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Biomedical subjects

G Lemke

Publications and source records attributed to G Lemke.

At least 73 records · Page 4Linked to original sources

Cell-specific cyclic AMP-mediated induction of the PDGF receptor.

Cyclic AMP (cAMP) cooperates with a wide variety of polypeptide growth factors to synergistically stimulate the proliferation of many vertebrate cell types. However, the cellular mechanisms underlying these cooperative interactions are for the most part unknown. We have identified one such mechanism by observing that (i) cultured rat Schwann cells proliferate in response to platelet-derived growth factor (PDGF) only if simultaneously cultured in the presence of agents that elevate intracellular cAMP and (ii) this unmasked PDGF response is accounted for by a dramatic cAMP-mediated induction of PDGF receptor mRNA and protein. cAMP-mediated induction of the PDGF receptor results in enhanced, ligand dependent receptor autophosphorylation, and in enhanced PDGF activation of c-fos gene expression. In addition, this induction is unique to those cells, such as Schwann cells, for which cAMP is itself mitogenic. These results indicate that the synergistic proliferative effect obtained from the combination of cAMP and polypeptide growth factors may in large result from the cAMP-mediated induction of growth factor receptors.

Animals↗

The gene encoding peripheral myelin protein zero is located on mouse chromosome 1.

We have used somatic cell hybrids to map the gene encoding protein zero (P0), the major structural protein of peripheral myelin. Analysis of Southern blots of DNA obtained from these hybrids allows us to unambiguously assign the P0 gene to mouse chromosome 1. This observation indicates that mutations in the P0 gene do not account for Trembler, a chromosome 11 mutation that specifically affects myelination in the peripheral nervous system.

Animals↗

SCIP: a glial POU domain gene regulated by cyclic AMP.

We have isolated cDNA clones encoding SCIP, a POU domain gene expressed by myelin-forming glial of the central and peripheral nervous systems. In purified Schwann cells cultured in the absence of neurons, expression of SCIP is suppressed. This suppression is relieved by cAMP, and induction of SCIP mRNA by this second messenger precedes cAMP induction of myelin-specific genes. Similarly, SCIP expression in vivo precedes full expression of myelin-specific genes in developing oligodendrocytes and Schwann cells. The sequence of the SCIP POU domain is identical to that of Tst-1, a recently identified member of a family of POU domain genes expressed by restricted subsets of neurons. Our results demonstrate that SCIP is also expressed by myelin-forming glia and suggest that it plays a central role in the progressive determination of these cells and their commitment to myelination.

Amino Acid Sequence↗

Isolation and analysis of the gene encoding peripheral myelin protein zero.

We have isolated the gene encoding the Schwann cell glycoprotein P0, the major structural protein of the peripheral myelin sheath. In rats and mice, this gene is split into six exons distributed over 7 kb of DNA. The segregation of these exons is consistent with the functional segregation of the P0 protein into extracellular, membrane-spanning, and cytoplasmic domains. We find that the P0 extracellular domain is similar in structure to a single immunoglobulin variable region domain. In contrast to prototypical immunoglobulin domains, however, this P0 domain is encoded by two exons, the partitioning of which provides genetic evidence for the evolution of immunoglobulin-related domains from an ancestral half-domain. We also describe procedures for transfection of cultures of nontransformed rat Schwann cells and use these procedures to show that the Schwann cell-specific expression of the P0 gene is controlled by cis-acting elements localized upstream of exon I.

Amino Acid Sequence↗

Axons regulate Schwann cell expression of the major myelin and NGF receptor genes.

The elaboration of myelin by Schwann cells is triggered by contact with appropriate peripheral axons. Among the most prominent features of this interaction is the activation and high-level expression of the genes encoding the major myelin proteins P0 and Myelin Basic Protein (MBP). Although the initial induction of these genes is thought to be dependent upon contact with axons, neither the inductive signal of the axon nor the receptor and associated second messenger system of the Schwann cell that transduces this signal has been identified. In this report, we demonstrate that expression of the P0 and MBP genes in rapidly myelinating Schwann cells is sharply reduced upon withdrawal of axons, but that this expression can be substantially restored by agents that raise the intracellular concentration of cyclic AMP. We further show that Schwann cell expression of a third gene, i.e. that encoding the Nerve Growth Factor receptor, is strongly activated by the withdrawal of axons, and that this activation is largely independent of cAMP.

Animals↗

Axonal regulation of myelin protein mRNA levels in actively myelinating Schwann cells.

Upon transection of a peripheral nerve, axons distal to the transection degenerate. As a consequence of this axonal degeneration, myelin-forming Schwann cells cease biosynthesis of new myelin membrane, contribute to phagocytosis of previously formed myelin, and markedly down-regulate expression of myelin-specific markers. Among the most prominent of these down-regulated markers are the major structural proteins of peripheral myelin, Po and myelin basic protein (MBP). We have used slot blot and in situ hybridization techniques to demonstrate that for actively myelinating Schwann cells, down-regulation of the Po and MBP genes occurs primarily at the level of mRNA expression. Together with other recent data, these findings strongly argue for axonal modulation of Po and MBP gene transcription during active myelination.

Animals↗

Use of a biotinylated probe and in situ hybridization for light and electron microscopic localization of Po mRNA in myelin-forming Schwann cells.

A biotinylated Po glycoprotein cDNA was hybridized in situ to aldehyde-fixed vibratome sections and to aldehyde-fixed thin sections of Lowicryl-embedded trigeminal ganglia of 15 day old rats. Alkaline phosphatase and peroxidase detectors were used for light microscopic (LM) studies and peroxidase or colloidal gold were employed for electron microscopic (EM) detection. In both LM and EM sections, probe was found in cytoplasmic areas of myelin-forming Schwann cells that were enriched in granular endoplasmic reticulum, demonstrating that these regions contain Po mRNA. Interestingly, Po mRNA tended to cluster in regions close to the developing myelin sheath. Relatively simple methods are here described for EM detection of mRNA with reasonable tissue preservation and high resolution. These methods may be useful for developmental and disease-related studies of specific mRNAs in mammalian tissues.

Animals↗

Isolation and sequence of a cDNA encoding the major structural protein of peripheral myelin.

The myelin sheath is a multilayered membrane, unique to the nervous system, which functions as an insulator to increase greatly the velocity of axonal impulse conduction. We have used the techniques of differential screening and hybrid selection to identify a cDNA clone encoding the Schwann cell glycoprotein P0, the major structural protein of the peripheral myelin sheath. The sequence of this protein, deduced from the nucleotide sequence of the cloned cDNA, indicates that P0 is an integral membrane protein containing a single membrane-spanning region, a large hydrophobic extracellular domain, and a smaller basic intracellular domain. The structure of the protein suggests that each of these domains plays an essential role in generating the highly ordered structure of the myelin sheath. Furthermore, we find that the induction of P0 mRNA coincides with the initiation of myelin formation, and we propose a model in which the glycoprotein serves as a molecular guidepost for this process.

Amino Acid Sequence↗

[Comparative materials science studies of Evicrol plastic filling material].

The water absorption of Evicrol, its hardness, flexural strength and abrasion resistance were measured and compared with the values found for Adaptic and those for Kallocryl A as a non-filled polymethyl methacrylate plastic. The flexural strength and the abrasion resistance of Evicrol amount to those of Adaptic. The hardness of Evicrol falls also short of that of Adaptic. On the contrary, Evicrol behaves quite differently under water. It was found that the amound of water absorbed by Evicrol is some 3-fold greater than that absorbed by Adaptic, and that saturation is reached considerably slower.

Absorption↗