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Plant embryogenesis requires AUX/LAX-mediated auxin influx

  • The plant hormone auxin and its directional transport are known to play a crucial role in defining the embryonic axis and subsequent development of the body plan. Although the role of PIN auxin efflux transporters has been clearly assigned during embryonic shoot and root specification, the role of the auxin influx carriers AUX1 and LIKE-AUX1 (LAX) proteins is not well established. Here, we used chemical and genetic tools on Brassica napus microspore-derived embryos and Arabidopsis thaliana zygotic embryos, and demonstrate that AUX1, LAX1 and LAX2 are required for both shoot and root pole formation, in concert with PIN efflux carriers. Furthermore, we uncovered a positive-feedback loop between MONOPTEROS-(ARF5)dependent auxin signalling and auxin transport. This MONOPTEROS dependent transcriptional regulation of auxin influx (AUX1, LAX1 and LAX2) and auxin efflux (PIN1 and PIN4) carriers by MONOPTEROS helps to maintain proper auxin transport to the root tip. These results indicate that auxin-dependent cell specification during embryoThe plant hormone auxin and its directional transport are known to play a crucial role in defining the embryonic axis and subsequent development of the body plan. Although the role of PIN auxin efflux transporters has been clearly assigned during embryonic shoot and root specification, the role of the auxin influx carriers AUX1 and LIKE-AUX1 (LAX) proteins is not well established. Here, we used chemical and genetic tools on Brassica napus microspore-derived embryos and Arabidopsis thaliana zygotic embryos, and demonstrate that AUX1, LAX1 and LAX2 are required for both shoot and root pole formation, in concert with PIN efflux carriers. Furthermore, we uncovered a positive-feedback loop between MONOPTEROS-(ARF5)dependent auxin signalling and auxin transport. This MONOPTEROS dependent transcriptional regulation of auxin influx (AUX1, LAX1 and LAX2) and auxin efflux (PIN1 and PIN4) carriers by MONOPTEROS helps to maintain proper auxin transport to the root tip. These results indicate that auxin-dependent cell specification during embryo development requires balanced auxin transport involving both influx and efflux mechanisms, and that this transport is maintained by a positive transcriptional feedback on auxin signalling.show moreshow less

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Author details:Helene S. Robert, Wim Grunewald, Michael SauerORCiD, Bernard Cannoot, Mercedes Soriano, Ranjan Swarup, Dolf Weijers, Malcolm Bennett, Kim Boutilier, Jiri Friml
DOI:https://doi.org/10.1242/dev.115832
ISSN:0950-1991
ISSN:1477-9129
Pubmed ID:https://pubmed.ncbi.nlm.nih.gov/25617434
Title of parent work (English):Development : Company of Biologists
Publisher:Company of Biologists Limited
Place of publishing:Cambridge
Publication type:Article
Language:English
Year of first publication:2015
Publication year:2015
Release date:2017/03/27
Tag:AUX1; Arabidopsis thaliana embryogenesis; Auxin transport; Brassica napus; LIKE-AUX1 (LAX); MONOPTEROS (ARF5); Microspore; PIN
Volume:142
Issue:4
Number of pages:10
First page:702
Last Page:711
Funding institution:Employment of Best Young Scientists for International Cooperation Empowerment [CZ.1.07/2.3.00/30.0037]; European Social Fund; state budget of the Czech Republic; Ramon y Cajal program; European Research Council [CZ.1.07/2.3.00/20.0043]; Czech Science Foundation GACR [GA13-40637S]; Biological and Biotechnological Science Research Council (BBSRC); Engineering Physics Science Research Council (EPSRC)
Organizational units:Mathematisch-Naturwissenschaftliche Fakultät / Institut für Biochemie und Biologie
Peer review:Referiert
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