What it will take to Feed 5.0 Billion Rice consumers in 2030
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Open Access
- 1 September 2005
- journal article
- Published by Springer Nature in Plant Molecular Biology
- Vol. 59 (1) , 1-6
- https://doi.org/10.1007/s11103-005-2159-5
Abstract
Major advances have occurred in rice production due to adoption of green revolution technology. Between 1966 and 2000, the population of densely populated low income countries grew by 90% but rice production increased by 130% from 257 million tons in 1966 to 600 million tons in 2000. However, the population of rice consuming countries continues to grow and it is estimated that we will have to produce 40 more rice in 2030. This increased demand will have to be met from less land, with less water, less labor and fewer chemicals. To meet the challenge of producing more rice from suitable lands we need rice varieties with higher yield potential and greater yield stability. Various strategies for increasing the rice yield potential being employed include: (1) conventional hybridization and selection procedures, (2) ideotype breeding, (3) hybrid breeding, (4) wide hybridization and (5) genetic engineering. Various conventional and biotechnology approach are being employed to develop durable resistance to diseases and insect and for tolerance to abiotic stresses. The availability of the rice genome sequence will now permit identification of the function of each of 60,000 rice genes through functional genomics. Once the function of a gene is identified, it will be possible to develop new rice varieties by introduction of the gene through traditional breeding in combination with marker aided selection or direct engineering of genes into rice varieties.Keywords
This publication has 11 references indexed in Scilit:
- Trehalose accumulation in rice plants confers high tolerance levels to different abiotic stressesProceedings of the National Academy of Sciences, 2002
- Pyramiding three bacterial blight resistance genes (xa5, xa13 and Xa21) using marker-assisted selection into indica rice cultivar PR106Theoretical and Applied Genetics, 2001
- Grain Yield of Rice Cultivars and Lines Developed in the Philippines since 1966Crop Science, 2000
- Pyramiding of bacterial blight resistance genes in rice: marker-assisted selection using RFLP and PCRTheoretical and Applied Genetics, 1997
- Genes from wild rice improve yieldNature, 1996
- Inhibition of Leaf Senescence by Autoregulated Production of CytokininScience, 1995
- Locating genes associated with root morphology and drought avoidance in rice via linkage to molecular markersTheoretical and Applied Genetics, 1995
- Production of Transgenic Rice (Oryza Sativa L.) Plants from Agronomically Important Indica and Japonica Varieties via Electric Discharge Particle Acceleration of Exogenous DNA into Immature Zygotic EmbryosBio/Technology, 1991
- T-DNA of Agrobacterium tumefaciens encodes an enzyme of cytokinin biosynthesis.Proceedings of the National Academy of Sciences, 1984
- Backcross variability for grain yield in oat species crosses (Avena sativa L. x A. sterilis L.)Euphytica, 1975