SCARFACE encodes an ARF-GAP that is required for normal auxin efflux and vein patterning in Arabidopsis

被引:121
作者
Sieburth, Leslie E. [1 ]
Muday, Gloria K.
King, Edward J.
Benton, Geoff
Kim, Sun
Metcalf, Kasee E.
Meyers, Lindsay
Seamen, Emylie
Van Norman, Jaimie M.
机构
[1] Univ Utah, Dept Biol, Salt Lake City, UT 84112 USA
[2] Wake Forest Univ, Dept Biol, Winston Salem, NC 27109 USA
关键词
D O I
10.1105/tpc.105.039008
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
To identify molecular mechanisms controlling vein patterns, we analyzed scarface (sfc) mutants. sfc cotyledon and leaf veins are largely fragmented, unlike the interconnected networks in wild-type plants. SFC encodes an ADP ribosylation factor GTPase activating protein (ARF-GAP), a class with well-established roles in vesicle trafficking regulation. Quadruple mutants of SCF and three homologs (ARF-GAP DOMAIN1, 2, and 4) showed a modestly enhanced vascular phenotype. Genetic interactions between sfc and pinoid and between sfc and gnom suggest a possible function for SFC in trafficking of auxin efflux regulators. Genetic analyses also revealed interaction with cotyledon vascular pattern2, suggesting that lipid-based signals may underlie some SFC ARF-GAP functions. To assess possible roles for SFC in auxin transport, we analyzed sfc roots, which showed exaggerated responses to exogenous auxin and higher auxin transport capacity. To determine whether PIN1 intracellular trafficking was affected, we analyzed PIN1: green fluorescent protein (GFP) dynamics using confocal microscopy in sfc roots. We found normal PIN1: GFP localization at the apical membrane of root cells, but treatment with brefeldin A resulted in PIN1 accumulating in smaller and more numerous compartments than in the wild type. These data suggest that SFC is required for normal intracellular transport of PIN1 from the plasma membrane to the endosome.
引用
收藏
页码:1396 / 1411
页数:16
相关论文
共 66 条
[1]  
Aloni R, 2004, PLANT HORMONES: BIOSYNTHESIS, SIGNAL TRANSDUCTION, ACTION, P471
[2]   Gradual shifts in sites of free-auxin production during leaf-primordium development and their role in vascular differentiation and leaf morphogenesis in Arabidopsis [J].
Aloni, R ;
Schwalm, K ;
Langhans, M ;
Ullrich, CI .
PLANTA, 2003, 216 (05) :841-853
[3]   Foliar and axial aspects of vascular differentiation: Hypotheses and evidence [J].
Aloni, R .
JOURNAL OF PLANT GROWTH REGULATION, 2001, 20 (01) :22-34
[4]   Genome-wide Insertional mutagenesis of Arabidopsis thaliana [J].
Alonso, JM ;
Stepanova, AN ;
Leisse, TJ ;
Kim, CJ ;
Chen, HM ;
Shinn, P ;
Stevenson, DK ;
Zimmerman, J ;
Barajas, P ;
Cheuk, R ;
Gadrinab, C ;
Heller, C ;
Jeske, A ;
Koesema, E ;
Meyers, CC ;
Parker, H ;
Prednis, L ;
Ansari, Y ;
Choy, N ;
Deen, H ;
Geralt, M ;
Hazari, N ;
Hom, E ;
Karnes, M ;
Mulholland, C ;
Ndubaku, R ;
Schmidt, I ;
Guzman, P ;
Aguilar-Henonin, L ;
Schmid, M ;
Weigel, D ;
Carter, DE ;
Marchand, T ;
Risseeuw, E ;
Brogden, D ;
Zeko, A ;
Crosby, WL ;
Berry, CC ;
Ecker, JR .
SCIENCE, 2003, 301 (5633) :653-657
[5]  
BELL CJ, 1990, MOL GEN GENET, V220, P289, DOI 10.1007/BF00260496
[6]  
Benjamins R, 2001, DEVELOPMENT, V128, P4057
[7]   MORPHOGENESIS IN PINOID MUTANTS OF ARABIDOPSIS-THALIANA [J].
BENNETT, SRM ;
ALVAREZ, J ;
BOSSINGER, G ;
SMYTH, DR .
PLANT JOURNAL, 1995, 8 (04) :505-520
[8]   A gene expression map of the Arabidopsis root [J].
Birnbaum, K ;
Shasha, DE ;
Wang, JY ;
Jung, JW ;
Lambert, GM ;
Galbraith, DW ;
Benfey, PN .
SCIENCE, 2003, 302 (5652) :1956-1960
[9]   Auxin transport [J].
Blakeslee, JJ ;
Peer, WA ;
Murphy, AS .
CURRENT OPINION IN PLANT BIOLOGY, 2005, 8 (05) :494-500
[10]   Phosphatidylinositol 4,5-bisphosphate and Arf6-regulated membrane traffic [J].
Brown, FD ;
Rozelle, AL ;
Yin, HL ;
Balla, T ;
Donaldson, JG .
JOURNAL OF CELL BIOLOGY, 2001, 154 (05) :1007-1017