Multilayered regulation of developmentally programmed pre-anthesis tip degeneration of the barley inflorescence

Author:

Shanmugaraj Nandhakumar1ORCID,Rajaraman Jeyaraman1ORCID,Kale Sandip1ORCID,Kamal Roop1ORCID,Huang Yongyu1ORCID,Thirulogachandar Venkatasubbu1ORCID,Garibay-Hernández Adriana1ORCID,Budhagatapalli Nagaveni1ORCID,Tandron Moya Yudelsy Antonia1ORCID,Hajirezaei Mohammed R1ORCID,Rutten Twan1ORCID,Hensel Götz1ORCID,Melzer Michael1ORCID,Kumlehn Jochen1ORCID,von Wirén Nicolaus1ORCID,Mock Hans-Peter1ORCID,Schnurbusch Thorsten12ORCID

Affiliation:

1. Leibniz Institute of Plant Genetics and Crop Plant Research (IPK) , Corrensstr. 3, OT Gatersleben, Seeland 06466, Germany

2. Faculty of Natural Sciences III, Martin Luther University Halle-Wittenberg, Institute of Agricultural and Nutritional Sciences , Halle 06120, Germany

Abstract

Abstract Leaf and floral tissue degeneration is a common feature in plants. In cereal crops such as barley (Hordeum vulgare L.), pre-anthesis tip degeneration (PTD) starts with growth arrest of the inflorescence meristem dome, which is followed basipetally by the degeneration of floral primordia and the central axis. Due to its quantitative nature and environmental sensitivity, inflorescence PTD constitutes a complex, multilayered trait affecting final grain number. This trait appears to be highly predictable and heritable under standardized growth conditions, consistent with a developmentally programmed mechanism. To elucidate the molecular underpinnings of inflorescence PTD, we combined metabolomic, transcriptomic, and genetic approaches to show that barley inflorescence PTD is accompanied by sugar depletion, amino acid degradation, and abscisic acid responses involving transcriptional regulators of senescence, defense, and light signaling. Based on transcriptome analyses, we identified GRASSY TILLERS1 (HvGT1), encoding an HD-ZIP transcription factor, as an important modulator of inflorescence PTD. A gene-edited knockout mutant of HvGT1 delayed PTD and increased differentiated apical spikelets and final spikelet number, suggesting a possible strategy to increase grain number in cereals. We propose a molecular framework that leads to barley PTD, the manipulation of which may increase yield potential in barley and other related cereals.

Funder

European Research Council

European Fund for Regional Development

State of Saxony-Anhalt

German Research Foundation

DFG

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science

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