The muscle specific domain of mouse N-CAM: structure and alternative splicing patterns

Hamshere, M, Dickson, G and Eperon, I

(1991)

Hamshere, M, Dickson, G and Eperon, I (1991) The muscle specific domain of mouse N-CAM: structure and alternative splicing patterns. Nucleic Acids Research, 19 (17).

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Abstract

The neural cell adhesion molecule (N-CAM) is an important mediator of calcium independent cell-cell interactions. Variations in the primary structure of the protein are due to alternative splicing of pre-mRNA in the region encoding the extracellular, trans-membrane and cytoplasmic domains. In order to identify the patterns of exon usage during development of skeletal muscle and brain of the mouse, a coupled reverse-transcriptase/polymerase chain reaction was used to identify the murine homologues of the muscle-specific domain (MSD), located between exons 12 and 13 in human N-CAM mRNA. The cDNAs produced have been cloned and sequenced, or analysed directly. The amplification reactions were shown to maintain the concentration ratios of the initial cDNAs. The results indicate that the mouse homologue to exon MSD1a is under tissue and developmental regulation that is independent of exons MSD1b and MSD1c. The inclusion of the triplet exon AAG is also regulated in a cell- and stage-specific manner, which is independent of the other alternatively spliced exons of this domain.

Information about this Version

This is a Submitted version
This version's date is: 1991
This item is not peer reviewed

Link to this Version

https://repository.royalholloway.ac.uk/items/5b453211-bd2c-2abc-28d0-13fdc9521987/5/

Item TypeJournal Article
TitleThe muscle specific domain of mouse N-CAM: structure and alternative splicing patterns
AuthorsHamshere, M
Dickson, G
Eperon, I
Uncontrolled KeywordsAnimals, Base Sequence, Brain, Cell Adhesion Molecules, Neuronal, Chickens, Cloning, Molecular, Exons, Gene Expression Regulation, Humans, Mice, Mice, Inbred BALB C, Molecular Sequence Data, Muscle Development, Muscles, Polymerase Chain Reaction, RNA Splicing, RNA-Directed DNA Polymerase, Sequence Homology, Nucleic Acid
DepartmentsFaculty of Science\Biological Science

Identifiers

doihttp://dx.doi.org/10.1093/nar/19.17.4709

Deposited by Research Information System (atira) on 03-Jul-2014 in Royal Holloway Research Online.Last modified on 03-Jul-2014


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