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Development and Cytomolecular Identification of Monosomic Alien Addition and Substitution Lines of Triticale (×Triticosecale Wittmack) With 2S(k) Chromosome Conferring Leaf Rust Resistance Derived From Aegilops kotschyi Boiss

Alien chromosome introgression has become a valuable tool to broaden the genetic variability of crop plants via chromosome engineering. This study details the procedure to obtain monosomic addition and monosomic substitution lines of the triticale carrying 2S(k) chromosome from Aegilops kotchyi Bois...

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Autores principales: Kwiatek, Michał T., Ulaszewski, Waldemar, Belter, Jolanta, Phillips, Dylan, Skowrońska, Roksana, Noweiska, Aleksandra, Wiśniewska, Halina
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7767841/
https://www.ncbi.nlm.nih.gov/pubmed/33381128
http://dx.doi.org/10.3389/fpls.2020.509481
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author Kwiatek, Michał T.
Ulaszewski, Waldemar
Belter, Jolanta
Phillips, Dylan
Skowrońska, Roksana
Noweiska, Aleksandra
Wiśniewska, Halina
author_facet Kwiatek, Michał T.
Ulaszewski, Waldemar
Belter, Jolanta
Phillips, Dylan
Skowrońska, Roksana
Noweiska, Aleksandra
Wiśniewska, Halina
author_sort Kwiatek, Michał T.
collection PubMed
description Alien chromosome introgression has become a valuable tool to broaden the genetic variability of crop plants via chromosome engineering. This study details the procedure to obtain monosomic addition and monosomic substitution lines of the triticale carrying 2S(k) chromosome from Aegilops kotchyi Boiss., which harbors Lr54 + Yr37 leaf and stripe rust-resistant gene loci, respectively. Initially, A. kotschyi × Secale cereale artificial amphiploids (2n = 6x = 42 chromosomes, UUSSRR) were crossed with triticale cv. “Sekundo” (2n = 6x = 42, AABBRR) in order to obtain fertile offspring. Cyto-molecular analyses of five subsequent backcrossing generations revealed that 2S(k) chromosome was preferentially transmitted. This allowed for the selection of monosomic 2S(k) addition (MA2S(k)) lines of triticale. Finally, the 2S(k)(2R) substitution plants were obtained by crossing MA2S(k) with the nullisomic (N2R) plants of triticale. The presence of 2S(k) chromosome in subsequent generations of plants was evaluated using SSR markers linked to Lr54 + Yr37 loci. Disease evaluation of the monosomic 2S(k)(2R) substitution plants for the reaction to leaf and stripe rust infection were carried out under controlled conditions in a growth chamber. The results showed significant improvement of leaf rust resistance severity of monosomic substitution plants compared with control (“Sekundo”). In contrast, the introgression of the Lr54 + Yr37 loci did not lead to improvement of stripe rust resistance. In summary, the creation of monosomic addition and monosomic substitution lines of triticale is the starting point for the precise and guided transfer of Lr54 + Yr37 loci. The results showed that the developed materials could be exploited for the development of triticale varieties with resistance to leaf rust.
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spelling pubmed-77678412020-12-29 Development and Cytomolecular Identification of Monosomic Alien Addition and Substitution Lines of Triticale (×Triticosecale Wittmack) With 2S(k) Chromosome Conferring Leaf Rust Resistance Derived From Aegilops kotschyi Boiss Kwiatek, Michał T. Ulaszewski, Waldemar Belter, Jolanta Phillips, Dylan Skowrońska, Roksana Noweiska, Aleksandra Wiśniewska, Halina Front Plant Sci Plant Science Alien chromosome introgression has become a valuable tool to broaden the genetic variability of crop plants via chromosome engineering. This study details the procedure to obtain monosomic addition and monosomic substitution lines of the triticale carrying 2S(k) chromosome from Aegilops kotchyi Boiss., which harbors Lr54 + Yr37 leaf and stripe rust-resistant gene loci, respectively. Initially, A. kotschyi × Secale cereale artificial amphiploids (2n = 6x = 42 chromosomes, UUSSRR) were crossed with triticale cv. “Sekundo” (2n = 6x = 42, AABBRR) in order to obtain fertile offspring. Cyto-molecular analyses of five subsequent backcrossing generations revealed that 2S(k) chromosome was preferentially transmitted. This allowed for the selection of monosomic 2S(k) addition (MA2S(k)) lines of triticale. Finally, the 2S(k)(2R) substitution plants were obtained by crossing MA2S(k) with the nullisomic (N2R) plants of triticale. The presence of 2S(k) chromosome in subsequent generations of plants was evaluated using SSR markers linked to Lr54 + Yr37 loci. Disease evaluation of the monosomic 2S(k)(2R) substitution plants for the reaction to leaf and stripe rust infection were carried out under controlled conditions in a growth chamber. The results showed significant improvement of leaf rust resistance severity of monosomic substitution plants compared with control (“Sekundo”). In contrast, the introgression of the Lr54 + Yr37 loci did not lead to improvement of stripe rust resistance. In summary, the creation of monosomic addition and monosomic substitution lines of triticale is the starting point for the precise and guided transfer of Lr54 + Yr37 loci. The results showed that the developed materials could be exploited for the development of triticale varieties with resistance to leaf rust. Frontiers Media S.A. 2020-12-14 /pmc/articles/PMC7767841/ /pubmed/33381128 http://dx.doi.org/10.3389/fpls.2020.509481 Text en Copyright © 2020 Kwiatek, Ulaszewski, Belter, Phillips, Skowrońska, Noweiska and Wiśniewska. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
Kwiatek, Michał T.
Ulaszewski, Waldemar
Belter, Jolanta
Phillips, Dylan
Skowrońska, Roksana
Noweiska, Aleksandra
Wiśniewska, Halina
Development and Cytomolecular Identification of Monosomic Alien Addition and Substitution Lines of Triticale (×Triticosecale Wittmack) With 2S(k) Chromosome Conferring Leaf Rust Resistance Derived From Aegilops kotschyi Boiss
title Development and Cytomolecular Identification of Monosomic Alien Addition and Substitution Lines of Triticale (×Triticosecale Wittmack) With 2S(k) Chromosome Conferring Leaf Rust Resistance Derived From Aegilops kotschyi Boiss
title_full Development and Cytomolecular Identification of Monosomic Alien Addition and Substitution Lines of Triticale (×Triticosecale Wittmack) With 2S(k) Chromosome Conferring Leaf Rust Resistance Derived From Aegilops kotschyi Boiss
title_fullStr Development and Cytomolecular Identification of Monosomic Alien Addition and Substitution Lines of Triticale (×Triticosecale Wittmack) With 2S(k) Chromosome Conferring Leaf Rust Resistance Derived From Aegilops kotschyi Boiss
title_full_unstemmed Development and Cytomolecular Identification of Monosomic Alien Addition and Substitution Lines of Triticale (×Triticosecale Wittmack) With 2S(k) Chromosome Conferring Leaf Rust Resistance Derived From Aegilops kotschyi Boiss
title_short Development and Cytomolecular Identification of Monosomic Alien Addition and Substitution Lines of Triticale (×Triticosecale Wittmack) With 2S(k) Chromosome Conferring Leaf Rust Resistance Derived From Aegilops kotschyi Boiss
title_sort development and cytomolecular identification of monosomic alien addition and substitution lines of triticale (×triticosecale wittmack) with 2s(k) chromosome conferring leaf rust resistance derived from aegilops kotschyi boiss
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7767841/
https://www.ncbi.nlm.nih.gov/pubmed/33381128
http://dx.doi.org/10.3389/fpls.2020.509481
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