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Research ArticleArticle
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Aspen SUCROSE TRANSPORTER3 Allocates Carbon into Wood Fibers

Amir Mahboubi, Christine Ratke, András Gorzsás, Manoj Kumar, Ewa J. Mellerowicz, Totte Niittylä
Amir Mahboubi
Umeå Plant Science Centre, Department of Forest Genetics and Plant Physiology, Swedish University of Agricultural Sciences, SE 90183 Umea, Sweden (A.M., C.R., M.K., E.J.M., T.N.); and
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Christine Ratke
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András Gorzsás
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Manoj Kumar
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Ewa J. Mellerowicz
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Totte Niittylä
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  • ORCID record for Totte Niittylä
  • For correspondence: totte.niittyla@slu.se

Published December 2013. DOI: https://doi.org/10.1104/pp.113.227603

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Abstract

Wood formation in trees requires carbon import from the photosynthetic tissues. In several tree species, including Populus species, the majority of this carbon is derived from sucrose (Suc) transported in the phloem. The mechanism of radial Suc transport from phloem to developing wood is not well understood. We investigated the role of active Suc transport during secondary cell wall formation in hybrid aspen (Populus tremula × Populus tremuloides). We show that RNA interference-mediated reduction of PttSUT3 (for Suc/H+ symporter) during secondary cell wall formation in developing wood caused thinner wood fiber walls accompanied by a reduction in cellulose and an increase in lignin. Suc content in the phloem and developing wood was not significantly changed. However, after 13CO2 assimilation, the SUT3RNAi lines contained more 13C than the wild type in the Suc-containing extract of developing wood. Hence, Suc was transported into developing wood, but the Suc-derived carbon was not efficiently incorporated to wood fiber walls. A yellow fluorescent protein:PttSUT3 fusion localized to plasma membrane, suggesting that reduced Suc import into developing wood fibers was the cause of the observed cell wall phenotype. The results show the importance of active Suc transport for wood formation in a symplasmically phloem-loading tree species and identify PttSUT3 as a principal transporter for carbon delivery into secondary cell wall-forming wood fibers.

  • Glossary

    qPCR
    quantitative reverse transcription-PCR
    FT-IR
    Fourier transform/infrared
    • Received August 27, 2013.
    • Accepted October 29, 2013.
    • Published October 29, 2013.
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    Aspen SUCROSE TRANSPORTER3 Allocates Carbon into Wood Fibers
    Amir Mahboubi, Christine Ratke, András Gorzsás, Manoj Kumar, Ewa J. Mellerowicz, Totte Niittylä
    Plant Physiology Dec 2013, 163 (4) 1729-1740; DOI: 10.1104/pp.113.227603

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    Aspen SUCROSE TRANSPORTER3 Allocates Carbon into Wood Fibers
    Amir Mahboubi, Christine Ratke, András Gorzsás, Manoj Kumar, Ewa J. Mellerowicz, Totte Niittylä
    Plant Physiology Dec 2013, 163 (4) 1729-1740; DOI: 10.1104/pp.113.227603
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    Plant Physiology: 163 (4)
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    Dec 2013
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