Tryptophan-dependent auxin biosynthesis is required for HD-ZIP III-mediated xylem patterning

Author:

Ursache Robertas1,Miyashima Shunsuke1,Chen Qingguo2,Vatén Anne3,Nakajima Keiji4,Carlsbecker Annelie5,Zhao Yunde2,Helariutta Ykä1,Dettmer Jan6

Affiliation:

1. Institute of Biotechnology, Department of Bio and Environmental Sciences, University of Helsinki, FIN-00014, Finland.

2. Section of Cell and Developmental Biology, the University of California San Diego, La Jolla, CA 92093-0116, USA.

3. Department of Biology, Stanford University, Stanford, CA 94305-5020, USA.

4. Graduate School of Biological Sciences, Nara Institute of Science and Technology, 8916-5 Takayama, Ikoma, 630-0192 Nara, Japan.

5. Department of Organismal Biology, Physiological Botany, Uppsala University, and Linnean Center for Plant Biology, Ullsv. 24E, SE-756 51 Uppsala, Sweden.

6. Cell Biology Division, Department of Biology, University of Erlangen-Nuremberg, 91058 Erlangen, Germany.

Abstract

The development and growth of higher plants is highly dependent on the conduction of water and minerals throughout the plant by xylem vessels. In Arabidopsis roots the xylem is organized as an axis of cell files with two distinct cell fates: the central metaxylem and the peripheral protoxylem. During vascular development, high and low expression levels of the class III HD-ZIP transcription factors promote metaxylem and protoxylem identities, respectively. Protoxylem specification is determined by both mobile, ground tissue-emanating miRNA165/6 species, which downregulate, and auxin concentrated by polar transport, which promotes HD-ZIP III expression. However, the factors promoting high HD-ZIP III expression for metaxylem identity have remained elusive. We show here that auxin biosynthesis promotes HD-ZIP III expression and metaxylem specification. Several auxin biosynthesis genes are expressed in the outer layers surrounding the vascular tissue in Arabidopsis root and downregulation of HD-ZIP III expression accompanied by specific defects in metaxylem development is seen in auxin biosynthesis mutants, such as trp2-12, wei8 tar2 or a quintuple yucca mutant, and in plants treated with L-kynurenine, a pharmacological inhibitor of auxin biosynthesis. Some of the patterning defects can be suppressed by synthetically elevated HD-ZIP III expression. Taken together, our results indicate that polar auxin transport, which was earlier shown to be required for protoxylem formation, is not sufficient to establish a proper xylem axis but that root-based auxin biosynthesis is additionally required.

Publisher

The Company of Biologists

Subject

Developmental Biology,Molecular Biology

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