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Forward genetic screen for auxin-deficient mutants by cytokinin
L. Wu, P. Luo, DW. Di, L. Wang, M. Wang, CK. Lu, SD. Wei, L. Zhang, TZ. Zhang, P. Amakorová, M. Strnad, O. Novák, GQ. Guo,
Language English Country England, Great Britain
Document type Journal Article, Research Support, Non-U.S. Gov't
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PubMed
26143750
DOI
10.1038/srep11923
Knihovny.cz E-resources
- MeSH
- Arabidopsis enzymology genetics MeSH
- Biological Transport drug effects MeSH
- Cytokinins metabolism MeSH
- Phenotype MeSH
- Plant Roots enzymology genetics growth & development MeSH
- Indoleacetic Acids metabolism pharmacology MeSH
- Mutation MeSH
- Arabidopsis Proteins genetics metabolism MeSH
- Plant Growth Regulators biosynthesis MeSH
- Seedlings drug effects growth & development metabolism MeSH
- Signal Transduction drug effects MeSH
- Tryptophan Transaminase genetics metabolism MeSH
- Publication type
- Journal Article MeSH
- Research Support, Non-U.S. Gov't MeSH
Identification of mutants with impairments in auxin biosynthesis and dynamics by forward genetic screening is hindered by the complexity, redundancy and necessity of the pathways involved. Furthermore, although a few auxin-deficient mutants have been recently identified by screening for altered responses to shade, ethylene, N-1-naphthylphthalamic acid (NPA) or cytokinin (CK), there is still a lack of robust markers for systematically isolating such mutants. We hypothesized that a potentially suitable phenotypic marker is root curling induced by CK, as observed in the auxin biosynthesis mutant CK-induced root curling 1 / tryptophan aminotransferase of Arabidopsis 1 (ckrc1/taa1). Phenotypic observations, genetic analyses and biochemical complementation tests of Arabidopsis seedlings displaying the trait in large-scale genetic screens showed that it can facilitate isolation of mutants with perturbations in auxin biosynthesis, transport and signaling. However, unlike transport/signaling mutants, the curled (or wavy) root phenotypes of auxin-deficient mutants were significantly induced by CKs and could be rescued by exogenous auxins. Mutants allelic to several known auxin biosynthesis mutants were re-isolated, but several new classes of auxin-deficient mutants were also isolated. The findings show that CK-induced root curling provides an effective marker for discovering genes involved in auxin biosynthesis or homeostasis.
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