thyroids of 5 patients with Hashimoto's disease were also negative with the exception of a single small focus in 1 case. These observations may have importance for our understanding of the development of Graves' disease.

Adolescent

Expression of human foamy virus is differentially regulated during development in transgenic mice.

The human foamy virus (HFV) is a recently characterized member of the spumavirus family. Although no diseases have been unequivocally associated with HFV infection, expression of HFV regulatory genes in transgenic mice induces a characteristic acute neurodegenerative disease and a myopathy. To better characterize the sequence of events leading to disease, and to gain a better understanding of the underlying pathogenetic mechanisms, we have analyzed in detail the transgene expression pattern during development. Transcription of a construct containing all regulatory elements and ancillary genes of HFV was analyzed by in situ hybridization and was shown to occur in two distinct phases. At midgestation, low but widespread expression was first detected in cells of extraembryonic tissues. Later, various tissues originating from embryonic mesoderm, neuroectoderm, and neural crest transcribed the transgene at moderate levels. However, expression decreased dramatically during late gestation and was suppressed shortly after birth. After a latency period of up to 5 weeks, transcription of the transgene resumed in single cells distributed irregularly in the central nervous system and in the skeletal muscle. By the age of 8 weeks, an increasing number of cells displayed much higher expression levels than in embryonic life and eventually underwent severe degenerative changes. These findings demonstrate that HFV transgene expression is differentially regulated in development and that HFV cytotoxicity may be dose-dependent. Such biphasic pattern of expression differs from that of murine retroviruses and may be explained by the specificity of HFV regulatory elements in combination with cellular factors. Future studies of this model system should, therefore, provide novel insights in the mechanisms controlling retroviral latency.

Animals

Retrovirus-mediated oncogene transfer into neural transplants.

A gene transfer model was developed which allows for the identification of transformation pathways in the developing nervous system. Transforming genes were introduced into fetal brain transplants using embryonic CNS as donor tissue and replication-defective retroviral vectors as genetic vehicles. This technique relies on the extraordinary organotypic differentiation capacity of neural grafts and the expression of retrovirally transmitted genes in various cell types of CNS transplants. In contrast to transgenic animals but analogous to sporadic tumor formation, target cells for the retroviral vector develop in an environment of unmodified neural tissue. We have introduced a number of neurotropic oncogenes into fetal brain transplants including genes with an associated tyrosine kinase activity (polyoma medium T, v-src), a novel member of the fibroblast growth factor (fgf) gene family and the SV40 large T antigen. These experiments have demonstrated a significant transformation potential of oncogenes in specific target cells of the brain, provided evidence for a dominant complementary transforming effect of simultaneously expressed ras and myc genes in neural precursor cells and have yielded intriguing model systems for human CNS neoplasms such as the cerebellar medulloblastoma. This review describes the transplantation model, demonstrates several striking phenotypes induced by oncogene expression in neural grafts and elaborates on future prospects of this experimental approach.

Animals

Human foamy virus: an underestimated neuropathogen?

Human foamy virus (HFV) is a recently characterized retrovirus which was originally isolated from patients with various neoplastic and degenerative diseases. However, until today it has not been possible to identify HFV as the causative agent of any disease and little is known about its prevalence in human populations. Like HTLV and HIV, HFV encodes the three structural retroviral genes, gag, pol and env, and an additional region containing three open reading frames, bel-1 to bel-3. Bel-1 activates transcription of the long terminal repeat of HFV and HIV. In order to study the consequences of expressing HFV regulatory genes and to investigate a possible pathogenic potential of HFV, we have introduced parts of the HFV genome into the germ line of mice. Our studies with transgenic mice demonstrate that HFV transgenes encompassing the bel region are transiently transcribed between midgestation and birth at moderate levels in various tissues. Expression is then suppressed, but resumes after a latency of several weeks in a restricted range of tissues and leads to extensive accumulation of HFV transcripts in single cells. This is associated with a progressive degenerative disease of the central nervous system and of striated muscle. These findings provide the first evidence of a disease induced by HFV and suggest that HFV might also act as a human pathogen in neurological diseases. Moreover, the transgenic mouse model will be useful for studying the molecular basis of HFV-induced neurotoxicity, the role of individual disease-associated HFV genes and the regulation of retroviral latency.

Animals

Angiogenic activity of the K-fgf/hst oncogene in neural transplants.

Using retrovirus-mediated gene transfer into neural transplants, we have expressed the human K-fgf/hst oncogene in the central nervous system. Single-cell suspensions of fetal rat brains were removed at embryonic days 13 and 14, exposed to a retroviral vector encoding the K-fgf oncogene and stereotaxically implanted into the caudate putamen of syngenic adult Fisher rats. Recipient animals were sacrificed at intervals of 6-16 months without evidence of neurological impairment. Mock-infected grafts showed the characteristic histopathological appearance of organotypically differentiated neural transplants. In contrast, grafts exposed to the K-fgf gene exhibited abundant capillary proliferation and capillary angiomas. By in situ hybridization analysis and immunohistochemistry, expression of K-fgf was detected in neural cells adjacent to vascular proliferations. Neurons and glia with abundant K-fgf transcripts were morphologically unaffected. In order to examine the transforming potential of the K-fgf gene in the nervous system, we combined retrovirus-mediated transfer of the K-fgf oncogene with a single transplacental exposure of the donor animals to the neurotropic carcinogen N-ethyl-N-nitrosourea (NEU). However, this combination of transforming agents did not result in tumor formation in the grafts. These results provide evidence for a powerful angiogenic effect of K-fgf on the developing brain in vivo.

Animals

Progressive encephalopathy and myopathy in transgenic mice expressing human foamy virus genes.

Transgenic mice carrying the bel region of human foamy retrovirus (HFV) under transcriptional control of its own long terminal repeat expressed the transgene in their central nervous systems and in smooth and striated muscle tissues. The animals developed a progressive degenerative disease of the central nervous system and of the striated muscle. Because expression of the transgene was closely correlated with the appearance of structural damage and inflammatory reactions were scanty, the disease is likely to be caused directly by the HFV proteins. These unexpected findings call for a reevaluation of the pathogenic potential of HFV in humans.

Animals

Expression of v-src induces aberrant development and twinning in chimaeric mice.

The role of the proto-oncogene c-src in mouse development has been investigated by studying the consequences of expressing its viral homologue, v-src. Embryonic stem (ES) cell lines with differing levels of v-src tyrosine kinase activity have been used to generate chimaeric mice. Whereas a low level of v-src expression is compatible with embryogenesis, chimaeras derived from ES clones with high levels of v-src activity develop abnormally and die on the 8th-9th day of gestation. These abnormalities are characterized by the formation of twin or multiple embryos within the same Reichert's membrane, and by the arrest of embryonic development at the late egg cylinder stage, accompanied by relative expansion of the visceral yolk sac (VYS) and hyperplasia of the VYS endoderm. These results demonstrate for the first time that deregulated expression of the src protooncogene product can induce developmental abnormalities during early embryogenesis.

Animals

EGF promotes in vivo tumorigenic growth of primary chicken embryo fibroblasts expressing v-myc and enhances in vitro transformation by the v-erbA oncogene.

We report that the activation of the endogenous chicken EGF receptor leads to the tumorigenic growth in vivo of early passage chicken embryo fibroblasts (CEFs) that express a nonsarcomagenic oncogene, v-myc. To provide a continuous paracrine source of this growth factor in vivo, we employed irradiated Rat-1 cells which had been stably transfected with a synthetic cDNA to human EGF. Expression of another non-sarcomagenic nuclear oncogene, v-erbA, prones the CEFs to in vitro transformation by EGF, but does not cause EGF dependent tumorigenicity in vivo. The short period of incubation in the in vivo assay employed by our study (10 days), together with the genetic stability of primary chicken embryo fibroblasts, make it very likely that the reported alterations in cellular behaviour are a direct and primary effect of the expression of the relevant oncogenes and their cooperation with the EGF induced response. Dose response and ligand binding assays suggest that the EGF response is transmitted via the chicken c-erbB molecule, which by virtue of its preference for TGF-alfa is distinct from the mammalian EGF receptors studied so far. The level of expression of the endogenous chicken EGF receptor is within the same range as that reported for primary human fibroblasts (5-7 x 10(3) per cell). The cooperative effect of v-myc with chicken c-erbB probably takes place at a post receptor level, as its expression did not affect the steady state level or affinity for ligand of the chicken EGF receptor.

Animals

Cell type-specific tumor induction in neural transplants by retrovirus-mediated oncogene transfer.

Using a neural transplantation model which mimics structural and functional properties of the normal rat brain to a high extent, we have taken a novel approach to study the transforming potential of activated oncogenes in the developing brain. Single cell suspensions prepared from fetal rat brains were infected with replication-defective retroviral vectors encoding oncogenes and stereotaxically injected into the caudoputamen of adult F344 rats. Rats carrying transplants expressing the polyoma middle T antigen developed endothelial hemangiomas in the graft which in 70% of the recipient animals led to fatal cerebral hemorrhage within 13-50 days after transplantation. Expression of the v-src gene caused astrocytic and mesenchymal tumors with a 70% incidence after latency periods of 2-6 months, but no endothelial lesions. It was found by in situ hybridization that these oncogenes are expressed in all cell types present in the graft. This indicates that cell-type specific transformation is due to differential susceptibility of the respective target cell to the oncogenes, rather than selective integration or expression of the retroviral construct. The highly efficient gene transfer by retroviral vectors into fetal brain transplants provides a challenging experimental strategy to study differentiation and oncogenesis in the CNS.

Animals

Cellular and molecular aspects of neurocarcinogenesis.

Although the morphology of neural tumors induced in rats by N-ethyl-N-nitrosourea (NEU) and related alkylating agents has been extensively investigated, their histogenesis and the molecular basis of malignant transformation are still largely unknown. This review gives an account of the interaction of neurocarcinogenic agents with cellular DNA, the possible role of promutagenic O6-alkyldeoxyguanine and their deficient repair by the cerebral O6-alkylguanine-DNA alkyltransferase. A new experimental model is described in which neural tumors are induced in fetal brain transplants. Pregnant rats received a single iv dose of NEU (50 mg/kg) on the 14th day of gestation. One day later, suspensions were prepared from the fetal forebrain and stereotactically injected into the caudoputamen of adult rats. After additional exposure to NEU of the host animals 8 days and 9 weeks post transplantation, all rats developed brain tumors within the neural graft. Histopathologically, all neoplasms were classified as olidogdendrogliomas. Other neoplasms typically induced by NEU transplacentally (astrocytomas, mixed gliomas, ependymomas) were absent. The selective induction of oligodendrogliomas indicates that neoplastic transformation in the nervous system can occur in a differentiated glial cell or a precursor cell committed to oligodendrocytic differentiation, and that transformation of a pluripotential stem cell is not necessary. Transplacental exposure of the donor fetuses to NEU alone, i.e., without additional postgrafting exposure, did not produce brain tumors in any of the experimental animals indicating that in the microenvironment of fetal brain transplants the multistep development of gliomas requires additional mutational events. Malignant schwanomas perinatally induced by NEU carry a point mutation in the transmembrane domain of the neu gene. The mode of oncogene activation in NEU-induced CNS gliomas has not yet been elucidated. We have used cerebral grafting techniques to study the effects of known oncogenes on the developing nervous system, taking advantage of efficient gene transfer by replication-defective retroviral vectors and of the extraordinary capacity of fetal CNS to differentiate in and fully integrate with the host brain. Rats carrying transplants exposed in vitro to the polyoma medium T-antigen developed endothelial hemangiomas in the graft which often led to fatal cerebral hemorrhage within 13-50 days after transplantation. Introduction of the viral src gene caused astrocytic and mesenchymal tumors after latency periods of 2-6 months. Following infection of fetal donor cells with a vector encoding the v-myc oncogene, only a single embryonal CNS tumor was observed whereas exposure to v-H-ras produced a low incidence of gliomas.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

[Induction of primitive neuroectodermal tumors by oncogene complementation].

Primitive neuroectodermal tumors (PNET) represent a family of undifferentiated neural neoplasms which predominantly occur in children. PNETs are likely to originate from precursor cells and exhibit a marked potential for neuronal, glial and ependymal differentiation. A prominent example is the medulloblastoma of the cerebellum. In a model system using a novel transgenic CNS transplantation model, we have introduced a combination of ras and myc oncogenes into cell suspensions from fetal forebrain (E14) and postnatal cerebellum (P2) of the rat. Oncogene transfer into fetal forebrain grafts resulted in a high incidence of anaplastic neural tumors predominantly derived from glial precursors. Cell lines established from these neoplasms expressed high levels of both oncogenes. In a second experiment, the ras/myc vector was introduced into cell suspensions from neonatal cerebellum. The transformed cells were cultured for 3 weeks. Following stereotaxic transplantation, tumors of a similar morphology were observed. However, one animal developed a neoplasm with features of a cerebellar medulloblastoma. A cell line which exhibits a marked capacity for neurite extension and synaptogenesis was established from this tumor. Since these cells neither express ras nor myc, an insertion mutagenesis event appears to be responsible. Experiments to characterize this mutation are in progress. Our results indicate a potent transforming effect of ras and myc on neural precursor cells in vivo.

Animals