Genomic affinities between maize and Zea perennis using classical and molecular cytogenetic methods (GISH–FISH)

Graciela Esther González1, Cecilia I. Comas2, Viviana A. Confalonieri2, Carlos Naranjo1, Lidia Poggio1
1Instituto Fitotécnico de Santa Catalina (FCAF, UNLP) – CIGen (CONICET-UNLP-CIC) C.C. 4
2Genética y Evolución (FCEN, UBA)

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Anamthawat-Jónsson V, Schwarzacher T, Leitch AR, Bennett MD, Heslop-Harrison JS (1990) Discrimination between closely related Triticeae species using genomic DNA as a probe. Theor Appl Genet 79: 721–728.

Ananiev EV, Phillips RL, Rines HW (1998) A knob associated tandem repeat in maize capable of forming fold-back DNA segments: are chromosome knobs megatransposons? Proc Natl Acad Sci 95: 10785–10790.

Bennett MD (1995) The development and use of genomic in situ hybridization (GISH) as a new tool in plant biosystematics. In Brandham PE, Bennett MD, eds., Kew Chromosome Conference IV, Royal Botanic Gardens, Kew, pp. 167–183.

Buckler ES, Gaut BS, McMullen MD (2006) Molecular and functional diversity of maize. Current Opin Plant Biol 9: 1–5.

Dennis E, Peacock W (1984) Knob heterochromatin homology in maize and its relatives. J Mol Evol 20: 341–350.

Doebley JF (1990) Molecular systematics of Zea (Gramineae). Maydica 35: 143–150.

Gaut BS (2001) Patterns of chromosomal duplication in maize and their implication for comparative maps of the grasses. Genome Res 11: 55–66.

Gaut BS, Doebley JF (1997) DNA sequence evidence for the segmental allotetraploid origin of maize. Proc Natl Acad Sci 94: 6809–6814.

Gerlach WL, Bedbrook JR (1979) Cloning and characterization of ribosomal RNA genes from wheat and barley. Nucleic Acids Res 7: 1869–1885.

González GE (2004) Afinidades genómicas y mapeo cromosómico en maíz y especies relacionadas, a través de estudios de citogenética clásica y de hibridación in situ. Tesis doctoral. Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires.

González GE, Confalonieri V, Comas C, Naranjo CA, Poggio L (2004) GISH reveals cryptic genetic differences between maize and its putative wild progenitor Zea mays ssp. parviglumis. Genome 47: 497–452.

Heslop-Harrison JS, Schwarzacher T, Leitch AR, Anamthawat-Jónsson K, Bennett MD (1988) A method of identifying DNA sequences in chromosomes of plants. European patent amplification number 8828130.8.

Iltis HH, Benz BF (2000) Zea nicaraguensis (Poaceae), a New Teosinte from Pacific Coastal Nicaragua. Novon 10: 382–390.

Lal SK, Hannah LC (2005) Helitrons contribute to the lack of gene colinearity observed in modern maize inbreds. Proc Natl Acad Sci USA 102: 9993–9994.

Lal SK, Giroux MJ, Brendel V, Vallejos CE, Hannan LC (2003) The maize genome contains a helitron insertion. Plant Cell 15: 381–391.

Moore G, Devos KM, Wang Z, Gale MD (1995) Cereal genome evolution. Grasses, line up and form a circle. Current Biol 5: 737–739.

Morgante M, Brunner S, Pea G, Fengler K, Zuccolo A, Rafalski A (2005) Gene duplication and exon shuffling by helitron-like transposons generate interspecies diversity in maize. Nat Genet 37: 997–1002.

Naranjo CA, Molina M, Poggio L (1990) Evidencias de un número básico x = 5 en el género Zea y su importancia en estudios del origen del maíz. Acad Nac Cs Ex Fís Nat, Buenos Aires 5: 43–53.

Naranjo CA, Poggio L, Molina M, Bernatené E (1994) Increase in multivalent frequency in F1 hybrids of Zea diploperennis × Zea perennis by colchicine treatment. Hereditas 120: 241–244.

Poggio L, Naranjo CA (1995) Origen del maíz: evidencias citogenéticas. Reunión. Latinoam Zona Andina Inv Maíz, pp. 969–980.

Poggio L, Molina M, Naranjo CA (1990) Cytogenetic studies in the genus Zea. 2: Colchicine induced multivalents. Theor Appl Genet 79: 461–464.

Poggio L, Confalonieri V, Comas C, Cuadrado A, Jouve N, Naranjo CA (1999a) Genomic in situ hybridization (GISH) of Tripsacum dactyloides and Zea mays ssp. mays with B-chromosomes. Genome 42: 687–691.

Poggio L, Confalonieri V, Comas C, González GE, Naranjo CA (1999b) Genomic affinities among Zea luxurians, Zea perennis and Zea diploperennis: meiotic behaviour in the F1 and genomic in situ hybridization (GISH). Genome 42: 993–1000.

Poggio L, Confalonieri V, Comas C, González GE, Naranjo CA (2000) Evolutionary relationships in the genus Zea: analysis of repetitive sequences used as cytological FISH marker. Genet Mol Biol 23: 1021–1027.

Poggio L, González GE, Confalonieri V, Comas C, Naranjo CA (2005) The genome organization and diversification of maize and its allied species revisited: evidences from classical and FISH–GISH cytogenetics analysis. Cytogenet Gen Res 109: 259–267.

Raina SN, Rani V (2001) GISH technology in pant genome research. Meth Cell Sci 23: 83–104.

Schwarzacher T, Leitch AR, Bennett MD, Heslop-Harrison JS (1989) In situ localization of parental genomes in a wide hybrid. Ann Bot 64: 315–324.

Takahashi C, Marshall JA, Bennett MD, Leitch IJ (1999) Genomic relationships in maize and its wild relatives. Genome 42: 1201–1207.

White S, Doebley J (1998) Of genes and genomes and the origin of maize. Trends Genet 14: 327–332.