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Physical mapping of genes in somatic cell radiation hybrids by comparative genomic hybridization to cDNA microarrays

BACKGROUND: Somatic cell mutants can be informative in the analysis of a wide variety of cellular processes. The use of map-based positional cloning strategies in somatic cell hybrids to analyze genes responsible for recessive mutant phenotypes is often tedious, however, and remains a major obstacle...

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Autores principales: Lin, Johann Y, Pollack, Jonathan R, Chou, Fan-Li, Rees, Christian A, Christian, Allen T, Bedford, Joel S, Brown, Patrick O, Ginsberg, Mark H
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2002
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC116723/
https://www.ncbi.nlm.nih.gov/pubmed/12093373
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author Lin, Johann Y
Pollack, Jonathan R
Chou, Fan-Li
Rees, Christian A
Christian, Allen T
Bedford, Joel S
Brown, Patrick O
Ginsberg, Mark H
author_facet Lin, Johann Y
Pollack, Jonathan R
Chou, Fan-Li
Rees, Christian A
Christian, Allen T
Bedford, Joel S
Brown, Patrick O
Ginsberg, Mark H
author_sort Lin, Johann Y
collection PubMed
description BACKGROUND: Somatic cell mutants can be informative in the analysis of a wide variety of cellular processes. The use of map-based positional cloning strategies in somatic cell hybrids to analyze genes responsible for recessive mutant phenotypes is often tedious, however, and remains a major obstacle in somatic cell genetics. To fulfill the need for more efficient gene mapping in somatic cell mutants, we have developed a new DNA microarray comparative genomic hybridization (array-CGH) method that can rapidly and efficiently map the physical location of genes complementing somatic cell mutants to a small candidate genomic region. Here we report experiments that establish the validity and efficacy of the methodology. RESULTS: CHO cells deficient for hypoxanthine:guanine phosphoribosyl transferase (HPRT) were fused with irradiated normal human fibroblasts and subjected to HAT selection. Cy5-labeled genomic DNA from the surviving hybrids containing the HPRT gene was mixed with Cy3-labeled genomic DNA from normal CHO cells and hybridized to a microarray containing 40,185 cDNAs, representing 29,399 genes (UniGene clusters). The DNA spots with the highest Cy5:Cy3 fluorescence ratios corresponded to a group of genes mapping within a 1 Mb interval centered near position 142.7 Mb on the X chromosome, the genomic location of HPRT. CONCLUSION: The results indicate that our physical mapping method based on radiation hybrids and array-CGH should significantly enhance the speed and efficiency of positional cloning in somatic cell genetics.
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spelling pubmed-1167232002-07-09 Physical mapping of genes in somatic cell radiation hybrids by comparative genomic hybridization to cDNA microarrays Lin, Johann Y Pollack, Jonathan R Chou, Fan-Li Rees, Christian A Christian, Allen T Bedford, Joel S Brown, Patrick O Ginsberg, Mark H Genome Biol Research BACKGROUND: Somatic cell mutants can be informative in the analysis of a wide variety of cellular processes. The use of map-based positional cloning strategies in somatic cell hybrids to analyze genes responsible for recessive mutant phenotypes is often tedious, however, and remains a major obstacle in somatic cell genetics. To fulfill the need for more efficient gene mapping in somatic cell mutants, we have developed a new DNA microarray comparative genomic hybridization (array-CGH) method that can rapidly and efficiently map the physical location of genes complementing somatic cell mutants to a small candidate genomic region. Here we report experiments that establish the validity and efficacy of the methodology. RESULTS: CHO cells deficient for hypoxanthine:guanine phosphoribosyl transferase (HPRT) were fused with irradiated normal human fibroblasts and subjected to HAT selection. Cy5-labeled genomic DNA from the surviving hybrids containing the HPRT gene was mixed with Cy3-labeled genomic DNA from normal CHO cells and hybridized to a microarray containing 40,185 cDNAs, representing 29,399 genes (UniGene clusters). The DNA spots with the highest Cy5:Cy3 fluorescence ratios corresponded to a group of genes mapping within a 1 Mb interval centered near position 142.7 Mb on the X chromosome, the genomic location of HPRT. CONCLUSION: The results indicate that our physical mapping method based on radiation hybrids and array-CGH should significantly enhance the speed and efficiency of positional cloning in somatic cell genetics. BioMed Central 2002 2002-05-14 /pmc/articles/PMC116723/ /pubmed/12093373 Text en Copyright © 2002 Lin et al., licensee BioMed Central Ltd
spellingShingle Research
Lin, Johann Y
Pollack, Jonathan R
Chou, Fan-Li
Rees, Christian A
Christian, Allen T
Bedford, Joel S
Brown, Patrick O
Ginsberg, Mark H
Physical mapping of genes in somatic cell radiation hybrids by comparative genomic hybridization to cDNA microarrays
title Physical mapping of genes in somatic cell radiation hybrids by comparative genomic hybridization to cDNA microarrays
title_full Physical mapping of genes in somatic cell radiation hybrids by comparative genomic hybridization to cDNA microarrays
title_fullStr Physical mapping of genes in somatic cell radiation hybrids by comparative genomic hybridization to cDNA microarrays
title_full_unstemmed Physical mapping of genes in somatic cell radiation hybrids by comparative genomic hybridization to cDNA microarrays
title_short Physical mapping of genes in somatic cell radiation hybrids by comparative genomic hybridization to cDNA microarrays
title_sort physical mapping of genes in somatic cell radiation hybrids by comparative genomic hybridization to cdna microarrays
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC116723/
https://www.ncbi.nlm.nih.gov/pubmed/12093373
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