Molecular breeding for improving waterlogging tolerance in wheat.
R. Esten Mason, Trenton Lee Roberts, Richard Elmer Boyles, Andrea Acuña, Maria Nelly Arguello, Diana Ballesteros, Nithya K. Subramanian
Abstract
R. Esten Mason, Trenton Lee Roberts, Richard Elmer Boyles, Andrea Acuña, Maria Nelly Arguello, Diana Ballesteros, Nithya K. Subramanian
Abstract
This chapter summarizes the current understanding of the response of wheat to waterlogging stress, the genetic control of uptake and transport of macro- and micronutrients, and the QTLs and genes associated with tolerance mechanisms. Potential targets for molecular breeding through marker-assisted selection and the potential for genomic selection are discussed in order to provide a better understanding of the biology and genes underlying soil waterlogging tolerance, as well as clarity and direction for breeders for future molecular breeding targets to expedite cultivar development.
A significance statement is not available in the OpenAlex record.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
This chapter summarizes the current understanding of the response of wheat to waterlogging stress, the genetic control of uptake and transport of macro- and micronutrients, and the QTLs and genes associated with tolerance mechanisms. Potential targets for molecular breeding through marker-assisted selection and the potential for genomic selection are discussed in order to provide a better understanding of the biology and genes underlying soil waterlogging tolerance, as well as clarity and direction for breeders for future molecular breeding targets to expedite cultivar development.
Key concepts: Waterlogging (archaeology), Biology, Selection (genetic algorithm), Marker-assisted selection, Molecular breeding, CLARITY, Cultivar, Biotechnology