The Genetic Basis of Composite Spike Form in Barley and ‘Miracle-Wheat’

Author:

Poursarebani Naser1,Seidensticker Tina1,Koppolu Ravi1,Trautewig Corinna1,Gawroński Piotr1,Bini Federica1,Govind Geetha1,Rutten Twan1,Sakuma Shun21,Tagiri Akemi2,Wolde Gizaw M1,Youssef Helmy M13,Battal Abdulhamit45,Ciannamea Stefano6,Fusca Tiziana6,Nussbaumer Thomas7,Pozzi Carlo61,Börner Andreas1,Lundqvist Udda8,Komatsuda Takao2,Salvi Silvio9,Tuberosa Roberto9,Uauy Cristobal4,Sreenivasulu Nese11,Rossini Laura610,Schnurbusch Thorsten1

Affiliation:

1. Leibniz Institute of Plant Genetics and Crop Plant Research, OT Gatersleben, D-06466 Stadt Seeland, Germany

2. National Institute of Agrobiological Sciences, Plant Genome Research Unit, Tsukuba 305 8602, Japan

3. Faculty of Agriculture, Cairo University, 12613 Giza, Egypt

4. John Innes Centre, Department of Crop Genetics, Colney, Norwich, NR4 7UH, United Kingdom

5. Biological Sciences, Middle East Technical University, Cankaya, 06800, Ankara, Turkey

6. Parco Tecnologico Padano, 26900 Lodi, Italy

7. Plant Genome and Systems Biology, Helmholtz Center Munich, D-85764, Neuherberg, Germany

8. Nordic Genetic Resource Center, SE-230 53 Alnarp, Sweden

9. Dipartimento di Scienze Agrarie, University of Bologna, 40127 Bologna, Italy

10. Università degli Studi di Milano, DiSAA, I-20133 Milan, Italy

Abstract

Abstract Inflorescences of the tribe Triticeae, which includes wheat (Triticum sp. L.) and barley (Hordeum vulgare L.) are characterized by sessile spikelets directly borne on the main axis, thus forming a branchless spike. ‘Compositum-Barley’ and tetraploid ‘Miracle-Wheat’ (T. turgidum convar. compositum (L.f.) Filat.) display noncanonical spike-branching in which spikelets are replaced by lateral branch-like structures resembling small-sized secondary spikes. As a result of this branch formation ‘Miracle-Wheat’ produces significantly more grains per spike, leading to higher spike yield. In this study, we first isolated the gene underlying spike-branching in ‘Compositum-Barley,’ i.e., compositum 2 (com2). Moreover, we found that COM2 is orthologous to the branched headt (bht) locus regulating spike branching in tetraploid ‘Miracle-Wheat.’ Both genes possess orthologs with similar functions in maize BRANCHED SILKLESS 1 (BD1) and rice FRIZZY PANICLE/BRANCHED FLORETLESS 1 (FZP/BFL1) encoding AP2/ERF transcription factors. Sequence analysis of the bht locus in a collection of mutant and wild-type tetraploid wheat accessions revealed that a single amino acid substitution in the DNA-binding domain gave rise to the domestication of ‘Miracle-Wheat.’ mRNA in situ hybridization, microarray experiments, and independent qRT-PCR validation analyses revealed that the branch repression pathway in barley is governed through the spike architecture gene Six-rowed spike 4 regulating COM2 expression, while HvIDS1 (barley ortholog of maize INDETERMINATE SPIKELET 1) is a putative downstream target of COM2. These findings presented here provide new insights into the genetic basis of spike architecture in Triticeae, and have disclosed new targets for genetic manipulations aiming at boosting wheat’s yield potential.

Publisher

Oxford University Press (OUP)

Subject

Genetics

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