Differential cloning approaches to the nervous system.
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Biomedical subjects
Publications and source records attributed to R J Milner.
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The myelin-associated glycoprotein (MAG) and the brain 1B236 protein are 100-kDa glycoproteins containing 30% carbohydrate that exist in two developmentally regulated forms and are specific to the nervous system. Recent cDNA cloning experiments in several laboratories using primarily immunological means of identification have determined the complete primary sequence of a rat brain glycoprotein that seems to correspond to both MAG and 1B236, suggesting that these proteins are identical. However, MAG was previously considered to be an oligodendrocyte/myelin specific component in the CNS at all ages, whereas 1B236 was thought to be primarily a neuronal component in adult rats but synthesized by oligodendrocytes at the time of active myelination. The composite term 1B236/MAG was proposed to describe the molecule identified by the cDNAs. In order to explore further the relationship between MAG and 1B236, as well as their developmentally regulated forms, experiments were carried out on rat samples utilizing synthetic peptides corresponding to sequences throughout the 1B236 molecule, antisera raised to synthetic peptides in the C-terminus of 1B236 that distinguish between the two developmentally regulated forms, and well-characterized polyclonal and monoclonal antibodies raised to purified MAG. Epitope mapping demonstrated that reactive sites were distributed throughout the extracellular and intracellular domains of 1B236/MAG. Only antibodies reacting with the smaller of the two forms of 1B236/MAG detected the glycoprotein in the peripheral nervous system. Both anti-MAG and anti-1B236 antibodies revealed a drastic reduction of the level of 1B236/MAG in 25-day-old myelin-deficient rats and in adult quaking mice, and both types of antibodies revealed a slight shift of 1B236/MAG toward higher apparent Mr in quaking mice as had previously been reported for MAG. The results indicate that MAG and 1B236 are almost certainly identical since they cannot be distinguished immunologically by the reagents available and that quantitatively most of the glycoprotein is associated with oligodendrocytes and myelin rather than neurons at all ages.
The protein encoded by the rat brain cDNA 1B236 has been shown to be identical to myelin-associated glycoprotein (MAG). In this report we describe the cellular distribution of 1B236/MAG mRNA transcripts in rat brain by using in situ hybridization. At postnatal day 20, large numbers of 1B236/MAG mRNA-containing oligodendrocytes are concentrated in myelinated fiber tracts and throughout gray matter regions. The presence of high levels of 1B236/MAG mRNA within oligodendrocytes at postnatal day 20 is consistent with the proposed role of MAG in formation of the myelin sheath during development. In the adult brain, our results suggest that not only is 1B236/MAG mRNA expressed at reduced levels within oligodendrocytes but also 1B236/MAG or a 1B236/MAG-like mRNA is present within neurons. This localization is consistent with the results of previous immunocytochemical studies using antibodies against the 1B236/MAG mRNA with different cell-type-specific patterns of expression suggests that oligodendrocytes and neurons employ different mechanisms for regulating the same gene. Thus, different cell types may use a similar cell adhesion molecule both during myelinogenesis and in the mature nervous system.
We have examined the changes in neuronal expression of oxytocin mRNA in the perinatal and mature female rat as a function of endogenous gonadal steroids. Northern blot analysis demonstrated a significant developmental increase in the abundance of oxytocin mRNA in the female brain concomitant with puberty. Ovariectomy of adult females decreased total brain oxytocin mRNA to significantly lower levels. In contrast, lactating mothers had increased levels of neuronal oxytocin mRNA. In situ hybridization analysis of neuronal oxytocin mRNA in adolescent, mature virgin, and ovariectomized virgin female brains demonstrated that the location and number of neurons expressing oxytocin mRNA was unchanged and that total brain oxytocin mRNA differences were attributable to amounts expressed per neuron. Differences in mRNA abundance were noted in oxytocin neurons throughout the hypothalamus, including those known to project as magnocellular neurons to the neurohypophysis and those of parvocellular origin thought to make wholly intracerebral connections. This developmental and dynamic regulation of oxytocin mRNA levels during gonadal maturation may coordinate the peripheral and central effects of this peptide on the reproductive biology of the female rat.
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Myelin, the unique product of a glial cell membrane that electrically insulates the nerve axon, is composed of relatively few major protein components. The recent characterization of these proteins by molecular cloning techniques has raised interest in studies of myelin formation at the molecular level. Proteolipids, a family of integral membrane proteins specific to myelin of the central nervous system, are highly abundant and serve a structural function in the architecture of the multilayered sheath. A critical role for proteolipid protein (PLP) expression during normal development and for the survival of the myelinating oligodendrocyte is reflected in severe developmental disorders of mice that result from genetic mutations in the single structural gene for PLP. The analysis of PLP gene expression in these mutants and other dysmyelinating mouse strains has revealed interactions between myelin-specific genes that may underlie the coordinate development of oligodendrocytes and myelination in the brain.
The mRNAs for 2 isotypes of alpha-tubulin, termed T alpha 1 and T26, are differentially regulated in the developing rat nervous system. T alpha 1 alpha-tubulin mRNA is expressed at high levels when neurons extend processes whereas T26 mRNA is expressed constitutively (Miller et al., 1987b). We have examined the expression of these 2 alpha-tubulin mRNAs in regenerating facial and sciatic motor neurons of the rat using Northern blot and in situ hybridization analyses. T alpha 1 alpha-tubulin mRNA is rapidly induced in axotomized motor neurons of the facial nerve: increased levels of mRNA are detectable 4 hr after a lesion is made 1.5 cm distal to the neuronal cell bodies. T alpha 1 mRNA levels are highest from 3-7 d postcrush and decline slowly to control levels following functional reinnervation of facial muscles. In contrast, T26 mRNA levels remain constant throughout the regeneration process. Total alpha-tubulin mRNA levels do not change until 1 d postaxotomy; otherwise the changes in expression are similar to T alpha 1 mRNA, although the relative increase is not as great. Enhanced T alpha 1 alpha-tubulin mRNA expression also occurs in motor neurons of crushed or tied sciatic nerve. Ligature or crush of the sciatic nerve leads to approximately the same peak in the expression of T alpha 1 mRNA at 7-15 d postaxotomy. Following the facial nerve transection, under conditions in which reinnervation is prevented, T alpha 1 alpha-tubulin mRNA levels remain elevated significantly longer than when the nerve is crushed. Taken together, the data indicate that T alpha 1 alpha-tubulin mRNA is rapidly induced following neuronal axotomy, remains elevated during the period of axonal regrowth, and is subsequently down-regulated at the approximate time of target contact. These results are reminiscent of changes in T alpha 1 mRNA that occur during neuronal development. This growth-associated pattern of T alpha 1 gene expression can be modified by inhibiting appropriate regeneration of the damaged nerve.
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We present the complete nucleotide sequence of a cDNA encoding rat cyclophilin. The 743-nucleotide sequence contains a 42-nucleotide 5' noncoding region, a 492 nucleotide open reading frame corresponding to a translation product of 164 amino acids with a molecular weight of 17,874, and a 3' noncoding region of 209 nucleotides. Primer extension studies reveal the presence of one minor and two major transcription start sites. Southern blot analyses are consistent with as many as 20 copies of the cyclophilin gene and possible pseudogenes. Cyclophilin mRNA is expressed in virtually all types of tissues of rat and monkey and appears to have been highly conserved during mammalian evolution.
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The structures of two rat brain-specific 1B236 mRNAs, alternative splice products from a single gene regulated differently during postnatal brain development, were deduced from full-length cDNA clones. The 626- and 582-amino acid-long encoded proteins are indistinguishable from two forms of myelin-associated glycoprotein, a cell adhesion molecule involved in axonal-glial and glial-glial interactions in postnatal brain development, particularly in myelination. The two proteins share a single membrane-spanning domain and a glycosylated N terminus but differ in the structures of their C termini. The N terminus consists of five domains related in sequence to each other and to immunoglobulin-like molecules, especially the neural cell adhesion molecule N-CAM, suggesting a common structure for cell adhesion molecules.
Proteolipid protein (PLP) is the major myelin membrane protein of the central nervous system. We have isolated a copy of an alternatively spliced PLP gene transcript from a mouse brain cDNA library that was screened for PLP-related sequences. The encoded 241-amino acid protein differs from PLP by an internal deletion of 35-amino acid residues (116-150) from the major hydrophilic domain. This PLP variant is identical with the DM-20 protein of myelin, previously described as a brain-specific myelin component and known to be related to PLP. We determined the corresponding nucleotide sequence of the rat PLP gene and found that DM-20 mRNA results when a second 5' splice site, located 105 nucleotides within the third exon of the primary PLP transcript, is utilized in precursor mRNA (pre-mRNA) splicing. This demonstrates that alternative 5' splice site selection can determine the protein product of a cellular gene. DM-20 mRNA is expressed in rat brain with approximately 50% abundance relative to PLP mRNA and appears to be developmentally coregulated.
The mRNAs for two isotypes of alpha-tubulin, termed T alpha 1 and T26, are known to be expressed in the rat nervous system. We have compared the expression of these two alpha-tubulin mRNAs during neural development, using RNA blotting and in situ hybridization techniques with probes directed against unique sequences of each mRNA. T alpha 1 mRNA is highly enriched in the embryonic nervous system but is markedly less abundant in the adult brain; T26 mRNA is expressed in many embryonic tissues with little change in abundance during development. Within the nervous system, T alpha 1 mRNA is enriched in regions with neurons actively undergoing neurite extension, such as the cortical plate, whereas T26 mRNA is relatively homogeneous in distribution, with some enrichment in proliferative zones. Expression of T alpha 1 mRNA is also increased in PC12 cells induced to differentiate and extend neurite processes by nerve growth factor. Taken together, the data indicate that T alpha 1-tubulin mRNA is expressed at high levels during the extension of neuronal processes. The abundant expression of T alpha 1-tubulin mRNA may therefore reflect either a means to increase the available pool of alpha-tubulin or a specific requirement for the T alpha 1 isotype for neurite extension.
We have previously shown that, in the myelin-deficient jimpy mutant mouse, 74 nucleotides are absent from the mRNA for proteolipid protein (PLP) as a result of aberrant RNA processing. To define the exact site of the jimpy mutation, we have analyzed the PLP gene obtained from a jimpy mouse genomic library. We find that the nucleotide sequence that is absent from jimpy PLP mRNA is fully preserved in the jimpy PLP gene. The missing segment corresponds to a separate exon, equivalent to exon 5 of the human PLP gene. The nucleotide sequence at the 3' end of intron 4 in the jimpy PLP gene contains a single point mutation. A base change A----G in the 3' acceptor splice site has altered a position that is 100% conserved in all published splice acceptor sequences. We conclude that the primary genetic defect of the jimpy mouse is a single base change in the PLP gene disabling an invariant recognition sequence of RNA splicing.
We have reviewed the structure and properties of the neural protein 1B236/MAG. This molecule consists largely of five Ig-like domains separated from its carboxyl terminal tail by a single membrane-spanning region. Two forms of the protein differ in the length and sequence of the carboxyl terminus: these are encoded by alternatively spliced mRNAs that are differentially expressed during postnatal neural development. The Ig-like domains of 1B236/MAG are unusual in having structural similarities to Ig V domains but with short Cys-Cys distances characteristic of C domains. Several other Ig-like molecules exhibit this structural feature, including the cell adhesion molecule N-CAM, which is most closely related in sequence to 1B236/MAG. We have proposed 1B236/MAG as the prototype for this subgroup of the Ig family and offer a model for this type of Ig domain structure. 1B236/MAG probably acts as a cell adhesion molecule to mediate interactions between cells in a fashion similar to that proposed for N-CAM. In particular, 1B236/MAG may be involved in interactions between myelinating oligodendrocytes or Schwann cells and axons or between adjacent layers of myelin membrane during the process of myelin compaction. It is most likely that the homophilic or heterophilic interactions of 1B236/MAG occur through binding to the Ig-like domains. The structure of 1B236/MAG is therefore quite consistent with its proposed function and may serve as the model for this class of cell-cell interaction molecules. One would predict, for example, that the neuron-glia cell adhesion molecule Ng-CAM, also known as NILE or L1 (Bock et al. 1985, Friedlander et al. 1985), which mediates interactions between neurons and glial cells, would have a very similar structure to those of N-CAM and 1B236/MAG. In addition, the carboxyl terminal tails of the 1B236/MAG proteins may also be involved in interactions with cytoskeletal components, during membrane vesicle transport through the glial cytoplasm during myelination or through neuronal axoplasm or cytoplasm. The availability of full-length cDNA clones of 1B236/MAG mRNAs with the ability to express these products in vitro will enable the structure and interactions of 1B236/MAG to be tested in detail.
In order to identify markers for developing neural cell populations and gain molecular insights into the processes of neural development and differentiation, we have selected cDNA clones of rat brain mRNAs that are expressed in brain at embryonic day 16 (E16) with at least 10-fold greater abundance than they are in adult brain. Eleven such clones were obtained from a cDNA library of E16 brain poly(A)+ RNA using a combination of differential and subtractive hybridization screens. The temporal and spatial patterns of expression of the mRNAs corresponding to these clones were characterized by Northern (RNA) blotting and by in situ hybridization. Although all the mRNAs were enriched in embryonic brain, different mRNAs demonstrated maximum abundance at different times in late embryogenesis. The mRNAs can be grouped into 3 classes on the basis of their patterns of spatial expression in the embryo: one cDNA clone from each class and its corresponding mRNAs have been characterized in more detail. Class C represents mRNAs that are highly enriched in the nervous system and may be expressed in newly differentiating neurons; the example chosen was shown by nucleotide sequence analysis to encode the brain alpha 1 isotype of tubulin. Class B mRNAs have a broader distribution in the developing embryo but are expressed predominantly in the ventricular germinal zones of the developing nervous system and may represent molecules involved with neurogenesis. A third class (Class A) includes mRNAs with a more homogeneous distribution within the embryo and developing nervous system, which may encode "housekeeping" molecules. These clones and their encoded products will provide markers for cell populations at particular stages of neural development.
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The mouse mutant jimpy carries an X chromosome-linked recessive gene defect that affects the formation of myelin in the central nervous system. To understand the molecular basis of the jimpy mutation, we have examined the expression of mRNAs encoding myelin proteolipid protein (PLP). PLP mRNAs were detectable in jimpy brain RNA at 21 days after birth but were severely reduced in abundance compared to wild-type littermates. Nucleotide sequence analysis of cDNA clones for PLP mRNA, isolated from a cDNA library of jimpy brain poly(A)+ RNA, revealed that the PLP mRNA expressed in jimpy contained a deletion of 74 nucleotides with respect to the wild-type sequence. This deletion causes a frameshift in the open reading frame resulting in an altered carboxyl terminus for jimpy PLP. Probes specific for the deleted sequence, however, hybridize with equal efficiency to genomic DNA from jimpy and wild-type littermates, suggesting that the defect in the jimpy PLP mRNA is generated by aberrant RNA processing rather than by deletion of genomic sequences. We conclude that a mutation in the gene for PLP that leads to an incorrectly spliced RNA transcript is the primary defect of this genetic disorder.