Scherthan et al (1994). Nature Genetics 6:342-347, Apr. 1994.* |
Arnold et al (1996). Cytogenetics and Cell Genetics 74:80-85, 1996.* |
Ahern (1995). The Scientist 9:20, Jul. 1995.* |
Kim et al (1996). Chromosome Research 4:500-506, 1996.* |
Arnold et al, “Identification of Complex Chromsome Rearrangement in the Gibbon by Fluorescent In Situ Hybridization (fish) of a Human Chromosomes, and Reciprocal Chromsome Painting”, Cytogenet Cell Genet, 74:80-85 (1996).* |
Jauch et al., “Reconstruction of Genomic Rearrangements in Great Apes and Gibbons by Chromosome Painting”. Proc. Natl. Acad. Sci. USA, 89:8611-8615 (1992). |
Koehler et al., “Genomic Reorganization and Disrupted Chromosomal Synteny in the Siamang (Hylobates Syndactylus) Revealed by Fluorescence in Situ Hybridization”, American Journal of Physical Anthropology, 97:37-47 (1995). |
Koehler et al., “Genomic Reorganization in the Concolor Gibbon (Hylobates Concolor) Revealed by Chromosome Painting”, Genomics 30:287-292 (1995). |
Stanyon et al., “Chromosomal Painting Shows that “Marked Chromosomes” In Lesser Apes and Old World Monkeys are not Homologous and Evolved by Convergence”, Cytogenet Cell Genet 68:74-78 (1995). |
Ferguson-Smith, M.A., “Genetic Analysis by Chromosome Sorting and Painting: Phylogenetic and Diagnostic Applications” Eur. J. Hum. Genet. 5:253-265 (1997). |
Goureau, A. et al., “Human and porcine correspondence of chromosome segments using bidirectional chromosome painting” Genomics36 (2) :252-262 (Sep. 1, 1996). |
Koehler, U. et al., “Genomic Reorganization in the Concolor Gibbon (Hylobates concolor) Revealed by Chromosome Painting” Genomics30 :287-292 (1995). |
Müller, S. et al., “A novel source of highly specific chromosome painting probes for human karyotype analysis derived from primate homologues” Hum. Genet. 101:149-153 (1997). |
Müller, S. et al., “Toward a multicolor chromosome bar code for the entire human karyotype by fluorescence in situ hybridization” Hum. Genet. 100:271-278 (1997). |
Pinkel, D. et al., “Flourescence in situ hybridization with human chromosome-specific libraries: Detection of trisomy 21 and translocations of chromosome 4” Proc. Natl. Acad. Sci. USA89 :1388-1392 (1992). |
Rabbitts, P. et al., “Chromosome specific paints from a high resolution flow karyotype of the mouse” Nature Genet. 9:369-375 (Apr. 1995). |
Richard, F. et al., “ZOO-FISH suggests a complete homology between human and capuchin monkey (Platyrrhini) euchromatin” Genomics 36(3) :417-423 (Sep. 15, 1996). |
Ried, T. et al., “Simultaneous visualization of seven different DNA probes by in situ hybridization using combinatorial fluorescence and digital imaging microscopy” Proc. Natl. Acad. Sci. USA 89:1388-1392 (Feb. 1992). |
Telenius, H. et al., “Cytogenetic analysis by chromosome painting using DOP-PCR amplified flow-sorted chromosomes” Genes, Chromosomes & Cancer 4:257-263 (1992). |
Wienberg, J. et al., “Conservation of human vs. feline genome organization revealed by reciprocal chromosome painting” Cytogenet. Cell Genet. 77(3-4) :211-217 (1997). |
Wienberg, J. et al., “Chromosome painting without competitor DNA” Elsevier Trends Journals Technical Tips Online, 2 pages (Jan. 22, 1997) www.elsevier.com/locate/tto. |
Wienberg, J. et al., “Chromosome painting in mammals as an approach to comparative genomics” Curr. Opinion Genet. Devel. 5:792-797 (1995). |
Yang, F. et al., “Comparative chromosome painting in mammals: human and the Indian muntjac (Muntiacus muntjak vaginalis)” Genomics 39(3) :396-401 (Feb. 1, 1997). |
Cambio Ltd. Catalog, pp. 1, 19, 20 “Star*Fish™ Chromosome Painting” Undated. |
Ferguson-Smith, “Applications of Cross-Species Color Banding” (Abstract), 47th ASHG Annual Meeting, Baltimore, Maryland, Oct. 29, 1997. |
Muller, “Cross-Species Color Banding (CSC-Banding) : Technical Aspects” (Abstract), 47th ASHG Annual Meeting, Baltimore, Maryland, Oct. 29, 1997. |
Wienberg, “Cross-Specices Chromosome Painting in Human Karyotype Analysis” (Abstract), 47th ASHG Annual Meeting, Baltimore, Maryland, Oct. 29, 1997. |