@article{2222,
  abstract     = {Leaf venation develops complex patterns in angiosperms, but the mechanism underlying this process is largely unknown. To elucidate the molecular mechanisms governing vein pattern formation, we previously isolated vascular network defective (van) mutants that displayed venation discontinuities. Here, we report the phenotypic analysis of van4 mutants, and we identify and characterize the VAN4 gene. Detailed phenotypic analysis shows that van4 mutants are defective in procambium cell differentiation and subsequent vascular cell differentiation. Reduced shoot and root cell growth is observed in van4 mutants, suggesting that VAN4 function is important for cell growth and the establishment of venation continuity. Consistent with these phenotypes, the VAN4 gene is strongly expressed in vascular and meristematic cells. VAN4 encodes a putative TRS120, which is a known guanine nucleotide exchange factor (GEF) for Rab GTPase involved in regulating vesicle transport, and a known tethering factor that determines the specificity of membrane fusion. VAN4 protein localizes at the trans-Golgi network/early endosome (TGN/EE). Aberrant recycling of the auxin efflux carrier PIN proteins is observed in van4 mutants. These results suggest that VAN4-mediated exocytosis at the TGN plays important roles in plant vascular development and cell growth in shoot and root. Our identification of VAN4 as a putative TRS120 shows that Rab GTPases are crucial (in addition to ARF GTPases) for continuous vascular development, and provides further evidence for the importance of vesicle transport in leaf vascular formation.},
  author       = {Naramoto, Satoshi and Nodzyński, Tomasz and Dainobu, Tomoko and Takatsuka, Hirotomo and Okada, Teruyo and Friml, Jirí and Fukuda, Hiroo},
  issn         = {0032-0781},
  journal      = {Plant and Cell Physiology},
  number       = {4},
  pages        = {750 -- 763},
  publisher    = {Oxford University Press},
  title        = {{VAN4 encodes a putative TRS120 that is required for normal cell growth and vein development in arabidopsis}},
  doi          = {10.1093/pcp/pcu012},
  volume       = {55},
  year         = {2014},
}

@article{2223,
  abstract     = {Correct positioning of membrane proteins is an essential process in eukaryotic organisms. The plant hormone auxin is distributed through intercellular transport and triggers various cellular responses. Auxin transporters of the PIN-FORMED (PIN) family localize asymmetrically at the plasma membrane (PM) and mediate the directional transport of auxin between cells. A fungal toxin, brefeldin A (BFA), inhibits a subset of guanine nucleotide exchange factors for ADP-ribosylation factor small GTPases (ARF GEFs) including GNOM, which plays a major role in localization of PIN1 predominantly to the basal side of the PM. The Arabidopsis genome encodes 19 ARF-related putative GTPases. However, ARF components involved in PIN1 localization have been genetically poorly defined. Using a fluorescence imaging-based forward genetic approach, we identified an Arabidopsis mutant, bfa-visualized exocytic trafficking defective1 (bex1), in which PM localization of PIN1-green fluorescent protein (GFP) as well as development is hypersensitive to BFA. We found that in bex1 a member of the ARF1 gene family, ARF1A1C, was mutated. ARF1A1C localizes to the trans-Golgi network/early endosome and Golgi apparatus, acts synergistically to BEN1/MIN7 ARF GEF and is important for PIN recycling to the PM. Consistent with the developmental importance of PIN proteins, functional interference with ARF1 resulted in an impaired auxin response gradient and various developmental defects including embryonic patterning defects and growth arrest. Our results show that ARF1A1C is essential for recycling of PIN auxin transporters and for various auxin-dependent developmental processes.},
  author       = {Tanaka, Hirokazu and Nodzyński, Tomasz and Kitakura, Saeko and Feraru, Mugurel and Sasabe, Michiko and Ishikawa, Tomomi and Kleine Vehn, Jürgen and Kakimoto, Tatsuo and Friml, Jirí},
  issn         = {0032-0781},
  journal      = {Plant and Cell Physiology},
  number       = {4},
  pages        = {737 -- 749},
  publisher    = {Oxford University Press},
  title        = {{BEX1/ARF1A1C is required for BFA-sensitive recycling of PIN auxin transporters and auxin-mediated development in arabidopsis}},
  doi          = {10.1093/pcp/pct196},
  volume       = {55},
  year         = {2014},
}

@article{2227,
  abstract     = {The Balkan Peninsula, characterized by high rates of endemism, is recognised as one of the most diverse and species-rich areas of Europe. However, little is known about the origin of Balkan endemics. The present study addresses the phylogenetic position of the Balkan endemic Ranunculus wettsteinii, as well as its taxonomic status and relationship with the widespread R. parnassiifolius, based on nuclear DNA (internal transcribed spacer, ITS) and plastid regions (rpl32-trnL, rps16-trnQ, trnK-matK and ycf6-psbM). Maximum parsimony and Bayesian inference analyses revealed a well-supported clade formed by accessions of R. wettsteinii. Furthermore, our phylogenetic and network analyses supported previous hypotheses of a likely allopolyploid origin for R. wettsteinii between R. montenegrinus and R. parnassiifolius, with the latter as the maternal parent.},
  author       = {Cires Rodriguez, Eduardo and Baltisberger, Matthias and Cuesta, Candela and Vargas, Pablo and Prieto, José},
  issn         = {1439-6092},
  journal      = {Organisms Diversity and Evolution},
  number       = {1},
  pages        = {1 -- 10},
  publisher    = {Springer},
  title        = {{Allopolyploid origin of the Balkan endemic Ranunculus wettsteinii (Ranunculaceae) inferred from nuclear and plastid DNA sequences}},
  doi          = {10.1007/s13127-013-0150-6},
  volume       = {14},
  year         = {2014},
}

@article{2240,
  abstract     = {Clathrin-mediated endocytosis is the major mechanism for eukaryotic plasma membrane-based proteome turn-over. In plants, clathrin-mediated endocytosis is essential for physiology and development, but the identification and organization of the machinery operating this process remains largely obscure. Here, we identified an eight-core-component protein complex, the TPLATE complex, essential for plant growth via its role as major adaptor module for clathrin-mediated endocytosis. This complex consists of evolutionarily unique proteins that associate closely with core endocytic elements. The TPLATE complex is recruited as dynamic foci at the plasma membrane preceding recruitment of adaptor protein complex 2, clathrin, and dynamin-related proteins. Reduced function of different complex components severely impaired internalization of assorted endocytic cargoes, demonstrating its pivotal role in clathrin-mediated endocytosis. Taken together, the TPLATE complex is an early endocytic module representing a unique evolutionary plant adaptation of the canonical eukaryotic pathway for clathrin-mediated endocytosis.},
  author       = {Gadeyne, Astrid and Sánchez Rodríguez, Clara and Vanneste, Steffen and Di Rubbo, Simone and Zauber, Henrik and Vanneste, Kevin and Van Leene, Jelle and De Winne, Nancy and Eeckhout, Dominique and Persiau, Geert and Van De Slijke, Eveline and Cannoot, Bernard and Vercruysse, Leen and Mayers, Jonathan and Adamowski, Maciek and Kania, Urszula and Ehrlich, Matthias and Schweighofer, Alois and Ketelaar, Tijs and Maere, Steven and Bednarek, Sebastian and Friml, Jirí and Gevaert, Kris and Witters, Erwin and Russinova, Eugenia and Persson, Staffan and De Jaeger, Geert and Van Damme, Daniël},
  issn         = {0092-8674},
  journal      = {Cell},
  number       = {4},
  pages        = {691 -- 704},
  publisher    = {Cell Press},
  title        = {{The TPLATE adaptor complex drives clathrin-mediated endocytosis in plants}},
  doi          = {10.1016/j.cell.2014.01.039},
  volume       = {156},
  year         = {2014},
}

@inbook{2245,
  abstract     = {Exogenous application of biologically important molecules for plant growth promotion and/or regulation is very common both in plant research and horticulture. Plant hormones such as auxins and cytokinins are classes of compounds which are often applied exogenously. Nevertheless, plants possess a well-established machinery to regulate the active pool of exogenously applied compounds by converting them to metabolites and conjugates. Consequently, it is often very useful to know the in vivo status of applied compounds to connect them with some of the regulatory events in plant developmental processes. The in vivo status of applied compounds can be measured by incubating plants with radiolabeled compounds, followed by extraction, purification, and HPLC metabolic profiling of plant extracts. Recently we have used this method to characterize the intracellularly localized PIN protein, PIN5. Here we explain the method in detail, with a focus on general application. },
  author       = {Simon, Sibu and Skůpa, Petr and Dobrev, Petre and Petrášek, Jan and Zažímalová, Eva and Friml, Jirí},
  booktitle    = {Plant Chemical Genomics},
  editor       = {Hicks, Glenn and Robert, Stéphanie},
  issn         = {1064-3745},
  pages        = {255 -- 264},
  publisher    = {Springer},
  title        = {{Analyzing the in vivo status of exogenously applied auxins: A HPLC-based method to characterize the intracellularly localized auxin transporters}},
  doi          = {10.1007/978-1-62703-592-7_23},
  volume       = {1056},
  year         = {2014},
}

@article{2249,
  abstract     = {The unfolded protein response (UPR) is a signaling network triggered by overload of protein-folding demand in the endoplasmic reticulum (ER), a condition termed ER stress. The UPR is critical for growth and development; nonetheless, connections between the UPR and other cellular regulatory processes remain largely unknown. Here, we identify a link between the UPR and the phytohormone auxin, a master regulator of plant physiology. We show that ER stress triggers down-regulation of auxin receptors and transporters in Arabidopsis thaliana. We also demonstrate that an Arabidopsis mutant of a conserved ER stress sensor IRE1 exhibits defects in the auxin response and levels. These data not only support that the plant IRE1 is required for auxin homeostasis, they also reveal a species-specific feature of IRE1 in multicellular eukaryotes. Furthermore, by establishing that UPR activation is reduced in mutants of ER-localized auxin transporters, including PIN5, we define a long-neglected biological significance of ER-based auxin regulation. We further examine the functional relationship of IRE1 and PIN5 by showing that an ire1 pin5 triple mutant enhances defects of UPR activation and auxin homeostasis in ire1 or pin5. Our results imply that the plant UPR has evolved a hormone-dependent strategy for coordinating ER function with physiological processes.},
  author       = {Chen, Yani and Aung, Kyaw and Rolčík, Jakub and Walicki, Kathryn and Friml, Jirí and Brandizzí, Federica},
  issn         = {0960-7412},
  journal      = {Plant Journal},
  number       = {1},
  pages        = {97 -- 107},
  publisher    = {Wiley-Blackwell},
  title        = {{Inter-regulation of the unfolded protein response and auxin signaling}},
  doi          = {10.1111/tpj.12373},
  volume       = {77},
  year         = {2014},
}

@article{2253,
  abstract     = {Plant growth is achieved predominantly by cellular elongation, which is thought to be controlled on several levels by apoplastic auxin. Auxin export into the apoplast is achieved by plasma membrane efflux catalysts of the PIN-FORMED (PIN) and ATP-binding cassette protein subfamily B/phosphor- glycoprotein (ABCB/PGP) classes; the latter were shown to depend on interaction with the FKBP42, TWISTED DWARF1 (TWD1). Here by using a transgenic approach in combination with phenotypical, biochemical and cell biological analyses we demonstrate the importance of a putative C-terminal in-plane membrane anchor of TWD1 in the regulation of ABCB-mediated auxin transport. In contrast with dwarfed twd1 loss-of-function alleles, TWD1 gain-of-function lines that lack a putative in-plane membrane anchor (HA-TWD1-Ct) show hypermorphic plant architecture, characterized by enhanced stem length and leaf surface but reduced shoot branching. Greater hypocotyl length is the result of enhanced cell elongation that correlates with reduced polar auxin transport capacity for HA-TWD1-Ct. As a consequence, HA-TWD1-Ct displays higher hypocotyl auxin accumulation, which is shown to result in elevated auxin-induced cell elongation rates. Our data highlight the importance of C-terminal membrane anchoring for TWD1 action, which is required for specific regulation of ABCB-mediated auxin transport. These data support a model in which TWD1 controls lateral ABCB1-mediated export into the apoplast, which is required for auxin-mediated cell elongation.},
  author       = {Bailly, Aurélien and Wang, Bangjun and Zwiewka, Marta and Pollmann, Stephan and Schenck, Daniel and Lüthen, Hartwig and Schulz, Alexander and Friml, Jirí and Geisler, Markus},
  issn         = {0960-7412},
  journal      = {Plant Journal},
  number       = {1},
  pages        = {108 -- 118},
  publisher    = {Wiley-Blackwell},
  title        = {{Expression of TWISTED DWARF1 lacking its in-plane membrane anchor leads to increased cell elongation and hypermorphic growth}},
  doi          = {10.1111/tpj.12369},
  volume       = {77},
  year         = {2014},
}

@article{2188,
  abstract     = {Although plant and animal cells use a similar core mechanism to deliver proteins to the plasma membrane, their different lifestyle, body organization and specific cell structures resulted in the acquisition of regulatory mechanisms that vary in the two kingdoms. In particular, cell polarity regulators do not seem to be conserved, because genes encoding key components are absent in plant genomes. In plants, the broad knowledge on polarity derives from the study of auxin transporters, the PIN-FORMED proteins, in the model plant Arabidopsis thaliana. In animals, much information is provided from the study of polarity in epithelial cells that exhibit basolateral and luminal apical polarities, separated by tight junctions. In this review, we summarize the similarities and differences of the polarization mechanisms between plants and animals and survey the main genetic approaches that have been used to characterize new genes involved in polarity establishment in plants, including the frequently used forward and reverse genetics screens as well as a novel chemical genetics approach that is expected to overcome the limitation of classical genetics methods.},
  author       = {Kania, Urszula and Fendrych, Matyas and Friml, Jiřĺ},
  journal      = {Open Biology},
  number       = {APRIL},
  publisher    = {Royal Society},
  title        = {{Polar delivery in plants; commonalities and differences to animal epithelial cells}},
  doi          = {10.1098/rsob.140017},
  volume       = {4},
  year         = {2014},
}

@article{1852,
  abstract     = {To control morphogenesis, molecular regulatory networks have to interfere with the mechanical properties of the individual cells of developing organs and tissues, but how this is achieved is not well known. We study this issue here in the shoot meristem of higher plants, a group of undifferentiated cells where complex changes in growth rates and directions lead to the continuous formation of new organs [1, 2]. Here, we show that the plant hormone auxin plays an important role in this process via a dual, local effect on the extracellular matrix, the cell wall, which determines cell shape. Our study reveals that auxin not only causes a limited reduction in wall stiffness but also directly interferes with wall anisotropy via the regulation of cortical microtubule dynamics. We further show that to induce growth isotropy and organ outgrowth, auxin somehow interferes with the cortical microtubule-ordering activity of a network of proteins, including AUXIN BINDING PROTEIN 1 and KATANIN 1. Numerical simulations further indicate that the induced isotropy is sufficient to amplify the effects of the relatively minor changes in wall stiffness to promote organogenesis and the establishment of new growth axes in a robust manner.},
  author       = {Sassi, Massimiliano and Ali, Olivier and Boudon, Frédéric and Cloarec, Gladys and Abad, Ursula and Cellier, Coralie and Chen, Xu and Gilles, Benjamin and Milani, Pascale and Friml, Jirí and Vernoux, Teva and Godin, Christophe and Hamant, Olivier and Traas, Jan},
  journal      = {Current Biology},
  number       = {19},
  pages        = {2335 -- 2342},
  publisher    = {Cell Press},
  title        = {{An auxin-mediated shift toward growth isotropy promotes organ formation at the shoot meristem in Arabidopsis}},
  doi          = {10.1016/j.cub.2014.08.036},
  volume       = {24},
  year         = {2014},
}

@article{1862,
  abstract     = {The prominent and evolutionarily ancient role of the plant hormone auxin is the regulation of cell expansion. Cell expansion requires ordered arrangement of the cytoskeleton but molecular mechanisms underlying its regulation by signalling molecules including auxin are unknown. Here we show in the model plant Arabidopsis thaliana that in elongating cells exogenous application of auxin or redistribution of endogenous auxin induces very rapid microtubule re-orientation from transverse to longitudinal, coherent with the inhibition of cell expansion. This fast auxin effect requires auxin binding protein 1 (ABP1) and involves a contribution of downstream signalling components such as ROP6 GTPase, ROP-interactive protein RIC1 and the microtubule-severing protein katanin. These components are required for rapid auxin-and ABP1-mediated re-orientation of microtubules to regulate cell elongation in roots and dark-grown hypocotyls as well as asymmetric growth during gravitropic responses.},
  author       = {Chen, Xu and Grandont, Laurie and Li, Hongjiang and Hauschild, Robert and Paque, Sébastien and Abuzeineh, Anas and Rakusova, Hana and Benková, Eva and Perrot Rechenmann, Catherine and Friml, Jirí},
  issn         = {1476-4687},
  journal      = {Nature},
  number       = {729},
  pages        = {90 -- 93},
  publisher    = {Nature Publishing Group},
  title        = {{Inhibition of cell expansion by rapid ABP1-mediated auxin effect on microtubules}},
  doi          = {10.1038/nature13889},
  volume       = {516},
  year         = {2014},
}

@article{1893,
  abstract     = {Phosphatidylinositol (PtdIns) is a structural phospholipid that can be phosphorylated into various lipid signaling molecules, designated polyphosphoinositides (PPIs). The reversible phosphorylation of PPIs on the 3, 4, or 5 position of inositol is performed by a set of organelle-specific kinases and phosphatases, and the characteristic head groups make these molecules ideal for regulating biological processes in time and space. In yeast and mammals, PtdIns3P and PtdIns(3,5)P2 play crucial roles in trafficking toward the lytic compartments, whereas the role in plants is not yet fully understood. Here we identified the role of a land plant-specific subgroup of PPI phosphatases, the suppressor of actin 2 (SAC2) to SAC5, during vacuolar trafficking and morphogenesis in Arabidopsis thaliana. SAC2-SAC5 localize to the tonoplast along with PtdIns3P, the presumable product of their activity. In SAC gain- and loss-of-function mutants, the levels of PtdIns monophosphates and bisphosphates were changed, with opposite effects on the morphology of storage and lytic vacuoles, and the trafficking toward the vacuoles was defective. Moreover, multiple sac knockout mutants had an increased number of smaller storage and lytic vacuoles, whereas extralarge vacuoles were observed in the overexpression lines, correlating with various growth and developmental defects. The fragmented vacuolar phenotype of sac mutants could be mimicked by treating wild-type seedlings with PtdIns(3,5)P2, corroborating that this PPI is important for vacuole morphology. Taken together, these results provide evidence that PPIs, together with their metabolic enzymes SAC2-SAC5, are crucial for vacuolar trafficking and for vacuolar morphology and function in plants.},
  author       = {Nováková, Petra and Hirsch, Sibylle and Feraru, Elena and Tejos, Ricardo and Van Wijk, Ringo and Viaene, Tom and Heilmann, Mareike and Lerche, Jennifer and De Rycke, Riet and Feraru, Mugurel and Grones, Peter and Van Montagu, Marc and Heilmann, Ingo and Munnik, Teun and Friml, Jirí},
  journal      = {PNAS},
  number       = {7},
  pages        = {2818 -- 2823},
  publisher    = {National Academy of Sciences},
  title        = {{SAC phosphoinositide phosphatases at the tonoplast mediate vacuolar function in Arabidopsis}},
  doi          = {10.1073/pnas.1324264111},
  volume       = {111},
  year         = {2014},
}

@article{1897,
  abstract     = {GNOM is one of the most characterized membrane trafficking regulators in plants, with crucial roles in development. GNOM encodes an ARF-guanine nucleotide exchange factor (ARF-GEF) that activates small GTPases of the ARF (ADP ribosylation factor) class to mediate vesicle budding at endomembranes. The crucial role of GNOM in recycling of PIN auxin transporters and other proteins to the plasma membrane was identified in studies using the ARF-GEF inhibitor brefeldin A (BFA). GNOM, the most prominent regulator of recycling in plants, has been proposed to act and localize at so far elusive recycling endosomes. Here, we report the GNOM localization in context of its cellular function in Arabidopsis thaliana. State-of-the-art imaging, pharmacological interference, and ultrastructure analysis show that GNOM predominantly localizes to Golgi apparatus. Super-resolution confocal live imaging microscopy identified GNOM and its closest homolog GNOM-like 1 at distinct subdomains on Golgi cisternae. Short-term BFA treatment stabilizes GNOM at the Golgi apparatus, whereas prolonged exposures results in GNOM translocation to trans-Golgi network (TGN)/early endosomes (EEs). Malformed TGN/EE in gnom mutants suggests a role for GNOM in maintaining TGN/EE function. Our results redefine the subcellular action of GNOM and reevaluate the identity and function of recycling endosomes in plants.},
  author       = {Naramoto, Satoshi and Otegui, Marisa and Kutsuna, Natsumaro and De Rycke, Riet and Dainobu, Tomoko and Karampelias, Michael and Fujimoto, Masaru and Feraru, Elena and Miki, Daisuke and Fukuda, Hiroo and Nakano, Akihiko and Friml, Jirí},
  journal      = {Plant Cell},
  number       = {7},
  pages        = {3062 -- 3076},
  publisher    = {American Society of Plant Biologists},
  title        = {{Insights into the localization and function of the membrane trafficking regulator GNOM ARF-GEF at the Golgi apparatus in Arabidopsis}},
  doi          = {10.1105/tpc.114.125880},
  volume       = {26},
  year         = {2014},
}

@article{1901,
  abstract     = {In plants, the patterning of stem cell-enriched meristems requires a graded auxin response maximum that emerges from the concerted action of polar auxin transport, auxin biosynthesis, auxin metabolism, and cellular auxin response machinery. However, mechanisms underlying this auxin response maximum-mediated root stem cell maintenance are not fully understood. Here, we present unexpected evidence that WUSCHEL-RELATED HOMEOBOX 5 (WOX5) transcription factor modulates expression of auxin biosynthetic genes in the quiescent center (QC) of the root and thus provides a robust mechanism for the maintenance of auxin response maximum in the root tip. This WOX5 action is balanced through the activity of indole-3-acetic acid 17 (IAA17) auxin response repressor. Our combined genetic, cell biology, and computational modeling studies revealed a previously uncharacterized feedback loop linking WOX5-mediated auxin production to IAA17-dependent repression of auxin responses. This WOX5-IAA17 feedback circuit further assures the maintenance of auxin response maximum in the root tip and thereby contributes to the maintenance of distal stem cell (DSC) populations. Our experimental studies and in silico computer simulations both demonstrate that the WOX5-IAA17 feedback circuit is essential for the maintenance of auxin gradient in the root tip and the auxin-mediated root DSC differentiation.},
  author       = {Tian, Huiyu and Wabnik, Krzysztof T and Niu, Tiantian and Li, Hongjiang and Yu, Qianqian and Pollmann, Stephan and Vanneste, Steffen and Govaerts, Willy and Rolčík, Jakub and Geisler, Markus and Friml, Jirí and Ding, Zhaojun},
  journal      = {Molecular Plant},
  number       = {2},
  pages        = {277 -- 289},
  publisher    = {Oxford University Press},
  title        = {{WOX5-IAA17 feedback circuit-mediated cellular auxin response is crucial for the patterning of root stem cell niches in arabidopsis}},
  doi          = {10.1093/mp/sst118},
  volume       = {7},
  year         = {2014},
}

@article{1914,
  abstract     = {Targeting membrane proteins for degradation requires the sequential action of ESCRT sub-complexes ESCRT-0 to ESCRT-III. Although this machinery is generally conserved among kingdoms, plants lack the essential ESCRT-0 components. A new report closes this gap by identifying a novel protein family that substitutes for ESCRT-0 function in plants.},
  author       = {Sauer, Michael and Friml, Jirí},
  journal      = {Current Biology},
  number       = {1},
  pages        = {R27 -- R29},
  publisher    = {Cell Press},
  title        = {{Plant biology: Gatekeepers of the road to protein perdition}},
  doi          = {10.1016/j.cub.2013.11.019},
  volume       = {24},
  year         = {2014},
}

@article{1915,
  abstract     = {ROPs (Rho of plants) belong to a large family of plant-specific Rho-like small GTPases that function as essential molecular switches to control diverse cellular processes including cytoskeleton organization, cell polarization, cytokinesis, cell differentiation and vesicle trafficking. Although the machineries of vesicle trafficking and cell polarity in plants have been individually well addressed, how ROPs co-ordinate those processes is still largely unclear. Recent progress has been made towards an understanding of the coordination of ROP signalling and trafficking of PIN (PINFORMED) transporters for the plant hormone auxin in both root and leaf pavement cells. PIN transporters constantly shuttle between the endosomal compartments and the polar plasma membrane domains, therefore the modulation of PIN-dependent auxin transport between cells is a main developmental output of ROP-regulated vesicle trafficking. The present review focuses on these cellular mechanisms, especially the integration of ROP-based vesicle trafficking and plant cell polarity.},
  author       = {Chen, Xu and Friml, Jirí},
  issn         = {1470-8752},
  journal      = {Biochemical Society Transactions},
  number       = {1},
  pages        = {212 -- 218},
  publisher    = {Portland Press},
  title        = {{Rho-GTPase-regulated vesicle trafficking in plant cell polarity}},
  doi          = {10.1042/BST20130269},
  volume       = {42},
  year         = {2014},
}

@article{1917,
  abstract     = {Auxin-binding protein 1 (ABP1) was discovered nearly 40 years ago and was shown to be essential for plant development and morphogenesis, but its mode of action remains unclear. Here, we report that the plasma membrane-localized transmembrane kinase (TMK) receptor-like kinases interact with ABP1 and transduce auxin signal to activate plasma membrane-associated ROPs [Rho-like guanosine triphosphatases (GTPase) from plants], leading to changes in the cytoskeleton and the shape of leaf pavement cells in Arabidopsis. The interaction between ABP1 and TMK at the cell surface is induced by auxin and requires ABP1 sensing of auxin. These findings show that TMK proteins and ABP1 form a cell surface auxin perception complex that activates ROP signaling pathways, regulating nontranscriptional cytoplasmic responses and associated fundamental processes.},
  author       = {Xu, Tongda and Dai, Ning and Chen, Jisheng and Nagawa, Shingo and Cao, Min and Li, Hongjiang and Zhou, Zimin and Chen, Xu and De Rycke, Riet and Rakusová, Hana and Wang, Wen and Jones, Alan and Friml, Jirí and Patterson, Sara and Bleecker, Anthony and Yang, Zhenbiao},
  journal      = {Science},
  number       = {6174},
  pages        = {1025 -- 1028},
  publisher    = {American Association for the Advancement of Science},
  title        = {{Cell surface ABP1-TMK auxin sensing complex activates ROP GTPase signaling}},
  doi          = {10.1126/science.1245125},
  volume       = {343},
  year         = {2014},
}

@article{1921,
  abstract     = {Cell polarity manifested by asymmetric distribution of cargoes, such as receptors and transporters, within the plasma membrane (PM) is crucial for essential functions in multicellular organisms. In plants, cell polarity (re)establishment is intimately linked to patterning processes. Despite the importance of cell polarity, its underlying mechanisms are still largely unknown, including the definition and distinctiveness of the polar domains within the PM. Here, we show in Arabidopsis thaliana that the signaling membrane components, the phosphoinositides phosphatidylinositol 4-phosphate (PtdIns4P) and phosphatidylinositol 4, 5-bisphosphate [PtdIns(4, 5)P2] as well as PtdIns4P 5-kinases mediating their interconversion, are specifically enriched at apical and basal polar plasma membrane domains. The PtdIns4P 5-kinases PIP5K1 and PIP5K2 are redundantly required for polar localization of specifically apical and basal cargoes, such as PIN-FORMED transporters for the plant hormone auxin. As a consequence of the polarity defects, instructive auxin gradients as well as embryonic and postembryonic patterning are severely compromised. Furthermore, auxin itself regulates PIP5K transcription and PtdIns4P and PtdIns(4, 5)P2 levels, in particular their association with polar PM domains. Our results provide insight into the polar domain-delineating mechanisms in plant cells that depend on apical and basal distribution of membrane lipids and are essential for embryonic and postembryonic patterning.},
  author       = {Tejos, Ricardo and Sauer, Michael and Vanneste, Steffen and Palacios-Gomez, MiriamPalacios  and Li, Hongjiang and Heilmann, Mareike and Van Wijk, Ringo and Vermeer, Joop and Heilmann, Ingo and Munnik, Teun and Friml, Jirí},
  journal      = {Plant Cell},
  number       = {5},
  pages        = {2114 -- 2128},
  publisher    = {American Society of Plant Biologists},
  title        = {{Bipolar plasma membrane distribution of phosphoinositides and their requirement for auxin-mediated cell polarity and patterning in Arabidopsis}},
  doi          = {10.1105/tpc.114.126185},
  volume       = {26},
  year         = {2014},
}

@article{1924,
  abstract     = {Stomata are two-celled valves that control epidermal pores whose spacing optimizes shoot-atmosphere gas exchange. They develop from protodermal cells after unequal divisions followed by an equal division and differentiation. The concentration of the hormone auxin, a master plant developmental regulator, is tightly controlled in time and space, but its role, if any, in stomatal formation is obscure. Here dynamic changes of auxin activity during stomatal development are monitored using auxin input (DII-VENUS) and output (DR5:VENUS) markers by time-lapse imaging. A decrease in auxin levels in the smaller daughter cell after unequal division presages the acquisition of a guard mother cell fate whose equal division produces the two guard cells. Thus, stomatal patterning requires auxin pathway control of stem cell compartment size, as well as auxin depletion that triggers a developmental switch from unequal to equal division.},
  author       = {Le, Jie and Liu, Xuguang and Yang, Kezhen and Chen, Xiaolan and Zhu, Lingling and Wang, Hongzhe and Wang, Ming and Vanneste, Steffen and Morita, Miyo and Tasaka, Masao and Ding, Zhaojun and Friml, Jirí and Beeckman, Tom and Sack, Fred},
  journal      = {Nature Communications},
  publisher    = {Nature Publishing Group},
  title        = {{Auxin transport and activity regulate stomatal patterning and development}},
  doi          = {10.1038/ncomms4090},
  volume       = {5},
  year         = {2014},
}

@article{1934,
  abstract     = {The plant hormones auxin and cytokinin mutually coordinate their activities to control various aspects of development [1-9], and their crosstalk occurs at multiple levels [10, 11]. Cytokinin-mediated modulation of auxin transport provides an efficient means to regulate auxin distribution in plant organs. Here, we demonstrate that cytokinin does not merely control the overall auxin flow capacity, but might also act as a polarizing cue and control the auxin stream directionality during plant organogenesis. Cytokinin enhances the PIN-FORMED1 (PIN1) auxin transporter depletion at specific polar domains, thus rearranging the cellular PIN polarities and directly regulating the auxin flow direction. This selective cytokinin sensitivity correlates with the PIN protein phosphorylation degree. PIN1 phosphomimicking mutations, as well as enhanced phosphorylation in plants with modulated activities of PIN-specific kinases and phosphatases, desensitize PIN1 to cytokinin. Our results reveal conceptually novel, cytokinin-driven polarization mechanism that operates in developmental processes involving rapid auxin stream redirection, such as lateral root organogenesis, in which a gradual PIN polarity switch defines the growth axis of the newly formed organ.},
  author       = {Marhavy, Peter and Duclercq, Jérôme and Weller, Benjamin and Feraru, Elena and Bielach, Agnieszka and Offringa, Remko and Friml, Jirí and Schwechheimer, Claus and Murphy, Angus and Benková, Eva},
  journal      = {Current Biology},
  number       = {9},
  pages        = {1031 -- 1037},
  publisher    = {Cell Press},
  title        = {{Cytokinin controls polarity of PIN1-dependent Auxin transport during lateral root organogenesis}},
  doi          = {10.1016/j.cub.2014.04.002},
  volume       = {24},
  year         = {2014},
}

@article{1994,
  abstract     = {The emergence and radiation of multicellular land plants was driven by crucial innovations to their body plans [1]. The directional transport of the phytohormone auxin represents a key, plant-specific mechanism for polarization and patterning in complex seed plants [2-5]. Here, we show that already in the early diverging land plant lineage, as exemplified by the moss Physcomitrella patens, auxin transport by PIN transporters is operational and diversified into ER-localized and plasma membrane-localized PIN proteins. Gain-of-function and loss-of-function analyses revealed that PIN-dependent intercellular auxin transport in Physcomitrella mediates crucial developmental transitions in tip-growing filaments and waves of polarization and differentiation in leaf-like structures. Plasma membrane PIN proteins localize in a polar manner to the tips of moss filaments, revealing an unexpected relation between polarization mechanisms in moss tip-growing cells and multicellular tissues of seed plants. Our results trace the origins of polarization and auxin-mediated patterning mechanisms and highlight the crucial role of polarized auxin transport during the evolution of multicellular land plants.},
  author       = {Viaene, Tom and Landberg, Katarina and Thelander, Mattias and Medvecka, Eva and Pederson, Eric and Feraru, Elena and Cooper, Endymion and Karimi, Mansour and Delwiche, Charles and Ljung, Karin and Geisler, Markus and Sundberg, Eva and Friml, Jirí},
  journal      = {Current Biology},
  number       = {23},
  pages        = {2786 -- 2791},
  publisher    = {Cell Press},
  title        = {{Directional auxin transport mechanisms in early diverging land plants}},
  doi          = {10.1016/j.cub.2014.09.056},
  volume       = {24},
  year         = {2014},
}

