Literature DB >> 33673225

Heteroalleles in Common Wheat: Multiple Differences between Allelic Variants of the Gli-B1 Locus.

Eugene Metakovsky1, Laura Pascual1, Patrizia Vaccino2, Viktor Melnik3, Marta Rodriguez-Quijano1, Yulia Popovych4, Sabina Chebotar4, William John Rogers5.   

Abstract

The Gli-B1-encoded γ-gliadins and non-coding γ-gliadin DNA sequences for 15 different alleles of common wheat have been compared using seven tests: electrophoretic mobility (EM) and molecular weight (MW) of the encoded major γ-gliadin, restriction fragment length polymorphism patterns (RFLPs) (three different markers), Gli-B1-γ-gliadin-pseudogene known SNP markers (Single nucleotide polymorphisms) and sequencing the pseudogene GAG56B. It was discovered that encoded γ-gliadins, with contrasting EM, had similar MWs. However, seven allelic variants (designated from I to VII) differed among them in the other six tests: I (alleles Gli-B1i, k, m, o), II (Gli-B1n, q, s), III (Gli-B1b), IV (Gli-B1e, f, g), V (Gli-B1h), VI (Gli-B1d) and VII (Gli-B1a). Allele Gli-B1c (variant VIII) was identical to the alleles from group IV in four of the tests. Some tests might show a fine difference between alleles belonging to the same variant. Our results attest in favor of the independent origin of at least seven variants at the Gli-B1 locus that might originate from deeply diverged genotypes of the donor(s) of the B genome in hexaploid wheat and therefore might be called "heteroallelic". The donor's particularities at the Gli-B1 locus might be conserved since that time and decisively contribute to the current high genetic diversity of common wheat.

Entities:  

Keywords:  APAGE; DNA sequencing; Gli-B1; PCR; Triticum aestivum; γ-gliadin polymorphism

Mesh:

Substances:

Year:  2021        PMID: 33673225      PMCID: PMC7917834          DOI: 10.3390/ijms22041832

Source DB:  PubMed          Journal:  Int J Mol Sci        ISSN: 1422-0067            Impact factor:   5.923


  33 in total

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2.  Impact of plant breeding on genetic diversity of the Canadian hard red spring wheat germplasm as revealed by EST-derived SSR markers.

Authors:  Yong-Bi Fu; Gregory W Peterson; Ju-Kyung Yu; Lifeng Gao; Jizeng Jia; Ken W Richards
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3.  The gene space in wheat: the complete γ-gliadin gene family from the wheat cultivar Chinese Spring.

Authors:  Olin D Anderson; Naxin Huo; Yong Q Gu
Journal:  Funct Integr Genomics       Date:  2013-04-07       Impact factor: 3.410

4.  Distribution of Nonstructural Variation between Wheat Cultivars along Chromosome Arm 6Bp: Evidence from the Linkage Map and Physical Map of the Arm.

Authors:  J Dvorák; K C Chen
Journal:  Genetics       Date:  1984-02       Impact factor: 4.562

5.  Identification of SNPs and development of allele-specific PCR markers for gamma-gliadin alleles in Triticum aestivum.

Authors:  W Zhang; M C Gianibelli; W Ma; L Rampling; K R Gale
Journal:  Theor Appl Genet       Date:  2003-04-24       Impact factor: 5.699

6.  Dynamics and differential proliferation of transposable elements during the evolution of the B and A genomes of wheat.

Authors:  Mathieu Charles; Harry Belcram; Jérémy Just; Cécile Huneau; Agnès Viollet; Arnaud Couloux; Béatrice Segurens; Meredith Carter; Virginie Huteau; Olivier Coriton; Rudi Appels; Sylvie Samain; Boulos Chalhoub
Journal:  Genetics       Date:  2008-09-09       Impact factor: 4.562

Review 7.  Biochemical and functional properties of wheat gliadins: a review.

Authors:  Sheweta Barak; Deepak Mudgil; B S Khatkar
Journal:  Crit Rev Food Sci Nutr       Date:  2015       Impact factor: 11.176

8.  Alpha-gliadin genes from the A, B, and D genomes of wheat contain different sets of celiac disease epitopes.

Authors:  Teun W J M van Herpen; Svetlana V Goryunova; Johanna van der Schoot; Makedonka Mitreva; Elma Salentijn; Oscar Vorst; Martijn F Schenk; Peter A van Veelen; Frits Koning; Loek J M van Soest; Ben Vosman; Dirk Bosch; Rob J Hamer; Luud J W J Gilissen; Marinus J M Smulders
Journal:  BMC Genomics       Date:  2006-01-10       Impact factor: 3.969

9.  Multiple wheat genomes reveal global variation in modern breeding.

Authors:  Sean Walkowiak; Liangliang Gao; Cecile Monat; Georg Haberer; Mulualem T Kassa; Jemima Brinton; Ricardo H Ramirez-Gonzalez; Markus C Kolodziej; Emily Delorean; Dinushika Thambugala; Valentyna Klymiuk; Brook Byrns; Heidrun Gundlach; Venkat Bandi; Jorge Nunez Siri; Kirby Nilsen; Catharine Aquino; Axel Himmelbach; Dario Copetti; Tomohiro Ban; Luca Venturini; Michael Bevan; Bernardo Clavijo; Dal-Hoe Koo; Jennifer Ens; Krystalee Wiebe; Amidou N'Diaye; Allen K Fritz; Carl Gutwin; Anne Fiebig; Christine Fosker; Bin Xiao Fu; Gonzalo Garcia Accinelli; Keith A Gardner; Nick Fradgley; Juan Gutierrez-Gonzalez; Gwyneth Halstead-Nussloch; Masaomi Hatakeyama; Chu Shin Koh; Jasline Deek; Alejandro C Costamagna; Pierre Fobert; Darren Heavens; Hiroyuki Kanamori; Kanako Kawaura; Fuminori Kobayashi; Ksenia Krasileva; Tony Kuo; Neil McKenzie; Kazuki Murata; Yusuke Nabeka; Timothy Paape; Sudharsan Padmarasu; Lawrence Percival-Alwyn; Sateesh Kagale; Uwe Scholz; Jun Sese; Philomin Juliana; Ravi Singh; Rie Shimizu-Inatsugi; David Swarbreck; James Cockram; Hikmet Budak; Toshiaki Tameshige; Tsuyoshi Tanaka; Hiroyuki Tsuji; Jonathan Wright; Jianzhong Wu; Burkhard Steuernagel; Ian Small; Sylvie Cloutier; Gabriel Keeble-Gagnère; Gary Muehlbauer; Josquin Tibbets; Shuhei Nasuda; Joanna Melonek; Pierre J Hucl; Andrew G Sharpe; Matthew Clark; Erik Legg; Arvind Bharti; Peter Langridge; Anthony Hall; Cristobal Uauy; Martin Mascher; Simon G Krattinger; Hirokazu Handa; Kentaro K Shimizu; Assaf Distelfeld; Ken Chalmers; Beat Keller; Klaus F X Mayer; Jesse Poland; Nils Stein; Curt A McCartney; Manuel Spannagl; Thomas Wicker; Curtis J Pozniak
Journal:  Nature       Date:  2020-11-25       Impact factor: 49.962

10.  A new class of wheat gliadin genes and proteins.

Authors:  Olin D Anderson; Lingli Dong; Naxin Huo; Yong Q Gu
Journal:  PLoS One       Date:  2012-12-20       Impact factor: 3.240

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