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A Messing

Publications and source records attributed to A Messing.

At least 55 records · Page 3Linked to original sources

Targeted deletion in astrocyte intermediate filament (Gfap) alters neuronal physiology.

Glial fibrillary acidic protein (GFAP) is a member of the family of intermediate filament structural proteins and is found predominantly in astrocytes of the central nervous system (CNS). To assess the function of GFAP, we created GFAP-null mice using gene targeting in embryonic stem cells. The GFAP-null mice have normal development and fertility, and show no gross alterations in behavior or CNS morphology. Astrocytes are present in the CNS of the mutant mice, but contain a severely reduced number of intermediate filaments. Since astrocyte processes contact synapses and may modulate synaptic function, we examined whether the GFAP-null mice were altered in long-term potentiation in the CA1 region of the hippocampus. The GFAP-null mice displayed enhanced long-term potentiation of both population spike amplitude and excitatory post-synaptic potential slope compared to control mice. These data suggest that GFAP is important for astrocyte-neuronal interactions, and that astrocyte processes play a vital role in modulating synaptic efficacy in the CNS. These mice therefore represent a direct demonstration that a primary defect in astrocytes influences neuronal physiology.

Animals↗

GFAP Transgenic Mice

The ability to direct expression of genes to astrocytes in mice has been one of the major motivators of transcriptional analyses of the glial fibrillary acidic protein (GFAP) gene. Another has been the possibility of discovering signaling pathways that operate during development, disease, and injury-all states that increase GFAP gene activity-by identifying and working back from the responsible DNA elements. Here we review studies in both these areas and provide practical guidelines for the construction and analysis of GFAP transgenes. Analyses of the GFAP promoter from cell transfection experiments are summarized to provide background information for the studies in transgenics. Another section provides practical information on the construction and analysis of transgenic mice, with particular reference to GFAP transgenes. The survey of analyses of GFAP transcription elements in transgenic mice reveals that a segment of about 2 kb of the 5'-flanking region of the gene is sufficient to direct reporter gene activity to astrocytes with high specificity. This segment also supports a response to brain injury by upregulation of the activity. Developmentally, the transgene activity is seen by e12.5, several days earlier than GFAP protein or mRNA has been detected. GFAP transcription control regions have already been used to express several proteins in astrocytes to evaluate their biological effects. These proteins include IL-3, IL-6, TGF-beta1, the HIV envelop protein gp120, the MHC Class I Db protein, somatosatin, CNTF, and the herpes simplex virus thymidine kinase. In the future many other GFAP transgenes are expected to be produced, with increasing knowledge of the GFAP regulatory elements promising greater sophistication through promoters that can be regulated, have higher activity, and target activity to particular brain regions.

Journal Article↗

E6 and E7 expression from the HPV 18 LCR: development of genital hyperplasia and neoplasia in transgenic mice.

Human papillomavirus type 18 infection is highly associated with malignant tumors of the genital tract. To investigate the tissue specificity of the HPV long control region (LCR) and the transforming ability of the E6-E7 oncoproteins, an HPV-18 transgene containing the viral LCR and E6 and E7 genes was introduced into mice. Three founder males exhibited enlarged seminal vesicles and preputial glands by 50 weeks of age. A line of transgenic mice was established by in vitro fertilization, and subsequent generations of transgenic males and females were monitored for lesions. Approximately 80% of hemizygous transgenic males exhibited enlarged seminal vesicles and preputial glands as early as 12 weeks of age. Histological examination indicated that this enlargement was due to distension by fluid, along with polyploid hyperplasia of the lining secretory epithelium. E6 and E7 transcripts were limited to affected organs and kidney. Approximately 41% of transgenic females developed cervical neoplasms between 1-2 years of age. Histologically, tumors were mesenchymal rather than epithelial in origin. E6 and E7 transcripts were restricted to cervical tumor tissue and kidney. These findings suggest that the HPV-18 LCR has an element(s) which directs expression specifically to the urogenital tract in transgenic mice.

Animals↗

Anatomical and physiological measures of auditory system in mice with peripheral myelin deficiency.

Animal models with genetic abnormalities have been increasingly used in auditory research. Both TrJ mice and Po-DT-A mice are animals with peripheral myelin deficiency. In TrJ mice, the defect is due to a mutated PMP-22 gene. In Po-DT-A mice, the defect is produced by a transgene using the rat Po promotor to direct the expression of gene encoding for the bacterial diphtherial toxin A chain (DT-A). This study evaluates the auditory system both physiologically and histologically in these two strains of mice. Histological examination revealed that there was myelin deficiency of the auditory nerve fibers, accompanied by a loss of dendrites and a loss of spiral ganglion cell bodies in both strains of mice. In general, histological deficits in TrJ mice were greater than those in Po-DT-A mice. There was a strong correlation between the degree of myelin deficiency and the survival of spiral ganglion neurons. ABR measurements exhibited differences in threshold, latency and slope of the ABR growth function between myelin-deficient mice and their respective controls. These results suggest that the integrity of the myelin in the auditory nerve is important both for neural survival and for normal electrophysiological function of spiral ganglion neurons.

Acoustic Stimulation↗

Overexpression of TGF-beta 1 in the central nervous system of transgenic mice results in hydrocephalus.

Transforming growth factor beta (TGF-beta) has been proposed to play a number of roles in central nervous system (CNS) development and response to injury. To test these proposals, transgenic mice were generated which overproduce TGF-beta 1 in the CNS. Surprisingly, these mice developed severe hydrocephalus and died between birth and 3 weeks of age. Ovary transplantation from an affected female founder has permitted perpetuation of one of the lines as a hydrocephalus model whose genetic defect is known. These results also demonstrate that the developing CNS is highly sensitive to TGF-beta, and suggest a role for aberrant expression of TGF-beta in the pathogenesis of developmental disease of the CNS.

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Axons regulate the expression of Shaker-like potassium channel genes in Schwann cells in peripheral nerve.

We examined potassium channel gene expression of two members of the Shaker subfamily, MK1 and MK2, in sciatic nerves from rats and mice. In Northern blot analysis, MK1 and MK2 probes detected single transcripts of approximately 8 kb and approximately 9.5 kb, respectively, in sciatic nerve and brain from both species. Polymerase chain reaction amplification of a cDNA library of cultured rat Schwann cells using MK1- and MK2- specific primers produced DNA fragments that were highly homologous to MK1 and MK2. To determine whether these channel genes were axonally regulated, we performed Northern blot analysis of developing, permanently transected, and crushed rat sciatic nerves. The mRNA levels for both MK1 and MK2 increased from P1 to P15 and then declined modestly. Permanent nerve transection in adult animals resulted in a dramatic and permanent reduction in the mRNA levels for both MK1 and MK2, whereas normal levels of MK1 and MK2 were restored when regeneration was allowed to occur following crush injury. In all cases, MK1 and MK2 mRNA levels paralleled that of the myelin gene P0. Elevating the cAMP in cultured Schwann cells by forskolin, which mimics axonal contact but not myelination, did not induce detectable levels of MK1 and MK2 mRNA by Northern blot analysis. Further, the level of MK1 mRNA in the vagus nerve, which contains relatively fewer myelinating Schwann cells and relatively more non-myelinating Schwann cells than the sciatic nerve, is reduced relative to the sciatic nerve. In conclusion, we have identified two Shaker-like potassium channel genes in sciatic nerves whose expressions are regulated by axons. We suggest that MK1 and MK2 mRNA are expressed in high levels only in myelinating Schwann cells and that these Shaker-like potassium channel genes have specialized roles in these cells.

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Molecular phenotype of simian virus 40 large T antigen-induced primitive neuroectodermal tumors in four different lines of transgenic mice.

BACKGROUND: We compared the molecular phenotypes of central nervous system tumors arising in four different lines of transgenic mice (TGM) carrying the Simian virus 40 large T antigen driven by different promoters or enhancers. Two of the four lines developed primitive neuroectodermal tumors (PNETs) in the brain stem or pineal gland. A third TGM line developed retinoblastomas (a PNET-like tumor of the retina) as well as PNETs in the mesencephalon, while the fourth TGM developed retinoblastomas and adrenal pheochromocytomas. EXPERIMENTAL DESIGN: The expression of developmentally regulated polypeptides specific for the neuronal or glial lineage was examined in these PNETs using immunohistochemistry and Western blotting. RESULTS: Neoplastic cells in all of the PNETs exhibited neuronal, but no glial specific markers as evidenced by the invariable expression of synaptophysin, but no detectable glial fibrillary acidic protein or myelin basic protein. PNETs with a more differentiated neuronal phenotype expressed multiple neuronal polypeptides. The phenotypic properties of these PNETs closely resembled those found in human brain PNET biopsy samples and cell lines derived therefrom. CONCLUSIONS: We conclude that Simian virus 40 T antigen-induced PNETs in TGM exhibit the molecular phenotype of developing neurons or neuronal progenitor cells. Although many factors could influence the phenotype of these experimental PNETs (e.g., promoter, site of integration of the transgene) these PNETs appear to be suitable TGM models of human PNETs of the central nervous system.

Adrenal Gland Neoplasms↗

Hypomyelinating peripheral neuropathies and schwannomas in transgenic mice expressing SV40 T-antigen.

We have prepared transgenic mice carrying a temperature-sensitive mutant of the SV40 oncogene (tsA-1609) under the control of 5' flanking sequences from the Schwann cell-specific P0 gene. Four of six founder mice showed moderate to severe hypomyelination in peripheral nerves of tail biopsies, with only rare myelinated fibers. Offspring were obtained from three of these founders. Northern blot and immunohistochemical analyses showed that expression of T-antigen was restricted to the PNS. Mice expressing the highest levels of T-antigen exhibited the most severe hypomyelination. Mice expressing lower levels developed transient mild hypomyelination, but after long latencies developed sporadic schwannomas. An immortalized cell line exhibiting properties of Schwann cells at an arrested stage of differentiation, termed "SCT-1," was derived from one of these tumors.

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Modulation of axon diameter and neurofilaments by hypomyelinating Schwann cells in transgenic mice.

Studies of peripheral nerves in two different lines of hypomyelinating transgenic mice support the hypothesis that myelinating Schwann cells exert a significant influence on key biological properties of axons. The mice contain transgenes combining the peripheral myelin protein zero gene (P0) promoter and either the diphtheria toxin A chain gene product or the SV40 (simian virus 40) large T antigen. The consequences of peripheral nerve hypomyelination on axon diameter, neurofilament (NF) density, and NF phosphorylation were analyzed. The sciatic nerves of the P0 diphtheria toxin A transgenic mice (DT) evidenced the most severe hypomyelination, and this was associated with a dramatic decrease in NF phosphorylation plus a marked increase in NF density. In contrast, the sciatic nerves in the P0 SV40 large T antigen transgenic mice (SV40) were not as severely hypomyelinated and there was a milder decrease in NF phosphorylation plus a more modest increase in NF density. Further, the sciatic nerves in both lines evidenced a decrease in axonal caliber without any change in NF content. Taken together, these studies provide strong evidence indicating that myelinating Schwann cells exert a significant influence on axon caliber by modulating NF phosphorylation and NF packing density in the axons of peripheral nerves. Thus, key biological properties of axons are modulated by signals transmitted from myelinating Schwann cells to axons of peripheral nerves.

Animals↗

Smooth muscle and bone neoplasms in transgenic mice expressing SV40 T antigen.

Transgenic mice carrying the SV40 early region fused to the Drosophila hsp70 promoter developed smooth muscle and bone neoplasms. The smooth muscle tumors appeared in aged mice and were preferentially located on the muzzle or eyelids. Multiple neoplasms were often present and each appeared to be an independent proliferation. In contrast, the bone tumors typically developed in the petrous ridge and had all the features of osteogenic sarcomas, displaying distant metastasis and invasion of the brain. Cells in both types of tumors exhibited nuclear expression of SV40 T antigen. Mice homozygous for the transgene had a shorter latency for appearance of smooth muscle tumors and developed osteosarcomas more frequently than hemizygous mice. This model system implicates the cellular T antigen-binding proteins, such as Rb and p53, in the pathogenesis of bone and soft tissue neoplasms in mice.

Animals↗

GFAP promoter directs astrocyte-specific expression in transgenic mice.

Glial fibrillary acidic protein (GFAP) is an intermediate-filament protein expressed abundantly and almost exclusively in astrocytes of the CNS. We are studying transcriptional regulation of the GFAP gene to gain insight into astrocyte function and also to develop an astrocyte-specific expression system for manipulating brain physiology. In this work, we have produced transgenic mice carrying the bacterial lacZ reporter gene linked to a 2.2 kilobase 5'-flanking sequence derived from the human GFAP gene that previously was shown to direct astrocyte-specific transcription in cultured cells. We report that this promoter directs expression to astrocytes in the CNS. In addition, the upregulation of GFAP gene activity that follows injury to the brain was mimicked by the transgene. One of the transgenes was found to be X-linked and appeared to undergo the usual random inactivation that achieves gene dosage compensation in females. The brains of hemizygous females stained uniformly rather than displaying mosaic patches, indicating that astrocytes intermingle following their formation. The specific expression of the GFAP-lacZ transgene means that it is now possible to target expression of other heterologous genes to astrocytes in vivo, and to study the mechanisms for reactive gliosis at the DNA level.

Animals↗

Oncogene expression in retinal horizontal cells of transgenic mice results in a cascade of neurodegeneration.

The phenylethanolamine N-methyltransferase promoter directs the expression of the SV40 T antigen to subsets of amacrine and horizontal neurons of the retina in a line of transgenic mice. T antigen expression begins in these cells during the first postnatal week. The horizontal cells appear to develop normally for another week but then begin to die. Subsequently, most of the horizontal cells disappear from the central and mid retina, resulting in loss of the outer plexiform layer and absence of ribbon synapses between the photoreceptors and bipolar cells. Neuronal transformation occurs only in the peripheral retina. These experiments indicate that horizontal neurons are heterogeneous with respect to susceptibility to transformation and that T antigen expression in a subset of horizontal neurons can be a direct cause of neuronal cell death. Furthermore, critical interdependencies exist between horizontal neurons after retinal neurogenesis is complete.

Animals↗

Selective expression of trypsin fusion genes in acinar cells of the pancreas and stomach of transgenic mice.

Fusion genes combining the 5'-transcriptional regulatory region of the rat trypsin I gene and the structural gene of human growth hormone as a reporter were expressed to the high levels characteristic of the endogenous trypsin I gene selectively in the acinar cells of the pancreas of transgenic mice. As little as 232 base pairs of trypsin gene sequences containing the transcriptional start site and upstream promoter elements were sufficient to direct pancreatic expression. The tissue-specific expression was controlled transcriptionally. Trypsin-human growth hormone fusion transgenes also were expressed, although at low levels, in the stomach, an unexpected site for the expression of pancreatic digestive enzymes. Expression in the stomach of endogenous trypsin, elastase, and amylase genes in both normal and transgenic mice verified that transgene expression was consistent with normal expression of pancreatic genes. Endogenous amylase colocalizes with pepsinogen in the acinar cell-like Chief cells of the glandular portion of the mouse stomach. The expression of pancreatic genes in stomach cells is probably the consequence of similar developmental origins of pancreatic and gastric acinar cells from the primordial gut.

Animals↗

Phenylethanolamine N-methyltransferase (PNMT)-expressing horizontal cells in the rat retina: a study employing double-label immunohistochemistry.

Phenylethanolamine N-methyltransferase (PNMT), the final enzyme in the catecholamine biosynthetic pathway that converts norepinephrine to epinephrine, has been detected in the retinas of various vertebrate species. The expression of PNMT has generally been thought to occur in amacrine cells of the ganglion cell and inner nuclear layers. By using immunohistochemical techniques, we have found a population of PNMT- and neurofilament-positive neurons at the border of the inner nuclear layer and the outer plexiform layer in the rat retina. We have classified these cells as horizontal neurons based on their location adjacent to the outer plexiform layer, their morphology, and their expression of vimentin and neurofilaments.

Animals↗

P0 promoter directs expression of reporter and toxin genes to Schwann cells of transgenic mice.

We generated transgenic mice that specifically express foreign genes in myelinating Schwann cells. A 1.1 kb segment of 5' flanking sequence from the rat P0 gene was used to drive expression of the genes encoding human growth hormone (hGH) and bacterial diphtheria toxin A chain (DT-A). The P0-hGH mice expressed hGH in myelinating Schwann cells, but not in nonmyelinating Schwann cells, the central nervous system, or any other tissue assayed. This expression was activated on a developmental schedule comparable to that of endogenous myelin gene expression. One line of P0-DT-A mice developed a generalized hypomyelinating peripheral neuropathy, with Schwann cell deficiency apparent in newborn animals. Peripheral nerves from adult mice of this line displayed morphological alterations ranging from completely denuded axons to myelinated Schwann cells undergoing degeneration, although occasional Schwann cells were able to form apparently normal myelin sheaths. Pronounced secondary changes, including proliferation and retraction of processes, occurred in the nonmyelinating Schwann cells of these P0-DT-A mice.

Age Factors↗

A novel modification of the avidin-biotin complex method for immunohistochemical studies of transgenic mice with murine monoclonal antibodies.

When mouse tissues are probed with murine monoclonal antibodies (MAb) by indirect immunohistochemistry, the secondary antibody detects tissue-bound MAb and irrelevant, endogenous mouse immunoglobulins. The latter are a source of confounding background, especially in diseased tissues. To circumvent this problem, we generated complexes of primary MAb and biotinylated secondary antibodies in vitro for use as antigen-specific probes. After blocking free binding sites in the complexed secondary antibodies with normal mouse serum, the complexes were applied to mouse tissue sections and tissue-bound complexes were visualized with an avidin-biotin detection system. Complexes formed with 12 different rat or mouse MAb were used to probe sections of normal mice, tumor-bearing transgenic mice, and mice with tumor xenografts. The staining patterns produced by these probes reflected the specificity of the MAb in the complexes, and the labeling of irrelevant, endogenous mouse immunoglobulins was reduced substantially. This novel, indirect immunohistochemical method can be exploited to study normal and diseased mouse tissues using a variety of murine MAb.

Animals↗

Immortalized retinal neurons used as immunogen for the generation of cell-specific antisera.

We have recently described a class of immortalized neurons which were derived from retinal tumors induced in PNMT-SV40 transgenic mice (TgBri59)9. These neurons possess a differentiated neuronal phenotype which includes the elaboration of extensive neurite processes and the expression of markers specific for amacrine and horizontal neurons, as well as the expression of the neurofilament triplet proteins. As these 'RT-1' neurons are derived from a restricted set of retinal neurons, they represent an enriched source of immunogen for the production of cell-specific antisera. Therefore, we have used RT-1 cell cultures to generate polyclonal antisera in rabbits. Two of these antisera have been characterized in immunocytochemical and Western blotting experiments using normal mouse and rat tissues. The antisera recognize neurons in the inner nuclear layer and particularly in the ganglion cell layer in the normal retina and cells of the adrenal medulla. These data indicate that specific cell lines derived from transgenic animals provide a rich source of antigen for the production of cell-specific antibodies. These antibodies should prove valuable for studies of retinal development and function.

Animals↗