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D R Colman

Publications and source records attributed to D R Colman.

At least 55 records · Page 3Linked to original sources

The distribution of myelin basic protein mRNAs within myelinating oligodendrocytes.

The nervous system contains oligodendrocytes with processes that are greatly extended in space. It is now clear that there are numerous complex, poorly understood mechanisms by which polypeptides are synthesized and delivered to their sites of function in these cells. One mechanism is by the active positioning of mRNAs encoding certain proteins to restricted intracellular subdomains. Perhaps the best studied example of this in the vertebrate CNS is the translocation of myelin basic protein mRNAs to the forming myelin sheath, where the newly synthesized polypeptides, which avidly associate with membranes, can be directly incorporated into the myelin membrane. Evidence for this conclusion is presented here in the context of related work on the general phenomenon of mRNA translocation that is under analysis in other systems.

Animals↗

A proteolipid protein gene family: expression in sharks and rays and possible evolution from an ancestral gene encoding a pore-forming polypeptide.

The myelin proteolipid proteins (PLP and DM20) are believed to act as "adhesive struts" in the extracellular apposition of the CNS myelin sheath. These proteins have been considered late evolutionary developments, which arose de novo in the antecedents of early tetrapods. However, PCR primed with degenerate oligonucleotides corresponding to common segments of rat PLP/DM20 revealed three novel mRNAs in the brains of two elasmobranchs. These mRNAs are closely related to each other and to mammalian DM20, but lack the sequence that distinguishes PLP from DM20. We term the novel proteolipid proteins DM alpha, DM beta, and DM gamma. At least DM alpha and DM gamma are highly expressed in white matter in myelinating shark brain. The DMs not only are highly homologous to each other, but also contain regions bearing similarities with segments of channel-forming regions of the nicotinic acetylcholine receptor and the glutamate receptor macromolecular complexes. Significantly, we find that across these segments, DM alpha and DM gamma are more similar to the channel proteins than the two channel proteins are to each other.

Amino Acid Sequence↗

Glial-neuron interactions and the regulation of myelin formation.

The association between neuron and glial cell that leads to the formation of a myelinated axon depends on a number of adhesion/recognition molecules whose temporal expression, localization, and in some cases removal are critical for sculpting the mature myelin sheath.

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In situ hybridization with digoxigenin-labeled probes: sensitive and reliable detection method applied to myelinating rat brain.

A method for in situ hybridization of digoxigenin-labeled cDNA and cRNA probes to myelin protein mRNA is described. This technique has dual advantages of high structural resolution and high sensitivity and avoids problems associated with handling of radioactive materials. Furthermore, it can be readily combined in double labeling with immunocytochemical protein detection. We have used this technique to detect and locate mRNA for myelin basic protein (MBP), proteolipid protein (PLP), 2',3'-cyclic nucleotide 3'-phosphodiesterase (CNPase) and myelin-associated glycoprotein (MAG) in oligodendrocytes of 7-day-old and adult rat brains. PLP and MAG mRNA were restricted to the perinuclear cytoplasm, whereas MBP and CNPase mRNA was additionally present in peripheral oligodendrocyte processes.

Animals↗

DM-20 mRNA is expressed during the embryonic development of the nervous system of the mouse.

We used both the polymerase chain reaction (PCR) and in situ hybridization to search for the presence of proteolipid protein (PLP) gene transcripts in the developing mouse. Total brain RNA extracted from 13-19-day embryos, analyzed by PCR, demonstrated the presence of a single transcript that was unambiguously identified with the DM-20 mRNA. RNA samples from postnatal day 2 animals also showed a signal corresponding to the PLP transcript, in addition to the DM-20 message. By in situ hybridization of 10-day embryos using a DM-20 antisense cRNA probe, we showed that the localization of the DM-20 message was restricted to the diencephalic basal plate. On the same embryo sections, in addition to the brain localization, an intense hybridizing signal was also detected in the trigeminal and spinal ganglia, the vagal glossopharyngeal ganglion, and the sympathetic ganglion chain. The demonstration of transcription of the PLP gene, long before the beginning of the myelination process, suggests that in addition to a structural function in myelin compaction, some of the products of the PLP gene (DM-20) may have a role during the compartmentalization and differentiation of the neural tube.

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The DM20 protein of myelin: intracellular and surface expression patterns in transfectants.

DM20 is an abundant CNS myelin-specific protein whose role in myelinogenesis is unknown. We have cloned the DM20 cDNA from adult mouse brain total RNA using the polymerase chain reaction and expressed it in HeLa cells. DM20, detected by immunofluorescence in stable transfectants, is present in some cells in large, intensely fluorescent intracellular clumps that probably represent elements of the rough endoplasmic reticulum and Golgi apparatus. Frequently, intense DM20 fluorescence could be detected at the plasma membrane. These findings are consistent with previous studies demonstrating that an intracellular "pool" of DM20 and its larger isoform, proteolipid protein, exists and that a substantial lag occurs between synthesis and insertion of these proteins into the expanding myelin membrane. Permanent DM20 expressors in contact with one another do not display any ultrastructural rearrangements at regions of cell-cell contact, in contrast to what we have previously reported for P0, a PNS-specific protein shown to mediate adhesion of the extracellular faces of the Schwann cell during PNS myelinogenesis. We believe that these results indicate that if DM20 is indeed an adhesion molecule, this property is likely to be significantly more subtle than P0-mediated adhesion.

Amino Acid Sequence↗

Functional contribution of neuronal AChR subunits revealed by antisense oligonucleotides.

Although multiple related genes encoding nicotinic acetylcholine receptor (AChR) subunits have been identified, how each of these subunits contributes to AChRs in neurons is not known. Sympathetic neurons express four classes of AChR channels and six AChR subunit genes (alpha 3, alpha 4, alpha 5, alpha 7, beta 2, and beta 4). The contribution of individual subunits to AChR channel subtypes in these neurons was examined by selective deletion with antisense oligonucleotides. An alpha 3 antisense oligonucleotide decreased the number and altered the properties of the normally expressed ACh-activated channels. The remaining AChR channels have distinct biophysical and pharmacological properties that indicate an important functional contribution of the alpha 7 subunit.

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Applications of confocal microscopy to the study of myelin development and neuron structure.

Confocal laser scanning microscopy has been used to study the localization of myelin basic proteins expressed in nonglial cells, and to probe the three-dimensional structure of central auditory neurons in the lateral superior olive. The paper focuses on the techniques used to obtain the results. The key roles of confocal microscopy and computer image processing of the images obtained are emphasized as they relate to the discovery of essential structural information about these specimens.

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Differential expression of MAG isoforms during development.

The myelin-associated glycoproteins (MAG) mediate the cell interactions of oligodendrocytes and Schwann cells with axons that are myelinated. MAG exists in two developmentally regulated isoforms: large MAG (L-MAG) and small MAG (S-MAG). In this paper, we have studied the tissue-specific and developmentally regulated alternative splicing of these isoforms using monospecific antibodies that recognize epitopes common to both isoforms or that are present only on L-MAG. In the central nervous system (CNS), L-MAG is the major form synthesized early in development, and it persists as a significant proportion of the MAG present in the adult. In the peripheral nervous system (PNS), L-MAG is expressed at modest levels during development; it is virtually absent in the adult. Thus, the expression of L-MAG is not limited to the CNS, as was formerly believed, suggesting that it plays a common role during the early stages of myelin formation by both oligodendrocytes and Schwann cells. In both the CNS and PNS, S-MAG is the predominant isoform in the adult. A higher-molecular-weight form of MAG is present in the PNS at low abundance, that is developmentally regulated, and appears to be a glycosylation variant. An analysis of the carbohydrate residues on MAG demonstrates that it contains both N-linked and O-linked sugars that could be modulated during development. These results suggest a possible mechanism for the regulation of MAG function during myelinogenesis via the expression of alternative isoforms and carbohydrate modifications.

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The ectopic expression of myelin basic protein isoforms in Shiverer oligodendrocytes: implications for myelinogenesis.

The myelin basic proteins (MBPs) are a set of peripheral membrane polypeptides that are required for the compaction of the major dense line of central nervous system myelin. We have used primary cultures of oligodendrocytes from MBP-deficient shiverer mice as host cells for the expression by cDNA transfection of each of the four major MBP isoforms. The distributions of the encoded polypeptides were studied by immunofluorescence and confocal microscopy and compared with patterns of MBP expression in normal mouse oligodendrocytes in situ and in culture. The exon II-containing 21.5- or 17-kD MBPs were distributed diffusely in the cytoplasm and in the nucleus of the transfectants, closely resembling the patterns obtained in myelinating oligodendrocytes in 9-d-old normal mouse brains. By contrast, the distribution of the 14- and 18.5-kD MBPs in the transfectants was confined to the plasma membrane and mimicked the distribution of MBP in cultures of normal adult oligodendrocytes. Our results strongly suggest that the exon II-containing MBPs are expressed first and exclusively during oligodendrocyte maturation, where they may play a role in the early phase of implementation of the myelination program. In contrast, the 14- and 18.5-kD MBPs that possess strong affinity for the plasma membrane are likely to be the principle inducers of myelin compaction at the major dense line.

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Expression of the oligodendrocyte marker 2'3'-cyclic nucleotide 3'-phosphodiesterase in non-glial cells.

The 46 kD isoform of the 2'3'-cyclic nucleotide 3'-phosphodiesterase (CNPI) was expressed in HeLa cells by transfection of its cDNA clone. The distribution of this polypeptide as mapped by indirect immunofluorescence and conventional epifluorescence microscopy appeared diffuse and generally uniform throughout the cytoplasm. Confocal microscopic imaging and analysis of pseudocolored images confirmed this distribution but also revealed that there was a high concentration of CNPI near the plasma membrane of the cell. This pattern is very similar to that observed by immunoelectronmicroscopy of myelinating oligodendrocytes (Trapp et al.: J Neurochem 51:859-868, 1988; Braun et al.: J Neurosci 8: 3057-3066, 1988). These results suggest that CNP may interact with a membrane-associated molecule that is not unique to oligodendrocytes.

2',3'-Cyclic-Nucleotide Phosphodiesterases↗

Protein zero of peripheral nerve myelin: biosynthesis, membrane insertion, and evidence for homotypic interaction.

Protein zero (P0), an integral membrane glycoprotein synthesized by Schwann cells, is the major glycoprotein of peripheral nerve myelin. The predicted disposition of P0 with respect to the membrane bilayer postulates the existence of extracellular and intracellular domains, that mediate compaction of the myelin lamellae. We used in vitro translations programmed with sciatic nerve mRNA and cells transfected with a P0 cDNA construct to study the biosynthesis and topology of P0 in the bilayer. The behavior of P0 at the cell surface, when expressed under physiological conditions, was also examined. We have verified the topological predictions of an earlier model, derived from analysis of a P0 cDNA, and provide evidence that the extracellular domain of P0 mediates homotypically cell-cell interactions in the transfectants.

Amino Acid Sequence↗

Expression of myelin basic protein isoforms in nonglial cells.

The myelin basic proteins (MBPs) mediate the cytoplasmic apposition of the oligodendrocyte plasma membrane to form the major dense line of central nervous system myelin. Four major isoforms of murine MBP, obtained by alternative splicing of seven exons from a single primary transcript, display distinct developmental profiles. We expressed these major MBPs individually in HeLa cells and mapped their distributions by immunofluorescence and confocal microscopy. The 14- and 18.5-kD MBPs that are the predominant forms in compact myelin distributed primarily in the perinuclear regions of the cell in configurations highly suggestive of close association with membranes. We infer that these MBP isoforms possess strong, nonspecific membrane-binding properties that have been adapted by the oligodendrocyte to mediate compaction of the sheaths of plasma membrane that form myelin. In contrast, the 17- and 21.5-kD isoforms distributed diffusely in both the cytoplasm and the nucleoplasm and often accumulated within the nucleus. This distribution can be correlated with the presence of the peptide segment encoded by exon II, which is unique to these isoforms. The physiological significance of the nuclear targeting displayed by the 17- and 21.5-kD MBP isoforms in HeLa cells remains to be determined.

Amino Acid Sequence↗

Distribution of myelin basic protein and P2 mRNAs in rabbit spinal cord oligodendrocytes.

Myelin basic protein (MBP) and P2 protein are small positively charged proteins found in oligodendrocytes of rabbit spinal cord. Both proteins become incorporated into compact myelin. We have begun investigations into the mechanisms by which MBP and P2 become incorporated into the myelin membrane. We find that P2, like the MBPs, is synthesized on free polysomes in rabbit spinal cord. Cell fractionation experiments reveal that rabbit MBP mRNAs are preferentially segregated to the peripheral myelinating regions whereas P2 mRNAs are predominantly localized within the perikaryon of the cell. In vitro synthesized rabbit MBP readily associates with membranes added to translation mixtures, whereas P2 protein does not. It is possible that P2 requires a "receptor" molecule, perhaps a membrane-anchored protein, for association with the cytoplasmic face of the myelin membrane.

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Biosynthesis of the myelin 2',3'-cyclic nucleotide 3'-phosphodiesterases.

We have investigated the site of synthesis of the 2',3'-cyclic nucleotide 3'-phosphodiesterases (CNPs I and II) in rat brain. Rapid kinetics of incorporation of CNPs into oligodendrocyte plasma membrane in the intact brain are consistent with their synthesis on free polysomes. This hypothesis was confirmed by the translation in vitro of RNA isolated from free and bound polysomes, respectively. Unlike myelin basic protein (MBP) mRNAs, CNP mRNAs are not enriched in a myelin-associated pool of RNA. MBPs, but not CNPs, were found to readily associate in vitro with membrane vesicles derived from rough endoplasmic reticulum. The avidity of MBPs in binding to membranes is probably related to the previously observed spatial segregation of MBP mRNAs into actively myelinating cellular processes of the oligodendrocyte. Such a segregation would ensure that newly synthesized MBPs are immediately incorporated into myelin. In contrast, the CNPs probably associate with the cytoplasmic surface of the oligodendrocyte plasma membrane through interaction with a membrane-bound receptor.

2',3'-Cyclic-Nucleotide Phosphodiesterases↗

Physiologic properties of myelin proteins revealed by their expression in nonglial cells.

The transfection paradigm described herein can be used to investigate the functional properties of individual nervous system proteins in ways that have not been explored before. In particular, observations on the "structural" proteins of myelin are being made that have already yielded certain unique insights into the physiologic properties of these polypeptides. The ease with which site-directed mutagenesis procedures can be applied to these systems should eventually enable us to define with great precision the "functional domains" within each myelin protein.

2',3'-Cyclic-Nucleotide Phosphodiesterases↗

Transfection of transformed shiverer mouse glial cell lines.

In the course of studies on glial cell differentiation in the mouse mutant shiverer, we have established by infection with a temperature-sensitive retrovirus encoding the SV40 T antigen a few glial cell lines that divide rapidly at 33 degrees C, the permissive temperature, and whose phenotypes at the nonpermissive temperature (39 degrees C) resemble either astrocytes or oligodendrocytes. One astrocyte-like clone (clone SF11) expresses glial fibrillary acidic protein at 33 degrees C and expresses this marker strongly at 39 degrees C as well. One oligodendrocyte-like clone (DM5) that we have succeeded in maintaining at 33 degrees C can be induced to express galactocerebroside and 2',3'-cyclic nucleotide 3'-phosphodiesterase at the elevated temperature but never expresses the more differentiated markers of the myelination state, such as the myelin proteolipid protein or the myelin-associated glycoprotein. Clone DM5, as is the case with other oligodendrocyte clones we have prepared by the method described here, is quite fragile and survives for only several (5-6) days at the higher temperature. Both clonal lines can serve as host cells for expressible cDNAs introduced by transfection, such as the neurofilament protein, NF-M, and the small myelin basic protein.

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