VAN3 ARF–GAP-mediated vesicle transport is involved in leaf vascular network formation
Open Access
- 1 April 2005
- journal article
- Published by The Company of Biologists in Development
- Vol. 132 (7), 1699-1711
- https://doi.org/10.1242/dev.01716
Abstract
Within the leaf of an angiosperm, the vascular system is constructed in a complex network pattern called venation. The formation of this vein pattern has been widely studied as a paradigm of tissue pattern formation in plants. To elucidate the molecular mechanism controlling the vein patterning process, we previously isolated Arabidopsis mutants van1 to van7, which show a discontinuous vein pattern. Here we report the phenotypic analysis of the van3 mutant in relation to auxin signaling and polar transport, and the molecular characterization of the VAN3 gene and protein. Double mutant analyses with pin1, emb30-7/gn and mp, and physiological analyses using the auxin-inducible marker DR5::GUS and an auxin transport inhibitor indicated that VAN3 may be involved in auxin signal transduction, but not in polar auxin transport. Positional cloning identified VAN3 as a gene that encodes an adenosine diphosphate (ADP)-ribosylation factor-guanosine triphosphatase (GTPase) activating protein (ARF–GAP). It resembles animal ACAPs and contains four domains: a BAR (BIN/amphiphysin/RVS) domain, a pleckstrin homology (PH) domain, an ARF–GAP domain and an ankyrin (ANK)-repeat domain. Recombinant VAN3 protein showed GTPase-activating activity and a specific affinity for phosphatidylinositols. This protein can self-associate through the N-terminal BAR domain in the yeast two-hybrid system. Subcellular localization analysis by double staining for Venus-tagged VAN3 and several green-fluorescent-protein-tagged intracellular markers indicated that VAN3 is located in a subpopulation of the trans-Golgi network (TGN). Our results indicate that the expression of this gene is induced by auxin and positively regulated by VAN3 itself, and that a specific ACAP type of ARF–GAP functions in vein pattern formation by regulating auxin signaling via a TGN-mediated vesicle transport system.Keywords
This publication has 73 references indexed in Scilit:
- Functional differentiation of endosomes in Arabidopsis cellsThe Plant Journal, 2004
- Local, Efflux-Dependent Auxin Gradients as a Common Module for Plant Organ FormationCell, 2003
- Cell Polarity and PIN Protein Positioning in Arabidopsis Require STEROL METHYLTRANSFERASE1 FunctionPlant Cell, 2003
- Indole Acetic Acid Distribution Coincides with Vascular Differentiation Pattern during Arabidopsis Leaf OntogenyPlant Physiology, 2002
- VASCULAR TISSUE DIFFERENTIATION AND PATTERN FORMATION IN PLANTSAnnual Review of Plant Biology, 2002
- A variant of yellow fluorescent protein with fast and efficient maturation for cell-biological applicationsNature Biotechnology, 2002
- Auxin Is Required for Leaf Vein Pattern in ArabidopsisPlant Physiology, 1999
- Molecules in the ARF OrbitJournal of Biological Chemistry, 1998
- Morphogenesis in pinoid mutants of Arabidopsis thalianaThe Plant Journal, 1995
- EMB30 is essential for normal cell division, cell expansion, and cell adhesion in Arabidopsis and encodes a protein that has similarity to Sec7Cell, 1994