Quinoa (Chenopodium quinoa)

  • Peter J. Maughan
  • Alejandro Bonifacio
  • Craig E. Coleman
  • Eric N. Jellen
  • Mikel R. Stevens
  • Daniel J. Fairbanks
Part of the Genome Mapping and Molecular Breeding in Plants book series (GENMAPP, volume 3)

Keywords

Bacterial Artificial Chromosome Bacterial Artificial Chromosome Clone Bacterial Artificial Chromosome Library Chenopodium Quinoa Seed Storage Protein Gene 
These keywords were added by machine and not by the authors. This process is experimental and the keywords may be updated as the learning algorithm improves.

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References

  1. Angiosperm Phylogeny Group (1998) An ordinal classification for the families of flowering plants. Ann Missouri Bot Gard 85:531–553CrossRefGoogle Scholar
  2. Barzen E, Mechelke W, Ritter E, Schulte-Kappert E, Salamini F (1995) An extended map of the sugar beet genome containing RFLP and TAPD loci. Theor Appl Genet 89:167–178Google Scholar
  3. Bonifacio A (1990) Caracteres hereditarios y ligamiento factorial en la quinua. Tésis Ing Agr Universidad Mayor de San Simón, Cochamamba, BoliviaGoogle Scholar
  4. Bonifacio A (1995) Interspecific and intergeneric hybridization in Chenopod species. Master’s thesis. Brigham Young University, Provo, UT, USAGoogle Scholar
  5. Bonifacio A (2004) Genetic variation in cultivated and wild Chenopodium species for quinoa breeding. Ph.D. Dissertation, Brigham Young University, Provo, UT, USAGoogle Scholar
  6. Bonifacio A, Gandarillas H (1992) La nueva variedad de quinua “Sayaña.” Informe Anual, Programa Nacional Quinua, IBTA-MACA, La Paz, BoliviaGoogle Scholar
  7. Bonifacio A, Vargas A, Aroni G (2003) Variedad “Quinua Jach’a Grano.” Boletín Técnico No. 6. Fundación PROINPA, Cochabamba, BoliviaGoogle Scholar
  8. Brinegar C, Goundan S (1993) Isolation and characterization of chenopodin, the 11S seed storage protein of quinoa (Chenopodium quinoa). J Agric Food Chem 41:182–185CrossRefGoogle Scholar
  9. Clemants SE, Mosyakin SL (2003) Flora of North America. http://www.efloras.orgGoogle Scholar
  10. Coles ND, Coleman CE, Christensen SA, Jellen EN, Stevens MR, Bonifacio A, Rojas-Beltran JA, Fairbanks DJ, Maughan PJ (2005) Development and use of an expressed sequenced tag library in quinoa (Chenopodium quinoa Willd.) for the discovery of single nucleotide polymorphisms. Plant Sci 168:439–447CrossRefGoogle Scholar
  11. Cusack D (1984) Quinoa: grain of the Incas. Ecologist 14:21–31Google Scholar
  12. Domoney C, Barker D, Casey R (1986) The complete deduced amino acid sequences of legumin β-polypeptides from different genetic loci in Pisum. Plant Mol Biol 7:467–474CrossRefGoogle Scholar
  13. Fairbanks DJ, Burgener KW, Robison LR, Andersen WR, Ballon E (1990) Electrophoretic characterization of quinoa seed proteins. Plant Breeding 104:190–195CrossRefGoogle Scholar
  14. Fairbanks DJ, Waldrigues DF, Ruas CF, Ruas RM, Maughan PJ, Robison LR, Andersen WR, Riede CR, Panley CS, Caetano LG, Arantes OMN, Fungaro MH, Vidotto MC, Jankevicius SE (1993) Efficient characterization of biological diversity using field DNA extraction and RAPD markers. Brazil J Genet 16:11–33Google Scholar
  15. Galwey NW (1995) Quinoa and relatives. In Smartt J, Simmonds NW (eds) Evolution of Crop Plants, 2nd edn. Longman, Essex, UK, pp 41–46Google Scholar
  16. Gandarillas H (1968) Razas de quinua. Universo, Boletín Experimental No. 34, MACA, División de Investigaciones Agrícolas, La Paz, BoliviaGoogle Scholar
  17. Gandarillas H (1974) Genética y origen de la quinua. Boletín Informativo No. 9, MACA Inst Tricgo, La Paz, BoliviaGoogle Scholar
  18. Gill BS, Friebe B, Endo TR (1991) Standard karyotype and nomenclature system for description of chromosome bands and structural aberrations in wheat (Triticum aestivum). Genome 34:830–839Google Scholar
  19. Graebner P (1919) Chenopodium. In: Ascherson P, Graebner P (eds) Synopsis der mitteleuropäischen Flora, 5. Gebrüder Borntraeger, Leipzig, pp 17–106Google Scholar
  20. Halldén C, Hjerdin A, Rading IM, Säll T, Fridlundh B, Johannisdottir G, Tuvesson S, Åkesson C, Nilsson N-O (1996) A high-density RFLP linkage map of sugar beet. Genome 39:634–64Google Scholar
  21. Heiser CB, Nelson DC (1974) On the origin of the cultivated chenopods (Chenopodium). Genetics 78:503–505Google Scholar
  22. Hulbert SH, Ilott TW, Legg EJ, Lincoln SE, Lander ES, Michelmore RW (1988) Genetic analysis of the fungus, Bremia lactucae, using restriction fragment length polymorphisms. Genetics 120:947–958PubMedGoogle Scholar
  23. Kolano B, Pando LG, Maluszynska J (2001) Molecular cytogenetic studies in Chenopodium quinoa and Amaranthus caudatus. Acta Societ Botan Polon 70:85–90Google Scholar
  24. Kolano BA (2004) Genome analysis of a few Chenopodium species. Ph.D. thesis, University of Silesia, Katowice, PolandGoogle Scholar
  25. León J (1964) Plantas alimenticias andinas. Boletín Técnico No. 6, IICA Zona Andina, Lima, PeruGoogle Scholar
  26. Mason SL, Stevens MR, Jellen EN, Bonifacio A, Fairbanks DJ, McCarty RR, Rasmussen AG, Maughan PJ (2005) Development and use of microsatellite markers for germplasm characterization in quinoa (Chenopodium quinoa Willd.). Crop Science 45:1618–1630CrossRefGoogle Scholar
  27. Maughan PJ, Bonifacio A, Jellen EN, Stevens MR, Coleman CE, Ricks M, Mason SL, Jarvis DE, Gardunia BW, Fairbanks DJ (2004) A genetic linkage map of quinoa (Chenopodium quinoa) based on AFLP, RAPD, and SSR markers. Theor Appl Genet 109:1188–1195PubMedCrossRefGoogle Scholar
  28. National Research Council (1989) Lost crops of the Incas. National Academy Press, Washington, DCGoogle Scholar
  29. Nelson DC (1968) Taxonomy and origins of Chenopodium quinoa and Chenopodium nuttaliae. Ph.D. thesis, Indiana University, Bloomington, INGoogle Scholar
  30. Partap T, Kapoor P (1985) The Himalayan grain chenopods. I. Distribution and ethnobotany. Agric Ecosyst Environ 14:185–199CrossRefGoogle Scholar
  31. Partap T, Joshi BD, Galwey NW (1998) Chenopods. Chenopodium spp. Promoting the conservation and use of underutilized and neglected crops. 22. Institute of Plant Genetics and Crop Plant Research, Gatersleben/International Plant Genetic Resources Institute, RomeGoogle Scholar
  32. Powell W, Morgante M, Andre C, Hanafey M, Vogel J, Tingey S, Rafalski A (1996) The comparison of RFLP, RAPD, AFLP, and SSR (microsatellite) markers for germplasm analysis. Mol Breed 2:225–238CrossRefGoogle Scholar
  33. Pulgar-Vidal J (1954) La quinua o suba, alimento básico de los Chibchas. Economía Colomiana 1:549–560Google Scholar
  34. Rafalski A (2002) Applications of single nucleotide polymorphisms in crop genetics. Curr Opin Plant Biol 5:94–100PubMedCrossRefGoogle Scholar
  35. Rahiminejad MR, Gornall RJ (2004) Flavonoid evidence for allopolyploidy in the Chenopodium album aggregate (Amaranthaceae). Plant Syst Evol 246:77–87CrossRefGoogle Scholar
  36. Rerie WG, Whitecross MI, Higgins TJV (1990) Nucleotide sequence of an A-type legumin gene from pea. Nucleic Acids Res 18:655PubMedCrossRefGoogle Scholar
  37. Risi J, Galwey NW (1984) The Chenopodium grains of the Andes: Inca crops for modern agriculture. Adv Appl Biol 10:145–216Google Scholar
  38. Ruas PM, Bonifacio A, Ruas CF, Fairbanks DJ, Andersen WR (1999) Genetic relationship among 19 accessions of six species of Chenopodium L., by Random Amplified Polymorphic DNA fragments (RAPD). Euphytica 105:25–32CrossRefGoogle Scholar
  39. Simmonds NW (1971) The breeding system of Chenopodium quinoa. I. Male sterility. Heredity 27:73–82Google Scholar
  40. Stevens MR, Coleman CE, Parkinson SE, Maughan PJ, Zhang H-B, Balzotti MR, Kooyman DL, Arumuganathan K, Bonifacio A, Fairbanks DJ, Jellen EN, Stevens JJ (2006) Construction of a quinoa (Chenopodium quinoa Willd.) BAC library and its use in identifying genes encoding seed storage proteins. Theor Appl Genet 112:1593–1600PubMedCrossRefGoogle Scholar
  41. Tapia ME (1979) Historia y distribuición geográfica. In Tapia ME (ed) Quinua y Kañihua. Cultivos Andinos. Serie Libros y Materiales Educativos No. 49. Instituto Interamericano de Ciencias Agrícolas, Bogotá, Colombia, pp 11–15Google Scholar
  42. Ward SM (2000) Allotetraploid segregation for single-gene morphological characters in quinoa (Chenopodium quinoa Willd.). Euphytica 116:11–16CrossRefGoogle Scholar
  43. Ward SM (2001) A recessive allele inhibiting saponin synthesis in two lines of Bolivian quinoa (Chenopodium quinoa Willd.). J Hered 92:83–86PubMedCrossRefGoogle Scholar
  44. Welsh SL, Atwood ND, Goodrich S, Higgins LC (2003) A Utah Flora, 3rd edn. ME Jones Endowment Fund, ML Bean Life Sci Mus, Brigham Young University, Provo, UTGoogle Scholar
  45. Wilson HD (1980) Artificial hybridization among species of Chenopodium sect. Chenopodium. Syst Bot 5:252–263CrossRefGoogle Scholar
  46. Wilson HD (1988a) Quinoa biosystematics. I. Domesticated populations. Econ Bot 42:461–477Google Scholar
  47. Wilson HD (1988b) Allozyme variation and morphological relationships of Chenopodium hircinium (s.l.). Syst Bot 13:215–228CrossRefGoogle Scholar
  48. Wilson HD (1990) Quinua and relatives (Chenopodium sect. Chenopodium subsect. Cellulata). Econ Bot 44(3 Suppl): 92–110Google Scholar
  49. Wilson HD, Heiser CB (1979) The origin and evolutionary relationships of ‘huauzontle’ (Chenopodium nuttaliae Safford), domesticated chenopod of Mexico. Am J Bot 66:198–206CrossRefGoogle Scholar
  50. Zhu G, Mosyakin SL, Clemants SE (2003) Flora of China. http://www.efloras.orgGoogle Scholar

Copyright information

© Springer-Verlag Berlin Heidelberg 2007

Authors and Affiliations

  • Peter J. Maughan
    • 1
  • Alejandro Bonifacio
    • 2
  • Craig E. Coleman
    • 1
  • Eric N. Jellen
    • 1
  • Mikel R. Stevens
    • 1
  • Daniel J. Fairbanks
    • 1
  1. 1.Brigham Young UniversityProvoUSA
  2. 2.Fundación PROINPALa PazBolivia

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