Javascript must be enabled to continue!
Breeding Maize Maternal Haploid Inducers
View through CrossRef
Maize doubled haploid (DH) lines are usually created in vivo, through crosses with maternal haploid inducers. These inducers have the inherent ability of generating seeds with haploid embryos when used to pollinate other genotypes. The resulting haploid plants are treated with a doubling agent and self-pollinated, producing completely homozygous seeds. This rapid method of inbred line production reduces the length of breeding cycles and, consequently, increases genetic gain. Such advantages explain the wide adoption of this technique by large, well-established maize breeding programs. However, a slower rate of adoption was observed in medium to small-scale breeding programs. The high price and/or lack of environmental adaptation of inducers available for licensing, or the poor performance of those free of cost, might explain why smaller operations did not take full advantage of this technique. The lack of adapted inducers is especially felt in tropical countries, where inducer breeding efforts are more recent. Therefore, defining optimal breeding approaches for inducer development could benefit many breeding programs which are in the process of adopting the DH technique. In this manuscript, we review traits important to maize maternal haploid inducers, explain their genetic basis, listing known genes and quantitative trait loci (QTL), and discuss different breeding approaches for inducer development. The performance of haploid inducers has an important impact on the cost of DH line production.
Title: Breeding Maize Maternal Haploid Inducers
Description:
Maize doubled haploid (DH) lines are usually created in vivo, through crosses with maternal haploid inducers.
These inducers have the inherent ability of generating seeds with haploid embryos when used to pollinate other genotypes.
The resulting haploid plants are treated with a doubling agent and self-pollinated, producing completely homozygous seeds.
This rapid method of inbred line production reduces the length of breeding cycles and, consequently, increases genetic gain.
Such advantages explain the wide adoption of this technique by large, well-established maize breeding programs.
However, a slower rate of adoption was observed in medium to small-scale breeding programs.
The high price and/or lack of environmental adaptation of inducers available for licensing, or the poor performance of those free of cost, might explain why smaller operations did not take full advantage of this technique.
The lack of adapted inducers is especially felt in tropical countries, where inducer breeding efforts are more recent.
Therefore, defining optimal breeding approaches for inducer development could benefit many breeding programs which are in the process of adopting the DH technique.
In this manuscript, we review traits important to maize maternal haploid inducers, explain their genetic basis, listing known genes and quantitative trait loci (QTL), and discuss different breeding approaches for inducer development.
The performance of haploid inducers has an important impact on the cost of DH line production.
Related Results
The Roads to Haploid Embryogenesis
The Roads to Haploid Embryogenesis
Although zygotic embryogenesis is usually studied in the field of seed biology, great attention has been paid to the methods used to generate haploid embryos due to their applicati...
Selection Gain of Maize Haploid Inducers for the Tropical Savanna Environments
Selection Gain of Maize Haploid Inducers for the Tropical Savanna Environments
Lacking elite haploid inducers performing high haploid induction rate (HIR) and agronomic performance is one of fundamental factors hindering the rapid adoption of doubled haploid ...
Transfer of chromosomes through haploid induction in maize (Zea mays)
Transfer of chromosomes through haploid induction in maize (Zea mays)
[ACCESS RESTRICTED TO THE UNIVERSITY OF MISSOURI AT AUTHOR'S REQUEST.] The B chromosome (B) of maize (Zea mays) is a supernumerary chromosome with no essential genes, no phenotypic...
KELAYAKAN USAHATANI JAGUNG HIBRIDA DI KABUPATEN MUNA PROVINSI SULAWESI TENGGARA
KELAYAKAN USAHATANI JAGUNG HIBRIDA DI KABUPATEN MUNA PROVINSI SULAWESI TENGGARA
<p>Feasibility Study of Hybrid Maize Farming in Muna District Southeast Sulawesi Province. Maize harvest area in 2015 in Muna District was 13,159 ha with the production by 32...
Intercropping of Cabbage with Maize
Intercropping of Cabbage with Maize
The experiment was carried out at the research field of Agricultural Research Station, Rajbari, Dinajpur (Latitude: 25.63544, Longitude: 88.65144) during rabi season of 2016-2017 a...
IN MEMORY OF LEONID VYSHNEVSKYI
IN MEMORY OF LEONID VYSHNEVSKYI
On May 21, 2019, at the age of 59, a well-known scientist and statesman, head of the department of animal genetic resources of the Institute of Animal Breeding and Animal Genetics ...
Push-pull cropping system soil legacy alter maize metabolism and fall armyworm, Spodoptera frugiperda (Lepidoptera: Noctuidae) resistance through tritrophic interactions”
Push-pull cropping system soil legacy alter maize metabolism and fall armyworm, Spodoptera frugiperda (Lepidoptera: Noctuidae) resistance through tritrophic interactions”
Abstract
Background and aims
Crop cultivation practices and soil legacies are intrinsically linked and are hypothesized to influence plant direct and indirect defence again...
Synergistic effects of maize defoliation and common bean relay cropping in Western Ethiopia
Synergistic effects of maize defoliation and common bean relay cropping in Western Ethiopia
Abstract
Background
Maize defoliation is practiced to enhance crop management by improving light penetration, nutrient al...

