Early Cone Setting in Picea abies acrocona Is Associated with Increased Transcriptional Activity of a MADS Box Transcription Factor

Author:

Uddenberg Daniel1,Reimegård Johan2,Clapham David1,Almqvist Curt3,von Arnold Sara1,Emanuelsson Olof2,Sundström Jens F.1

Affiliation:

1. Department of Plant Biology and Forest Genetics, Uppsala BioCenter, Swedish University of Agricultural Sciences and Linnean Center for Plant Biology, SE–750 07 Uppsala, Sweden (D.U., D.C., S.v.A., J.F.S.)

2. KTH-Royal Institute of Technology, Science for Life Laboratory, School of Biotechnology, Division of Gene Technology, SE–171 65 Solna, Sweden (J.R., O.E.)

3. Forestry Research Institute of Sweden, Uppsala Science Park, SE–751 83 Uppsala, Sweden (C.A.)

Abstract

Abstract Conifers normally go through a long juvenile period, for Norway spruce (Picea abies) around 20 to 25 years, before developing male and female cones. We have grown plants from inbred crosses of a naturally occurring spruce mutant (acrocona). One-fourth of the segregating acrocona plants initiate cones already in their second growth cycle, suggesting control by a single locus. The early cone-setting properties of the acrocona mutant were utilized to identify candidate genes involved in vegetative-to-reproductive phase change in Norway spruce. Poly(A+) RNA samples from apical and basal shoots of cone-setting and non-cone-setting plants were subjected to high-throughput sequencing (RNA-seq). We assembled and investigated 33,383 expressed putative protein-coding acrocona transcripts. Eight transcripts were differentially expressed between selected sample pairs. One of these (Acr42124_1) was significantly up-regulated in apical shoot samples from cone-setting acrocona plants, and the encoded protein belongs to the MADS box gene family of transcription factors. Using quantitative real-time polymerase chain reaction with independently derived plant material, we confirmed that the MADS box gene is up-regulated in both needles and buds of cone-inducing shoots when reproductive identity is determined. Our results constitute important steps for the development of a rapid cycling model system that can be used to study gene function in conifers. In addition, our data suggest the involvement of a MADS box transcription factor in the vegetative-to-reproductive phase change in Norway spruce.

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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