Genetic contributions to agricultural sustainability
- 26 July 2007
- journal article
- review article
- Published by The Royal Society in Philosophical Transactions Of The Royal Society B-Biological Sciences
- Vol. 363 (1491) , 591-609
- https://doi.org/10.1098/rstb.2007.2172
Abstract
The current tools of enquiry into the structure and operation of the plant genome have provided us with an understanding of plant development and function far beyond the state of knowledge that we had previously. We know about key genetic controls repressing or stimulating the cascades of gene expression that move a plant through stages in its life cycle, facilitating the morphogenesis of vegetative and reproductive tissues and organs. The new technologies are enabling the identification of key gene activity responses to the range of biotic and abiotic challenges experienced by plants. In the past, plant breeders produced new varieties with changes in the phases of development, modifications of plant architecture and improved levels of tolerance and resistance to environmental and biotic challenges by identifying the required phenotypes in a few plants among the large numbers of plants in a breeding population. Now our increased knowledge and powerful gene sequence-based diagnostics provide plant breeders with more precise selection objectives and assays to operate in rationally planned crop improvement programmes. We can expect yield potential to increase and harvested product quality portfolios to better fit an increasing diversity of market requirements. The new genetics will connect agriculture to sectors beyond the food, feed and fibre industries; agri-business will contribute to public health and will provide high-value products to the pharmaceutical industry as well as to industries previously based on petroleum feedstocks and chemical modification processes.Keywords
This publication has 112 references indexed in Scilit:
- Endogenous and Synthetic MicroRNAs Stimulate Simultaneous, Efficient, and Localized Regulation of Multiple Targets in Diverse SpeciesPlant Cell, 2006
- Highly Specific Gene Silencing by Artificial MicroRNAs inArabidopsisPlant Cell, 2006
- Expression Profiling Identifies Genes Expressed Early During Lint Fibre Initiation in CottonPlant and Cell Physiology, 2006
- Soluble starch synthase I: a major determinant for the synthesis of amylopectin in Arabidopsis thaliana leavesThe Plant Journal, 2005
- Towards the rational design of cereal starchesCurrent Opinion in Plant Biology, 2005
- TILLING. Traditional Mutagenesis Meets Functional GenomicsPlant Physiology, 2004
- The Cre1 and Cre3 Nematode Resistance Genes Are Located at Homeologous Loci in the Wheat GenomeMolecular Plant-Microbe Interactions®, 2003
- Starch-Branching Enzyme I-Deficient Mutation Specifically Affects the Structure and Properties of Starch in Rice EndospermPlant Physiology, 2003
- Discrete Forms of Amylose Are Synthesized by Isoforms of GBSSI in Pea[W]Plant Cell, 2002
- Characterization of a Granule-Bound Starch Synthase Isoform Found in the Pericarp of WheatPlant Physiology, 1998