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Seven Things We Think We Know about Auxin Transport 被引量:31

Seven Things We Think We Know about Auxin Transport
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摘要 Polar transport of the phytohormone auxin and the establishment of localized auxin maxima regulate em- bryonic development, stem cell maintenance, root and shoot architecture, and tropic growth responses. The past decade has been marked by dramatic progress in efforts to elucidate the complex mechanisms by which auxin transport regulates plant growth. As the understanding of auxin transport regulation has been increasingly elaborated, it has become clear that this process is involved in almost all plant growth and environmental responses in some way. However, we still lack information about some basic aspects of this fundamental regulatory mechanism. In this review, we present what we know (or what we think we know) and what we do not know about seven auxin-regulated processes. We discuss the role of auxin transport in gravitropism in primary and lateral roots, phototropism, shoot branching, leaf expansion, and venation. We also discuss the auxin reflux/fountain model at the root tip, flavonoid modulation of auxin transport processes, and outstanding aspects of post-translational regulation of auxin transporters. This discussion is not meant to be exhaustive, but highlights areas in which generally held assumptions require more substantive validation. Polar transport of the phytohormone auxin and the establishment of localized auxin maxima regulate em- bryonic development, stem cell maintenance, root and shoot architecture, and tropic growth responses. The past decade has been marked by dramatic progress in efforts to elucidate the complex mechanisms by which auxin transport regulates plant growth. As the understanding of auxin transport regulation has been increasingly elaborated, it has become clear that this process is involved in almost all plant growth and environmental responses in some way. However, we still lack information about some basic aspects of this fundamental regulatory mechanism. In this review, we present what we know (or what we think we know) and what we do not know about seven auxin-regulated processes. We discuss the role of auxin transport in gravitropism in primary and lateral roots, phototropism, shoot branching, leaf expansion, and venation. We also discuss the auxin reflux/fountain model at the root tip, flavonoid modulation of auxin transport processes, and outstanding aspects of post-translational regulation of auxin transporters. This discussion is not meant to be exhaustive, but highlights areas in which generally held assumptions require more substantive validation.
出处 《Molecular Plant》 SCIE CAS CSCD 2011年第3期487-504,共18页 分子植物(英文版)
基金 This work was funded by the National Science Foundation,A.S.M.and Purdue Agriculture Research Foundation grant to W.A.P
关键词 Auxin transport ABCB AUX1 PIN PHOTOTROPISM GRAVITROPISM fountain model shoot branching leaf expansion VENATION flavonoids. Auxin transport ABCB AUX1 PIN phototropism gravitropism fountain model shoot branching leaf expansion venation flavonoids.
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  • 1Tamas IA,Schlossberg-Jacobs J,Lim R,Friedman L,Barone C (1989) Effect of plant growth substances on the growth of axillary buds in cultured stem segments of Phaseolus vulgaris.J.Plant Growth Regul.8,165-183.
  • 2Tan BC,Joseph LM,Deng WT,Liu L,Li QB,Cline K,McCarty DR (2003) Molecular characterization of the Arabidopsis 9-cis epoxycarotenoid dioxygenase gene family.Plant J.35,44-56.
  • 3Tanaka M,Takei K,Kojima M,Sakakibara H,Mori H (2006) Auxin controls local cytokinin biosynthesis in the nodal stem in apical dominance.Plant J.45,1028-1036.
  • 4Turnbull CGN,Myriam AA,Raymond ICD,Morris DSE (1997) Rapid increases in cytokinin concentration in lateral buds of chickpea (Cicer arietinum L.) during release of apical dominance.Planta 202,271-276.
  • 5Umehara M,Hanada A,Yoshida S,Akiyama K,Arite T,Takeda-Kamiya N,Magome H,Kamiya Y,Shirasu K,Yoneyama K,Kyozuka J,Yamaguchi S (2008) Inhibition of shoot branching by new terpenoid plant hormones.Nature 455,195-200.
  • 6Wang Z,Chen C,Xu Y,Jiang R,Hah Y,Xu Z,Chong K (2004) A practical vector for efficient knockdown of gene expression in rice (Oryza sativa L.).Plant Mol.Biol.Rep.22,409-417.
  • 7Zou J,Chen Z,Zhang S,Zhang W,Jiang G,Zhao X,Zhai W,Pan X,Zhu L (2005) Characterizations and fine mapping of a mutant gene for high tillering and dwarf in rice (Oryza sativa L.).Planta 222,604-612.
  • 8Zou J,Zhang S,Zhang W,Li G,Chen Z,Zhai W,Zhao X,Pan X,Xie Q,Zhu L (2006) The rice HIGH-TILLERING DWARF1 encoding an ortholog of Arabidopsis MAX3 is required for negative regulation of the outgrowth of axillary buds.Plant J.48,687-698.
  • 9Arite T,Iwata H,Ohshima K,Maekawa M,Nakajima M,Kojima M,Sakakibara H,Kyozuka J (2007) DWARF10,an RMS1/MAX4/DAD1 ortholog,controls lateral bud outgrowth in rice.Plant J.51,1019-1029.
  • 10Auldridge ME,McCarty DR,Klee HJ (2006) Plant carotenoid cleavage oxygenases and their apocarotenoid products.Curr.Opin.Plant Biol.9,315-321.

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