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Bridging Classical and Molecular Genetics of Sorghum Plant Stature and Maturity

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Book cover Genomics of the Saccharinae

Part of the book series: Plant Genetics and Genomics: Crops and Models ((PGG,volume 11))

Abstract

Most initial sorghum introductions into the USA were too tall for mechanical grain harvest and flowered late or not at all at temperate latitudes. A small number of spontaneous mutations for dwarf stature and early maturity arose in farmers’ fields and were quickly disseminated. Several subsequent sorghum introductions were determined by allelism tests to carry recessive alleles at the same loci. These early experiments led to the conclusion that there are four major loci for dwarfing in sorghum (Dw1–Dw4) and four major loci for maturity (Ma1–Ma4). The relatively simple inheritance of these important agronomic traits was later exploited by the Sorghum Conversion Program, which introgressed QTL for dwarfing and early maturity into hundreds of exotic lines through a strategy of backcrossing with phenotypic selection. To date, molecular work has identified just two of these classical dwarfing/maturity loci in sorghum: Dw3 encodes an MDR-class auxin efflux carrier, and Ma3 encodes a phytochrome B. In this chapter, we provide an overview of current understanding of the genetic architecture of plant height and flowering time in sorghum, including recent progress in mapping additional loci beyond the classical Dw1Dw4 and Ma1Ma4. We also discuss prospects for identifying the remaining major loci for height and maturity in sorghum using both linkage- and association-based methods. Most of our understanding of sorghum phenotypic variation currently comes from studies in dwarf grain sorghum genetic backgrounds in which variation for other developmental traits may be masked. Growing interest in C4 grasses as bioenergy crops is likely to necessitate study of a broader range of sorghum genetic backgrounds.

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References

  • Brown PJ, Klein PE, Bortiri E, Acharya CB, Rooney WL, Kresovich S (2006) Inheritance of inflorescence architecture in sorghum. Theor Appl Genet 113:931–942

    Article  PubMed  CAS  Google Scholar 

  • Brown PJ, Rooney WL, Franks C, Kresovich S (2008) Efficient mapping of plant height quantitative trait loci in a sorghum association population with introgressed dwarfing genes. Genetics 180:629–637

    Article  PubMed  Google Scholar 

  • Childs KL, Cordonnier-Pratt MM, Pratt LH, Morgan PW (1992) Genetic regulation of development in Sorghum bicolor. VII. ma3 Flowering mutant lacks a phytochrome that predominates in green tissue. Plant Physiol 99:765–770

    Article  PubMed  CAS  Google Scholar 

  • Childs KL, Lu JL, Mullet JE, Morgan PW (1995) Genetic regulation of development in Sorghum bicolor. X. Greatly attenuated photoperiod sensitivity in a phytochrome-deficient sorghum possessing a biological clock but lacking a red light-high irradiance response. Plant Physiol 108:345–351

    PubMed  CAS  Google Scholar 

  • Childs KL, Miller FR, Cordonnier-Pratt M-M, Pratt LH, Morgan PW, Mullet JE (1997) The sorghum photoperiod-sensitivity gene, Ma3, encodes a phytochrome B. Plant Physiol 113:611–619

    Article  PubMed  CAS  Google Scholar 

  • Dahlberg J, Rosenow DT, Peterson GC, Clark LE, Miller FR, Sotomayor-Rios A, Hamburger AJ, Madera-Torres P, Quiles-Belen A, Woodfin CA (1998) Registration of 40 converted sorghum germplasms. Crop Sci 38:564–565

    Article  Google Scholar 

  • Harper J (1977) Plant population biology. Academic, London

    Google Scholar 

  • Hart GE, Schertz KF, Peng Y, Syed NH (2001) Genetic mapping of Sorghum bicolor (L.) Moench QTLs that control variation in tillering and other morphological characters. Theor Appl Genet 103:1232–1242

    Article  CAS  Google Scholar 

  • Klein RR, Rodriguez-Herrera R, Schlueter JA, Klein PE, Yu ZH, Rooney WL (2001) Identification of genomic regions that affect grain mold incidence and other traits of agronomic importance in sorghum. Theor Appl Genet 102:307–319

    Article  CAS  Google Scholar 

  • Klein RR, Mullet JE, Jordan DR, Miller FR, Rooney WL, Menz MA, Franks CD, Klein PE (2008) The effect of tropical sorghum conversion and inbred development on genome diversity as revealed by high-resolution genotyping. Plant Genome 1:12–26

    Google Scholar 

  • Lin Y-R, Schertz KF, Paterson AH (1995) Comparative analysis of QTLs affecting plant height and maturity across the Poaceae, in reference to an interspecific sorghum population. Genetics 141:391–411

    PubMed  CAS  Google Scholar 

  • Maunder AB (1999) History of cultivar development in the United States: from “Memoirs of A.B. Maunder—sorghum breeder”. In: Smith CW, Frederiksen RA (eds) Sorghum: origin, history, technology, and production. Wiley, New York

    Google Scholar 

  • Mullet JE, Rooney WL, Klein PE, Morishige D, Murphy R, Brady JA (2010) Discovery and utilization of sorghum genes (Ma5/Ma6). US Patent 20100024065, Jan 28 2010

    Google Scholar 

  • Multani DS, Briggs SP, Chamberlin MA, Blakeslee JJ, Murphy AS, Johal GS (2003) Loss of an MDR transporter in compact stalks of maize br2 and sorghum dw3 mutants. Science 302:81–84

    Article  PubMed  CAS  Google Scholar 

  • Murray SC, Sharma A, Rooney WL, Klein PE, Mullet JE, Mitchell SE, Kresovich S (2008) Genetic improvement of sorghum as a biofuel feedstock: IQTL for stem sugar and grain nonstructural carbohydrates. Crop Sci 48:2165–2179

    Article  Google Scholar 

  • Murray SC, Rooney WL, Hamblin MT, Mitchell SE, Kresovich S (2009) Sweet sorghum genetic diversity and association mapping for brix and height. Plant Genome 2:48–62

    Article  CAS  Google Scholar 

  • Pereira MG, Lee M (1995) Identification of genomic regions affecting plant height in sorghum and maize. Theor Appl Genet 90:380–388

    Article  CAS  Google Scholar 

  • Quinby JR (1974) Sorghum improvement and the genetics of growth. Texas A&M University Press, College Station

    Google Scholar 

  • Rooney WL, Aydin S (1999) Genetic control of a photoperiod-sensitive response in Sorghum bicolor (L.) Moench. Crop Sci 39:397–400

    Article  Google Scholar 

  • Rosenow DT, Clark LE (1987) Utilization of exotic germplasm in breeding for yield stability. In: Fifteenth Biennial Grain Sorghum Research and Utilization Conference, 49–56

    Google Scholar 

  • Rosenow DT, Dahlberg JA, Peterson GC, Clark LE, Miller FR, Sotomayor-Rios A, Queles-Belen A, Madera P, Woodfin CA (1996) Registration of fifty converted sorghums from the sorghum conversion program. Crop Sci 37:1397–1398

    Article  Google Scholar 

  • Rosenow DT, Dahlberg JA, Stephens JC, Miller FR, Barnes DK, Peterson GC, Johnson JW, Schertz KF (1997) Registration of 63 converted sorghum germplasm lines from the sorghum conversion program. Crop Sci 37:1399–1400

    Article  Google Scholar 

  • Schertz KF (1973) Single height-gene effects in hybrids of doubled haploid Sorghum bicolor (L.) Moench. Crop Sci 13:421–423

    Article  Google Scholar 

  • Sindhu A, Langewisch T, Olek A, Multani DS, McCann MC, Vermerris W, Carpita NC, Johal G (2007) Maize Brittle stalk2 encodes a COBRA-like protein expressed in early organ development but required for tissue flexibility at maturity. Plant Physiol 145:1444–1459

    Article  PubMed  CAS  Google Scholar 

  • Stephens JC, Miller FR, Rosenow DT (1967) Conversion of alien sorghums to early combine genotypes. Crop Sci 7:396

    Article  Google Scholar 

  • Tarumoto I, Yanase M, Iwahara Y, Kuzumi Y, Morikawa T, Kasuga S (2003) Inheritance of a thermo-sensitivity gene controlling flower initiation in sorghum. Breed Sci 53:353–357

    Article  CAS  Google Scholar 

  • Tarumoto I, Yanase M, Kadowaki H, Yamada T, Kasuga S (2005) Inheritance of photoperiod-sensitivity genes controlling flower initiation in sorghum, Sorghum bicolor Moench. Jap Soc Grassland Sci 51:55–61

    Article  CAS  Google Scholar 

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Correspondence to Patrick J. Brown .

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Brown, P.J., Paterson, A.H. (2013). Bridging Classical and Molecular Genetics of Sorghum Plant Stature and Maturity. In: Paterson, A. (eds) Genomics of the Saccharinae. Plant Genetics and Genomics: Crops and Models, vol 11. Springer, New York, NY. https://doi.org/10.1007/978-1-4419-5947-8_14

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