Tomato miR156-targeted SlSBP15 represses shoot branching by modulating hormone dynamics and interacting with GOBLET and BRANCHED1b

Author:

Barrera-Rojas Carlos Hernán1ORCID,Vicente Mateus Henrique1ORCID,Pinheiro Brito Diego Armando1ORCID,Silva Eder M1ORCID,Lopez Aitor Muñoz2ORCID,Ferigolo Leticia F1,do Carmo Rafael Monteiro1ORCID,Silva Carolina M S1ORCID,Silva Geraldo F F1ORCID,Correa Joao P O1ORCID,Notini Marcela M1ORCID,Freschi Luciano3ORCID,Cubas Pilar2ORCID,Nogueira Fabio T S1ORCID

Affiliation:

1. Laboratory of Molecular Genetics of Plant Development, Escola Superior de Agricultura ‘Luiz de Queiroz’ (ESALQ), University of São Paulo (USP) , Piracicaba, São Paulo, CEP: 13418-900 , Brazil

2. Plant Molecular Genetics Department, Centro Nacional de Biotecnología-CSIC, Campus Universidad Autónoma de Madrid , Madrid , Spain

3. Biosciences Institute, University of Sao Paulo (USP) , Sao Paulo, CEP: 05508-090 , Brazil

Abstract

Abstract The miRNA156 (miR156)/SQUAMOSA PROMOTER-BINDING PROTEIN-LIKE (SPL/SBP) regulatory hub is highly conserved among phylogenetically distinct species, but how it interconnects multiple pathways to converge to common integrators controlling shoot architecture is still unclear. Here, we demonstrated that the miR156/SlSBP15 node modulates tomato shoot branching by connecting multiple phytohormones with classical genetic pathways regulating both axillary bud development and outgrowth. miR156-overexpressing plants (156-OE) displayed high shoot branching, whereas plants overexpressing a miR156-resistant SlSBP15 allele (rSBP15) showed arrested shoot branching. Importantly, the rSBP15 allele was able to partially restore the wild-type shoot branching phenotype in the 156-OE background. rSBP15 plants have tiny axillary buds, and their activation is dependent on shoot apex-derived auxin transport inhibition. Hormonal measurements revealed that indole-3-acetic acid (IAA) and abscisic acid (ABA) concentrations were lower in 156-OE and higher in rSBP15 axillary buds, respectively. Genetic and molecular data indicated that SlSBP15 regulates axillary bud development and outgrowth by inhibiting auxin transport and GOBLET (GOB) activity, and by interacting with tomato BRANCHED1b (SlBRC1b) to control ABA levels within axillary buds. Collectively, our data provide a new mechanism by which the miR156/SPL/SBP hub regulates shoot branching, and suggest that modulating SlSBP15 activity might have potential applications in shaping tomato shoot architecture.

Funder

São Paulo Research Foundation

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

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