Completed Food & Agriculture Plants, Animals & Ecology

Wild rice MAGIC

In plain English

AI plain-English summary

Rice breeders are about to mix the genes of every wild rice species on the planet into a single breeding programme for the first time. This matters because cultivated rice has run out of genetic variety. Since the Green Revolution, yield improvements have slowed, and the crop struggles under heat, drought, and disease. Wild relatives of rice carry a vast, largely untapped reservoir of stress-tolerance genes. Until now, breeders have only mixed genes from one wild species at a time, missing the hidden combinations that emerge when many genomes are shuffled together. If this works, the team will produce new rice lines that can withstand multiple stresses simultaneously. Those lines will be sent to field-testing partners in Africa and India, and then to farmers. The result could be more stable harvests in regions where rice is a staple food and climate change is already squeezing yields. The project also generates a public resource of sequenced, stress-tested germplasm that other breeders can use for decades.

View original technical description
Limited genetic variation in cultivated rice is a major factor responsible for the declining rates of yield improvement since the Green Revolution. Substantial and underexploited genetic variation exists within wild relatives of rice that improve tolerance to stresses. We will initiate the first program to mix alleles from all wild-rices, select those with benefit under stress and introduce them into cultivated rice. To date, alleles from individual non-domesticated rice species have been combined into elite varieties. While useful, this is both limited in scope and ignores much of the uncharacterized allelic variation present in wild-relatives. Furthermore, combining genomes can produce desirable phenotypes in progeny that are absent in parents. This breeding program will be underpinned by analysis of the genomes of the lines that we generate and by phenotyping to assess how each line responds to a wide range of stresses. The germplasm that we generate will be supplied to partners in Africa and India for testing in field sites, and to allow speedy supply of good seed to farmers.

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Researchers

Arvind Kumar (Co-Investigator)Hei Leung (Co-Investigator)Julian Hibberd (Principal Investigator)Kenneth McNally (Co-Investigator)Kshirod Jena (Co-Investigator)Negussie Zenna (Co-Investigator)William Quick (Co-Investigator)

Related Research

Grants with similar aims, by meaning.

Exploring Genetic Resource of Wild Rice Species for Neo-domestication
Genetic diversity, Resilience and Adaptation in Native Oryza
Developing Rice with Increased Resistance to Salinity and Drought
Using wild ancestor plants to make rice more resilient to increasingly unpredictable water availability
Genetic improvement of rice seed vigour for dry direct-seeded conditions

Original classification

Research Grant

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