Architectural Evolution and its Implications for Domestication in Grasses
Open Access
- 3 May 2007
- journal article
- review article
- Published by Oxford University Press (OUP) in Annals of Botany
- Vol. 100 (5) , 941-950
- https://doi.org/10.1093/aob/mcm040
Abstract
The cereal crops domesticated from grasses provide a large percentage of the calories consumed by humans. Domestication and breeding in individual cereals has historically occurred in isolation, although this is rapidly changing with comparative genomics of the sequenced or soon-to-be sequenced genomes of rice, sorghum, maize and Brachypodium. Genetic information transferred through genomic comparisons is helping our understanding of genetically less tractable crops such as the hexaploid wheats and polyploid sugarcane, as well as the approx. 10 000 species of wild grasses. In turn, phylogenetic analysis helps put our knowledge of the morphology of cereal crops into an evolutionary context. Domestication often involves a change in the pattern and timing of branching, which affects both vegetative and inflorescence architecture, and ultimately yield. Cereal grasses exhibit two main forms of vegetative architecture: the pooid and erhartoid cereals such as wheat and rice have multiple basal tillers, while panicoid cereals such as maize, sorghum and the millets have few tillers or even only a single main stem. These differences are reflected in the differences between the wild species of pooid and some erhartoid grasses, which emphasize basal branching over axillary branching, and the panicoid grasses, where axillary branching is more frequently found. A combination of phylogenetic and genomic analysis is beginning to reveal the similarities and differences between different cereal crops, and relate these to the diversity of wild grasses to which they are related. Recent work on genes controlling branching emphasizes that developmental genetics needs to be viewed in both an evolutionary and ecological framework, if it is to be useful in understanding how morphology evolves. Increasingly, exploring the phylogenetic context of the crop grasses will suggest new ways to identify and create combinations of morphological traits that will best suit our future needs.Keywords
This publication has 77 references indexed in Scilit:
- Analysis of theDECREASED APICAL DOMINANCEGenes of Petunia in the Control of Axillary BranchingPlant Physiology, 2006
- Phylogeography of Asian wild rice, Oryza rufipogon , reveals multiple independent domestications of cultivated rice, Oryza sativaProceedings of the National Academy of Sciences, 2006
- The map-based sequence of the rice genomeNature, 2005
- SHOOT BRANCHINGAnnual Review of Plant Biology, 2005
- Cereal phytochromes: targets of selection, targets for manipulation?Trends in Plant Science, 2005
- The Genetic Basis for Inflorescence Variation Between Foxtail and Green Millet (Poaceae)Genetics, 2005
- Regulation of shoot branching by auxinPublished by Elsevier ,2003
- Phylogenetic relationships among Poaceae and related families as inferred from morphology, inversions in the plastid genome, and sequence data from the mitochondrial and plastid genomesAmerican Journal of Botany, 2003
- GONDWANAN EVOLUTION OF THE GRASS ALLIANCE OF FAMILIES (POALES)Evolution, 2002
- Convergent Domestication of Cereal Crops by Independent Mutations at Corresponding Genetic LociScience, 1995