Gene Structure for Adenosine Kinase in Chinese Hamster and Human: High-Frequency Mutants of CHO Cells Involve Deletions of Several Introns and Exons
- 1 January 2001
- journal article
- research article
- Published by Mary Ann Liebert Inc in DNA and Cell Biology
- Vol. 20 (1) , 53-65
- https://doi.org/10.1089/10445490150504693
Abstract
The structure for the adenosine kinase (AK) gene has been determined from Chinese hamster (CH) and human cells. The AK gene in CH is comprised of 11 exons ranging in length from 36 to 765 nt, with the majority 15 kb). A 6.6-kb fragment from human cells was also sequenced, and it contained only a single exon corresponding to exon 10 in CH. The BLAST searches of the subsequently released draft human genome sequence have revealed that the AK gene structure in human is identical to that in CH. In the human genome, the AK exons are distributed over four genomic clones totaling 752 kb, providing direct evidence that the AK gene in mammalian species is unusually large. In contrast to CH and human, the AK genes from several other eukaryotic organisms whose complete genomes are now known are quite small (between 1.2 and 2.5 kb) and either contain no introns (Saccharomyces cerevisiae and Schizosaccharomyces pombe) or various numbers of introns (Drosophila melanogaster [2], Caenorhabditis elegans [4], Arabidopsis thaliana [10]). Some of the intron-exon junctions in these species are in the same positions as in mammals. The AK gene in CH and human, as well as mouse, is linked upstream in a head-to-head fashion with the gene for the clathrin adaptor mu3 protein (or beta3A subunit of the AP-3 protein complex), which is affected in type 2 Hermansky-Pudlak syndrome. These two genes are separated by - mutants of CHO cells, which are obtained at a very high spontaneous frequency (10-3-10-4) in this cell line. Both mutants contained large deletions within the AK gene and greatly shortened AK transcripts. The cloning and sequencing of the transcripts from these mutants showed that the deletion in one of them led to the loss of exons 5 through 8, whereas in the other, all exons from 2 through 8 are deleted. The endpoints of these deletions lie in the large introns within the AK gene.Keywords
This publication has 44 references indexed in Scilit:
- Identification of a novel 4.6-kb genomic deletion in presenilin-1 gene which results in exclusion of exon 9 in a Finnish early onset Alzheimer's disease family: an Alu core sequence-stimulated recombination?European Journal of Human Genetics, 2000
- Genome Sequence of the Nematode C. elegans : A Platform for Investigating BiologyScience, 1998
- Delayed Treatment With an Adenosine Kinase Inhibitor, GP683, Attenuates Infarct Size in Rats With Temporary Middle Cerebral Artery OcclusionStroke, 1998
- Cloning and characterization of an adenosine kinase from Physcomitrella involved in cytokinin metabolismThe Plant Journal, 1998
- Cloning and Expression of the Adenosine Kinase Gene from Rat and Human TissuesBiochemical and Biophysical Research Communications, 1997
- Life with 6000 GenesScience, 1996
- Adenosine - a cardioprotective and therapeutic agentCardiovascular Research, 1993
- Quantitative mutagenesis at the adenosine kinase locus in Chinese hamster ovary cells: Development and characteristics of the selection systemMutation Research/Environmental Mutagenesis and Related Subjects, 1983
- Report of the committee on the genetic constitution of chromosome 6Cytogenetic and Genome Research, 1979
- Assignment of the gene for adenosine kinase to chromosome 14 in Mus musculus by somatic cell hybridizationCytogenetic and Genome Research, 1978