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Improving the Efficiency of Colchicine-Based Chromosomal Doubling of Maize Haploids

Production and use of doubled haploids (DH) is becoming an essential part of maize breeding programs worldwide as DH lines offer several advantages in line development and evaluation. One of the critical steps in maize DH line production is doubling the chromosomes of in vivo-derived haploids so tha...

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Autores principales: Chaikam, Vijay, Gowda, Manje, Martinez, Leocadio, Ochieng, John, Omar, Hamilton Amoshe, Prasanna, B.M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7238423/
https://www.ncbi.nlm.nih.gov/pubmed/32260557
http://dx.doi.org/10.3390/plants9040459
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author Chaikam, Vijay
Gowda, Manje
Martinez, Leocadio
Ochieng, John
Omar, Hamilton Amoshe
Prasanna, B.M.
author_facet Chaikam, Vijay
Gowda, Manje
Martinez, Leocadio
Ochieng, John
Omar, Hamilton Amoshe
Prasanna, B.M.
author_sort Chaikam, Vijay
collection PubMed
description Production and use of doubled haploids (DH) is becoming an essential part of maize breeding programs worldwide as DH lines offer several advantages in line development and evaluation. One of the critical steps in maize DH line production is doubling the chromosomes of in vivo-derived haploids so that naturally sterile haploids become reproductively fertile diploids (DH) to produce seed. This step of artificially doubling the chromosomes is labor-intensive and costly; hence, optimizing protocols to improve the doubling success is critical for achieving efficiencies in the DH production pipelines. Immersion of 3–4-day old germinating haploid seedlings in colchicine solution is commonly used for chromosome doubling in large-scale maize DH line production. This manuscript presents a new method of colchicine application to haploid seedlings that showed superior doubling rates compared to other methods like standard seedling immersion, seed immersion, root immersion, and direct application of colchicine solution to the seedlings at V2 stage in the greenhouse trays. The new method involves immersing the crown region of the haploid seedlings along with all the seedling roots at V2 stage in the colchicine solution. Further experiments to optimize this method indicated that increasing colchicine concentration had a very positive effect on overall success rate in chromosomal doubling, while not drastically affecting survival rate. The optimized method showed on average 5.6 times higher overall success rate (OSR) compared to the standard haploid seedling immersion method which was the second-best method in our experiments. This improved method of colchicine application saves resources by reducing the number of haploids to be generated and handled in a maize DH production pipeline.
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spelling pubmed-72384232020-06-02 Improving the Efficiency of Colchicine-Based Chromosomal Doubling of Maize Haploids Chaikam, Vijay Gowda, Manje Martinez, Leocadio Ochieng, John Omar, Hamilton Amoshe Prasanna, B.M. Plants (Basel) Article Production and use of doubled haploids (DH) is becoming an essential part of maize breeding programs worldwide as DH lines offer several advantages in line development and evaluation. One of the critical steps in maize DH line production is doubling the chromosomes of in vivo-derived haploids so that naturally sterile haploids become reproductively fertile diploids (DH) to produce seed. This step of artificially doubling the chromosomes is labor-intensive and costly; hence, optimizing protocols to improve the doubling success is critical for achieving efficiencies in the DH production pipelines. Immersion of 3–4-day old germinating haploid seedlings in colchicine solution is commonly used for chromosome doubling in large-scale maize DH line production. This manuscript presents a new method of colchicine application to haploid seedlings that showed superior doubling rates compared to other methods like standard seedling immersion, seed immersion, root immersion, and direct application of colchicine solution to the seedlings at V2 stage in the greenhouse trays. The new method involves immersing the crown region of the haploid seedlings along with all the seedling roots at V2 stage in the colchicine solution. Further experiments to optimize this method indicated that increasing colchicine concentration had a very positive effect on overall success rate in chromosomal doubling, while not drastically affecting survival rate. The optimized method showed on average 5.6 times higher overall success rate (OSR) compared to the standard haploid seedling immersion method which was the second-best method in our experiments. This improved method of colchicine application saves resources by reducing the number of haploids to be generated and handled in a maize DH production pipeline. MDPI 2020-04-05 /pmc/articles/PMC7238423/ /pubmed/32260557 http://dx.doi.org/10.3390/plants9040459 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Chaikam, Vijay
Gowda, Manje
Martinez, Leocadio
Ochieng, John
Omar, Hamilton Amoshe
Prasanna, B.M.
Improving the Efficiency of Colchicine-Based Chromosomal Doubling of Maize Haploids
title Improving the Efficiency of Colchicine-Based Chromosomal Doubling of Maize Haploids
title_full Improving the Efficiency of Colchicine-Based Chromosomal Doubling of Maize Haploids
title_fullStr Improving the Efficiency of Colchicine-Based Chromosomal Doubling of Maize Haploids
title_full_unstemmed Improving the Efficiency of Colchicine-Based Chromosomal Doubling of Maize Haploids
title_short Improving the Efficiency of Colchicine-Based Chromosomal Doubling of Maize Haploids
title_sort improving the efficiency of colchicine-based chromosomal doubling of maize haploids
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7238423/
https://www.ncbi.nlm.nih.gov/pubmed/32260557
http://dx.doi.org/10.3390/plants9040459
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