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Development of a novel recessive genetic male sterility system for hybrid seed production in maize and other cross‐pollinating crops

We have developed a novel hybridization platform that utilizes nuclear male sterility to produce hybrids in maize and other cross‐pollinating crops. A key component of this platform is a process termed Seed Production Technology (SPT). This process incorporates a transgenic SPT maintainer line capab...

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Autores principales: Wu, Yongzhong, Fox, Tim W., Trimnell, Mary R., Wang, Lijuan, Xu, Rui‐ji, Cigan, A. Mark, Huffman, Gary A., Garnaat, Carl W., Hershey, Howard, Albertsen, Marc C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5057354/
https://www.ncbi.nlm.nih.gov/pubmed/26442654
http://dx.doi.org/10.1111/pbi.12477
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author Wu, Yongzhong
Fox, Tim W.
Trimnell, Mary R.
Wang, Lijuan
Xu, Rui‐ji
Cigan, A. Mark
Huffman, Gary A.
Garnaat, Carl W.
Hershey, Howard
Albertsen, Marc C.
author_facet Wu, Yongzhong
Fox, Tim W.
Trimnell, Mary R.
Wang, Lijuan
Xu, Rui‐ji
Cigan, A. Mark
Huffman, Gary A.
Garnaat, Carl W.
Hershey, Howard
Albertsen, Marc C.
author_sort Wu, Yongzhong
collection PubMed
description We have developed a novel hybridization platform that utilizes nuclear male sterility to produce hybrids in maize and other cross‐pollinating crops. A key component of this platform is a process termed Seed Production Technology (SPT). This process incorporates a transgenic SPT maintainer line capable of propagating nontransgenic nuclear male‐sterile lines for use as female parents in hybrid production. The maize SPT maintainer line is a homozygous recessive male sterile transformed with a SPT construct containing (i) a complementary wild‐type male fertility gene to restore fertility, (ii) an α‐amylase gene to disrupt pollination and (iii) a seed colour marker gene. The sporophytic wild‐type allele complements the recessive mutation, enabling the development of pollen grains, all of which carry the recessive allele but with only half carrying the SPT transgenes. Pollen grains with the SPT transgenes exhibit starch depletion resulting from expression of α‐amylase and are unable to germinate. Pollen grains that do not carry the SPT transgenes are nontransgenic and are able to fertilize homozygous mutant plants, resulting in nontransgenic male‐sterile progeny for use as female parents. Because transgenic SPT maintainer seeds express a red fluorescent protein, they can be detected and efficiently separated from seeds that do not contain the SPT transgenes by mechanical colour sorting. The SPT process has the potential to replace current approaches to pollen control in commercial maize hybrid seed production. It also has important applications for other cross‐pollinating crops where it can unlock the potential for greater hybrid productivity through expanding the parental germplasm pool.
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spelling pubmed-50573542016-10-19 Development of a novel recessive genetic male sterility system for hybrid seed production in maize and other cross‐pollinating crops Wu, Yongzhong Fox, Tim W. Trimnell, Mary R. Wang, Lijuan Xu, Rui‐ji Cigan, A. Mark Huffman, Gary A. Garnaat, Carl W. Hershey, Howard Albertsen, Marc C. Plant Biotechnol J Research Articles We have developed a novel hybridization platform that utilizes nuclear male sterility to produce hybrids in maize and other cross‐pollinating crops. A key component of this platform is a process termed Seed Production Technology (SPT). This process incorporates a transgenic SPT maintainer line capable of propagating nontransgenic nuclear male‐sterile lines for use as female parents in hybrid production. The maize SPT maintainer line is a homozygous recessive male sterile transformed with a SPT construct containing (i) a complementary wild‐type male fertility gene to restore fertility, (ii) an α‐amylase gene to disrupt pollination and (iii) a seed colour marker gene. The sporophytic wild‐type allele complements the recessive mutation, enabling the development of pollen grains, all of which carry the recessive allele but with only half carrying the SPT transgenes. Pollen grains with the SPT transgenes exhibit starch depletion resulting from expression of α‐amylase and are unable to germinate. Pollen grains that do not carry the SPT transgenes are nontransgenic and are able to fertilize homozygous mutant plants, resulting in nontransgenic male‐sterile progeny for use as female parents. Because transgenic SPT maintainer seeds express a red fluorescent protein, they can be detected and efficiently separated from seeds that do not contain the SPT transgenes by mechanical colour sorting. The SPT process has the potential to replace current approaches to pollen control in commercial maize hybrid seed production. It also has important applications for other cross‐pollinating crops where it can unlock the potential for greater hybrid productivity through expanding the parental germplasm pool. John Wiley and Sons Inc. 2015-10-06 2016-03 /pmc/articles/PMC5057354/ /pubmed/26442654 http://dx.doi.org/10.1111/pbi.12477 Text en © 2015 The Authors. Plant Biotechnology Journal published by Society for Experimental Biology and The Association of Applied Biologists and John Wiley & Sons Ltd. This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Wu, Yongzhong
Fox, Tim W.
Trimnell, Mary R.
Wang, Lijuan
Xu, Rui‐ji
Cigan, A. Mark
Huffman, Gary A.
Garnaat, Carl W.
Hershey, Howard
Albertsen, Marc C.
Development of a novel recessive genetic male sterility system for hybrid seed production in maize and other cross‐pollinating crops
title Development of a novel recessive genetic male sterility system for hybrid seed production in maize and other cross‐pollinating crops
title_full Development of a novel recessive genetic male sterility system for hybrid seed production in maize and other cross‐pollinating crops
title_fullStr Development of a novel recessive genetic male sterility system for hybrid seed production in maize and other cross‐pollinating crops
title_full_unstemmed Development of a novel recessive genetic male sterility system for hybrid seed production in maize and other cross‐pollinating crops
title_short Development of a novel recessive genetic male sterility system for hybrid seed production in maize and other cross‐pollinating crops
title_sort development of a novel recessive genetic male sterility system for hybrid seed production in maize and other cross‐pollinating crops
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5057354/
https://www.ncbi.nlm.nih.gov/pubmed/26442654
http://dx.doi.org/10.1111/pbi.12477
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