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1.
Nature ; 625(7996): 750-759, 2024 Jan.
Article in English | MEDLINE | ID: mdl-38200311

ABSTRACT

Iron is critical during host-microorganism interactions1-4. Restriction of available iron by the host during infection is an important defence strategy, described as nutritional immunity5. However, this poses a conundrum for externally facing, absorptive tissues such as the gut epithelium or the plant root epidermis that generate environments that favour iron bioavailability. For example, plant roots acquire iron mostly from the soil and, when iron deficient, increase iron availability through mechanisms that include rhizosphere acidification and secretion of iron chelators6-9. Yet, the elevated iron bioavailability would also be beneficial for the growth of bacteria that threaten plant health. Here we report that microorganism-associated molecular patterns such as flagellin lead to suppression of root iron acquisition through a localized degradation of the systemic iron-deficiency signalling peptide Iron Man 1 (IMA1) in Arabidopsis thaliana. This response is also elicited when bacteria enter root tissues, but not when they dwell on the outer root surface. IMA1 itself has a role in modulating immunity in root and shoot, affecting the levels of root colonization and the resistance to a bacterial foliar pathogen. Our findings reveal an adaptive molecular mechanism of nutritional immunity that affects iron bioavailability and uptake, as well as immune responses.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Bacteria , Intracellular Signaling Peptides and Proteins , Iron , Pathogen-Associated Molecular Pattern Molecules , Plant Roots , Arabidopsis/immunology , Arabidopsis/metabolism , Arabidopsis/microbiology , Arabidopsis Proteins/metabolism , Bacteria/immunology , Bacteria/metabolism , Flagellin/immunology , Gene Expression Regulation, Plant , Intracellular Signaling Peptides and Proteins/metabolism , Iron/metabolism , Plant Immunity , Plant Roots/immunology , Plant Roots/metabolism , Plant Roots/microbiology , Plant Shoots/immunology , Plant Shoots/metabolism , Plant Shoots/microbiology , Rhizosphere , Pathogen-Associated Molecular Pattern Molecules/immunology , Pathogen-Associated Molecular Pattern Molecules/metabolism
2.
Plant Cell ; 35(9): 3325-3344, 2023 09 01.
Article in English | MEDLINE | ID: mdl-37401663

ABSTRACT

Stress granules (SGs) are highly conserved cytoplasmic condensates that assemble in response to stress and contribute to maintaining protein homeostasis. These membraneless organelles are dynamic, disassembling once the stress is no longer present. Persistence of SGs due to mutations or chronic stress has been often related to age-dependent protein-misfolding diseases in animals. Here, we find that the metacaspase MC1 is dynamically recruited into SGs upon proteotoxic stress in Arabidopsis (Arabidopsis thaliana). Two predicted disordered regions, the prodomain and the 360 loop, mediate MC1 recruitment to and release from SGs. Importantly, we show that MC1 has the capacity to clear toxic protein aggregates in vivo and in vitro, acting as a disaggregase. Finally, we demonstrate that overexpressing MC1 delays senescence and this phenotype is dependent on the presence of the 360 loop and an intact catalytic domain. Together, our data indicate that MC1 regulates senescence through its recruitment into SGs and this function could potentially be linked to its remarkable protein aggregate-clearing activity.


Subject(s)
Arabidopsis , Animals , Arabidopsis/genetics , Arabidopsis/metabolism , Protein Aggregates , Stress Granules , Cytoplasmic Granules/metabolism , Stress, Physiological
3.
Plant Cell ; 34(1): 302-332, 2022 01 20.
Article in English | MEDLINE | ID: mdl-34010411

ABSTRACT

Phosphoinositides are low-abundant lipids that participate in the acquisition of membrane identity through their spatiotemporal enrichment in specific compartments. Phosphatidylinositol 4-phosphate (PI4P) accumulates at the plant plasma membrane driving its high electrostatic potential, and thereby facilitating interactions with polybasic regions of proteins. PI4Kα1 has been suggested to produce PI4P at the plasma membrane, but how it is recruited to this compartment is unknown. Here, we pin-point the mechanism that tethers Arabidopsis thaliana phosphatidylinositol 4-kinase alpha1 (PI4Kα1) to the plasma membrane via a nanodomain-anchored scaffolding complex. We established that PI4Kα1 is part of a complex composed of proteins from the NO-POLLEN-GERMINATION, EFR3-OF-PLANTS, and HYCCIN-CONTAINING families. Comprehensive knockout and knockdown strategies revealed that subunits of the PI4Kα1 complex are essential for pollen, embryonic, and post-embryonic development. We further found that the PI4Kα1 complex is immobilized in plasma membrane nanodomains. Using synthetic mis-targeting strategies, we demonstrate that a combination of lipid anchoring and scaffolding localizes PI4Kα1 to the plasma membrane, which is essential for its function. Together, this work opens perspectives on the mechanisms and function of plasma membrane nanopatterning by lipid kinases.


Subject(s)
Arabidopsis Proteins/genetics , Arabidopsis/genetics , Matrix Attachment Regions , Minor Histocompatibility Antigens/genetics , Phosphotransferases (Alcohol Group Acceptor)/genetics , Arabidopsis/enzymology , Arabidopsis Proteins/metabolism , Minor Histocompatibility Antigens/metabolism , Phosphotransferases (Alcohol Group Acceptor)/metabolism
4.
PLoS Genet ; 18(9): e1010375, 2022 09.
Article in English | MEDLINE | ID: mdl-36121899

ABSTRACT

In plants, regulated cell expansion determines organ size and shape. Several members of the family of redundantly acting Small Auxin Up RNA (SAUR) proteins can stimulate plasma membrane (PM) H+-ATPase proton pumping activity by inhibiting PM-associated PP2C.D phosphatases, thereby increasing the PM electrochemical potential, acidifying the apoplast, and stimulating cell expansion. Similarly, Arabidopsis thaliana SAUR63 was able to increase growth of various organs, antagonize PP2C.D5 phosphatase, and increase H+-ATPase activity. Using a gain-of-function approach to bypass genetic redundancy, we dissected structural requirements for SAUR63 growth-promoting activity. The divergent N-terminal domain of SAUR63 has a predicted basic amphipathic α-helix and was able to drive partial PM association. Deletion of the N-terminal domain decreased PM association of a SAUR63 fusion protein, as well as decreasing protein level and eliminating growth-promoting activity. Conversely, forced PM association restored ability to promote H+-ATPase activity and cell expansion, indicating that SAUR63 is active when PM-associated. Lipid binding assays and perturbations of PM lipid composition indicate that the N-terminal domain can interact with PM anionic lipids. Mutations in the conserved SAUR domain also reduced PM association in root cells. Thus, both the N-terminal domain and the SAUR domain may cooperatively mediate the SAUR63 PM association required to promote growth.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Cell Membrane/genetics , Cell Membrane/metabolism , Gene Expression Regulation, Plant , Indoleacetic Acids/metabolism , Lipids , Phosphoric Monoester Hydrolases/genetics , Proton-Translocating ATPases/genetics , Proton-Translocating ATPases/metabolism , Protons , RNA/metabolism
5.
New Phytol ; 242(5): 1865-1875, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38538552

ABSTRACT

Programmed cell death (PCD) is fundamentally important for plant development, abiotic stress responses and immunity, but our understanding of its regulation remains fragmented. Building a stronger research community is required to accelerate progress in this area through knowledge exchange and constructive debate. In this Viewpoint, we aim to initiate a collective effort to integrate data across a diverse set of experimental models to facilitate characterisation of the fundamental mechanisms underlying plant PCD and ultimately aid the development of a new plant cell death classification system in the future. We also put forward our vision for the next decade of plant PCD research stemming from discussions held during the 31st New Phytologist workshop, 'The Life and Death Decisions of Plant Cells' that took place at University College Dublin in Ireland (14-15 June 2023). We convey the key areas of significant progress and possible future research directions identified, including resolving the spatiotemporal control of cell death, isolation of its molecular and genetic regulators, and harnessing technical advances for studying PCD events in plants. Further, we review the breadth of potential impacts of plant PCD research and highlight the promising new applications of findings from this dynamically evolving field.


Subject(s)
Apoptosis , Research , Plants , Plant Cells/physiology
6.
J Exp Bot ; 67(14): 4015-4037, 2016 07.
Article in English | MEDLINE | ID: mdl-27242371

ABSTRACT

The directional transport of auxin, known as polar auxin transport (PAT), allows asymmetric distribution of this hormone in different cells and tissues. This system creates local auxin maxima, minima, and gradients that are instrumental in both organ initiation and shape determination. As such, PAT is crucial for all aspects of plant development but also for environmental interaction, notably in shaping plant architecture to its environment. Cell to cell auxin transport is mediated by a network of auxin carriers that are regulated at the transcriptional and post-translational levels. Here we review our current knowledge on some aspects of the 'non-genomic' regulation of auxin transport, placing an emphasis on how phosphorylation by protein and lipid kinases controls the polarity, intracellular trafficking, stability, and activity of auxin carriers. We describe the role of several AGC kinases, including PINOID, D6PK, and the blue light photoreceptor phot1, in phosphorylating auxin carriers from the PIN and ABCB families. We also highlight the function of some receptor-like kinases (RLKs) and two-component histidine kinase receptors in PAT, noting that there are probably RLKs involved in co-ordinating auxin distribution yet to be discovered. In addition, we describe the emerging role of phospholipid phosphorylation in polarity establishment and intracellular trafficking of PIN proteins. We outline these various phosphorylation mechanisms in the context of primary and lateral root development, leaf cell shape acquisition, as well as root gravitropism and shoot phototropism.


Subject(s)
Indoleacetic Acids/metabolism , Phosphotransferases/physiology , Plant Growth Regulators/metabolism , Protein Kinases/physiology , Biological Transport/physiology , Body Patterning/physiology , Lipids/physiology , Phosphorylation , Phosphotransferases/metabolism , Plant Development/physiology , Plant Growth Regulators/physiology , Protein Kinases/metabolism
7.
Plant J ; 78(3): 411-23, 2014 May.
Article in English | MEDLINE | ID: mdl-24547808

ABSTRACT

We have previously reported that CK2-defective Arabidopsis thaliana plants (CK2mut plants) were impaired severely in root development and auxin polar transport, and exhibited transcriptional misregulation of auxin-efflux transporters (Plant J., 67, 2011a, 169). In this work we show that CK2mut roots accumulate high levels of salicylic acid (SA) and that the gene that encodes isochorismate synthase (SID2) is overexpressed, strongly suggesting that CK2 activity is required for SA biosynthesis via the shikimate pathway. Moreover, SA activates transcription of CK2-encoding genes and, thus, SA and CK2 appear to be part of an autoregulatory feed-back loop to fine-tune each other's activities. We also show that exogenous SA and constitutive high SA levels in cpr mutants reproduce the CK2mut root phenotypes (decrease of root length and of number of lateral roots), whereas inhibition of CK2 activity in SA-defective and SA-signalling mutants lead to less severe phenotypes, suggesting that the CK2mut root phenotypes are SA-mediated effects. Moreover, exogenous SA mediates transcriptional repression of most of PIN-FORMED (PIN) genes, which is the opposite effect observed in CK2mut roots. These results prompted us to propose a model in which CK2 acts as a link between SA homeostasis and transcriptional regulation of auxin-efflux transporters. We also show that CK2 overexpression in Arabidopsis has neither impact on SA biosynthesis nor on auxin transport, but it improves the Arabidopsis root system. Thus, unlike the outcome in mammals, an excess of CK2 in plant cells does not produce neoplasia, but it might be advantageous for plant fitness.


Subject(s)
Arabidopsis Proteins/genetics , Casein Kinase II/genetics , Plant Roots/growth & development , Salicylic Acid/metabolism , Arabidopsis Proteins/metabolism , Casein Kinase II/metabolism , Gene Expression Regulation, Plant , Indoleacetic Acids/metabolism , Membrane Transport Proteins/genetics , Membrane Transport Proteins/metabolism , Mutation , Plant Roots/genetics , Plants, Genetically Modified , Promoter Regions, Genetic , Protein Serine-Threonine Kinases/genetics , Protein Serine-Threonine Kinases/metabolism , Seedlings/genetics , Seedlings/metabolism , Signal Transduction/physiology
8.
Plant J ; 71(4): 627-38, 2012 Aug.
Article in English | MEDLINE | ID: mdl-22487192

ABSTRACT

The multifunctional protein kinase CK2 is involved in several aspects of the DNA damage response (DDR) in mammals. To gain insight into the role of CK2 in plant genome maintenance, we studied the response to genotoxic agents of an Arabidopsis CK2 dominant-negative mutant (CK2mut plants). CK2mut plants were hypersensitive to a wide range of genotoxins that produce a variety of DNA lesions. However, they were able to activate the DDR after exposure to γ irradiation, as shown by accumulation of phosphorylated histone H2AX and up-regulation of sets of radio-modulated genes. Moreover, functional assays showed that mutant plants quickly repair the DNA damage produced by genotoxins, and that they exhibit preferential use of non-conservative mechanisms, which may explain plant lethality. The chromatin of CK2mut plants was more sensitive to digestion with micrococcal nuclease, suggesting compaction changes that agreed with the transcriptional changes detected for a number of genes involved in chromatin structure. Furthermore, CK2mut plants were prone to transcriptional gene silencing release upon genotoxic stress. Our results suggest that CK2 is required in the maintenance and control of genomic stability and chromatin structure in plants, and that this process affects several functions, including the DNA damage response and DNA repair.


Subject(s)
Arabidopsis Proteins/genetics , Arabidopsis/genetics , Arabidopsis/radiation effects , Casein Kinase II/genetics , DNA Repair/genetics , Arabidopsis/drug effects , Arabidopsis/metabolism , Arabidopsis Proteins/metabolism , Casein Kinase II/metabolism , Chromatin/chemistry , Chromatin/metabolism , Cyclin B/genetics , Cyclin B/metabolism , DNA/metabolism , DNA Damage/genetics , DNA Damage/radiation effects , Dexamethasone/toxicity , Gene Expression Regulation, Plant/radiation effects , Genomic Instability , Histones/metabolism , Homologous Recombination , Micrococcal Nuclease/metabolism , Mutagens/toxicity , Mutation , Phosphorylation/radiation effects , Plants, Genetically Modified , RNA Interference , Radiation, Ionizing , Seedlings/genetics , Seedlings/radiation effects
9.
Sci Adv ; 8(46): eabq6971, 2022 11 18.
Article in English | MEDLINE | ID: mdl-36383676

ABSTRACT

Controlled primary cell wall remodeling allows plant growth under stressful conditions, but how these changes are conveyed to adjust cellulose synthesis is not understood. Here, we identify the TETRATRICOPEPTIDE THIOREDOXIN-LIKE (TTL) proteins as new members of the cellulose synthase complex (CSC) and describe their unique and hitherto unknown dynamic association with the CSC under cellulose-deficient conditions. We find that TTLs are essential for maintaining cellulose synthesis under high-salinity conditions, establishing a stress-resilient cortical microtubule array, and stabilizing CSCs at the plasma membrane. To fulfill these functions, TTLs interact with CELLULOSE SYNTHASE 1 (CESA1) and engage with cortical microtubules to promote their polymerization. We propose that TTLs function as bridges connecting stress perception with dynamic regulation of cellulose biosynthesis at the plasma membrane.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Arabidopsis/metabolism , Microtubules/metabolism , Cell Membrane/metabolism , Cellulose/metabolism , Membrane Proteins/metabolism
10.
Elife ; 112022 08 31.
Article in English | MEDLINE | ID: mdl-36044021

ABSTRACT

Membrane lipids, and especially phosphoinositides, are differentially enriched within the eukaryotic endomembrane system. This generates a landmark code by modulating the properties of each membrane. Phosphatidylinositol 4,5-bisphosphate [PI(4,5)P2] specifically accumulates at the plasma membrane in yeast, animal, and plant cells, where it regulates a wide range of cellular processes including endocytic trafficking. However, the functional consequences of mispatterning PI(4,5)P2 in plants are unknown. Here, we functionally characterized the putative phosphoinositide phosphatase SUPPRESSOR OF ACTIN9 (SAC9) in Arabidopsis thaliana (Arabidopsis). We found that SAC9 depletion led to the ectopic localization of PI(4,5)P2 on cortical intracellular compartments, which depends on PI4P and PI(4,5)P2 production at the plasma membrane. SAC9 localizes to a subpopulation of trans-Golgi Network/early endosomes that are enriched in a region close to the cell cortex and that are coated with clathrin. Furthermore, it interacts and colocalizes with Src Homology 3 Domain Protein 2 (SH3P2), a protein involved in endocytic trafficking. In the absence of SAC9, SH3P2 localization is altered and the clathrin-mediated endocytosis rate is reduced. Together, our results highlight the importance of restricting PI(4,5)P2 at the plasma membrane and illustrate that one of the consequences of PI(4,5)P2 misspatterning in plants is to impact the endocytic trafficking.


Subject(s)
Arabidopsis , Animals , Arabidopsis/genetics , Arabidopsis/metabolism , Cell Membrane/metabolism , Clathrin/metabolism , Endocytosis , Endosomes/metabolism , Phosphatidylinositol 4,5-Diphosphate/metabolism , Phosphatidylinositols/metabolism , Transport Vesicles/metabolism
11.
Mol Cell Biochem ; 356(1-2): 233-40, 2011 Oct.
Article in English | MEDLINE | ID: mdl-21739152

ABSTRACT

Despite increasing progress in the study of CK2 activity in plants, a clear understanding of its functional role remains elusive. The high pleiotropic nature of the enzyme, the fact that it is absolutely necessary to maintain life, and the existence of multiple isoforms have made it difficult to obtain loss-of-function mutants with which to study the impact of CK2 depletion in the organisms. To avoid all these difficulties, we have used a dominant-negative mutant approach, by constructing a CK2α kinase-inactive subunit (CKA3mut) that was cloned downstream of an inducible promoter. Stably transformed Arabidopsis plants showed that longtime inductions of the transgene were lethal, causing growth and development arrests and ultimately resulting in plant death. However, short-time inductions were not lethal and revealed broad phenotypical changes that uncovered novel functions of CK2 in plants. The high pleiotropy of CK2 was sustained by analysis of global transcript profiles that showed a huge number of genes affected, involved in a wide variety of cellular processes.


Subject(s)
Arabidopsis/enzymology , Casein Kinase II/metabolism , Signal Transduction , Arabidopsis/cytology , Arabidopsis/genetics , Casein Kinase II/genetics , Cell Cycle , Gene Expression Profiling , Gene Expression Regulation, Plant , Genes, Dominant/genetics , Mutation/genetics , Phenotype , Plant Cells/enzymology , RNA, Messenger/genetics , RNA, Messenger/metabolism
12.
Curr Biol ; 31(1): 228-237.e10, 2021 01 11.
Article in English | MEDLINE | ID: mdl-33157019

ABSTRACT

Plants are able to orient their growth according to gravity, which ultimately controls both shoot and root architecture.1 Gravitropism is a dynamic process whereby gravistimulation induces the asymmetric distribution of the plant hormone auxin, leading to asymmetric growth, organ bending, and subsequent reset of auxin distribution back to the original pre-gravistimulation situation.1-3 Differential auxin accumulation during the gravitropic response depends on the activity of polarly localized PIN-FORMED (PIN) auxin-efflux carriers.1-4 In particular, the timing of this dynamic response is regulated by PIN2,5,6 but the underlying molecular mechanisms are poorly understood. Here, we show that MEMBRANE ASSOCIATED KINASE REGULATOR2 (MAKR2) controls the pace of the root gravitropic response. We found that MAKR2 is required for the PIN2 asymmetry during gravitropism by acting as a negative regulator of the cell-surface signaling mediated by the receptor-like kinase TRANSMEMBRANE KINASE1 (TMK1).2,7-10 Furthermore, we show that the MAKR2 inhibitory effect on TMK1 signaling is antagonized by auxin itself, which triggers rapid MAKR2 membrane dissociation in a TMK1-dependent manner. Our findings suggest that the timing of the root gravitropic response is orchestrated by the reversible inhibition of the TMK1 signaling pathway at the cell surface.


Subject(s)
Arabidopsis Proteins/metabolism , Gravitropism/physiology , Indoleacetic Acids/metabolism , Membrane Proteins/metabolism , Plant Roots/growth & development , Protein Serine-Threonine Kinases/metabolism , Arabidopsis Proteins/antagonists & inhibitors , Arabidopsis Proteins/genetics , Gain of Function Mutation , Gravitation , Loss of Function Mutation , Membrane Proteins/antagonists & inhibitors , Membrane Proteins/genetics , Plants, Genetically Modified , Protein Serine-Threonine Kinases/antagonists & inhibitors , Protein Serine-Threonine Kinases/genetics , Signal Transduction/physiology
13.
Science ; 364(6435): 57-62, 2019 04 05.
Article in English | MEDLINE | ID: mdl-30948546

ABSTRACT

Rho guanosine triphosphatases (GTPases) are master regulators of cell signaling, but how they are regulated depending on the cellular context is unclear. We found that the phospholipid phosphatidylserine acts as a developmentally controlled lipid rheostat that tunes Rho GTPase signaling in Arabidopsis Live superresolution single-molecule imaging revealed that the protein Rho of Plants 6 (ROP6) is stabilized by phosphatidylserine into plasma membrane nanodomains, which are required for auxin signaling. Our experiments also revealed that the plasma membrane phosphatidylserine content varies during plant root development and that the level of phosphatidylserine modulates the quantity of ROP6 nanoclusters induced by auxin and hence downstream signaling, including regulation of endocytosis and gravitropism. Our work shows that variations in phosphatidylserine levels are a physiological process that may be leveraged to regulate small GTPase signaling during development.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/enzymology , Arabidopsis/growth & development , Monomeric GTP-Binding Proteins/metabolism , Phosphatidylserines/metabolism , Arabidopsis/drug effects , Arabidopsis/genetics , Arabidopsis Proteins/genetics , Cell Membrane/chemistry , Cell Membrane/metabolism , Endocytosis/genetics , Gene Expression Regulation, Plant , Gravitropism/genetics , Indoleacetic Acids/metabolism , Monomeric GTP-Binding Proteins/genetics , Phosphatidylserines/pharmacology , Plant Roots/enzymology , Plant Roots/genetics , Plant Roots/growth & development , Signal Transduction , Single Molecule Imaging
14.
Dev Cell ; 45(4): 465-480.e11, 2018 05 21.
Article in English | MEDLINE | ID: mdl-29754803

ABSTRACT

Membrane surface charge is critical for the transient, yet specific recruitment of proteins with polybasic regions to certain organelles. In eukaryotes, the plasma membrane (PM) is the most electronegative compartment of the cell, which specifies its identity. As such, membrane electrostatics is a central parameter in signaling, intracellular trafficking, and polarity. Here, we explore which are the lipids that control membrane electrostatics using plants as a model. We show that phosphatidylinositol-4-phosphate (PI4P), phosphatidic acidic (PA), and phosphatidylserine (PS) are separately required to generate the electrostatic signature of the plant PM. In addition, we reveal the existence of an electrostatic territory that is organized as a gradient along the endocytic pathway and is controlled by PS/PI4P combination. Altogether, we propose that combinatorial lipid composition of the cytosolic leaflet of organelles not only defines the electrostatic territory but also distinguishes different functional compartments within this territory by specifying their varying surface charges.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/metabolism , Cell Membrane/metabolism , Phosphatidic Acids/metabolism , Phosphatidylinositol Phosphates/metabolism , Phosphatidylserines/metabolism , Static Electricity , Arabidopsis/growth & development , Organelles , Plant Roots/growth & development , Plant Roots/metabolism , Signal Transduction
15.
PLoS One ; 11(6): e0157168, 2016.
Article in English | MEDLINE | ID: mdl-27275924

ABSTRACT

The protein kinase CK2 is a ubiquitous and highly conserved enzyme, the activity of which is vital for eukaryotic cells. We recently demonstrated that CK2 modulates salicylic acid (SA) homeostasis in Arabidopsis thaliana, and that functional interplay between CK2 and SA sustains transcriptional expression of PIN-FORMED (PIN) genes. In this work, we show that CK2 also plays a key role in the transcriptional regulation of PINOID (PID), an AGC protein kinase that modulates the apical/basal localization of auxin-efflux transporters. We show that PID transcription is up-regulated by auxin and by SA and that CK2 is involved in both pathways. On the one hand, CK2 activity is required for proteosome-dependent degradation of AXR3, a member of the AUX/IAA family of auxin transcriptional repressors that must be degraded to activate auxin-responsive gene expression. On the other hand, the role of CK2 in SA homeostasis and, indirectly, in SA-driven PID transcription, was confirmed by using Arabidopsis NahG transgenic plants, which cannot accumulate SA. In conclusion, our results evidence a role for CK2 as a functional link in the negative cross-talk between auxin- and SA-signaling.


Subject(s)
Arabidopsis Proteins/biosynthesis , Arabidopsis/metabolism , Casein Kinase II/metabolism , Indoleacetic Acids/metabolism , Protein Serine-Threonine Kinases/biosynthesis , Salicylic Acid/metabolism , Signal Transduction/physiology , Transcription, Genetic/physiology , Arabidopsis/genetics , Arabidopsis Proteins/genetics , Casein Kinase II/genetics , Gene Expression Regulation, Enzymologic/physiology , Gene Expression Regulation, Plant/physiology , Mixed Function Oxygenases/biosynthesis , Mixed Function Oxygenases/genetics , Nuclear Proteins/biosynthesis , Nuclear Proteins/genetics , Plants, Genetically Modified/genetics , Plants, Genetically Modified/metabolism , Protein Serine-Threonine Kinases/genetics , Transcription Factors , Up-Regulation/physiology
16.
Nat Plants ; 2: 16089, 2016 06 20.
Article in English | MEDLINE | ID: mdl-27322096

ABSTRACT

Many signalling proteins permanently or transiently localize to specific organelles. It is well established that certain lipids act as biochemical landmarks to specify compartment identity. However, they also influence membrane biophysical properties, which emerge as important features in specifying cellular territories. Such parameters include the membrane inner surface potential, which varies according to the lipid composition of each organelle. Here, we found that the plant plasma membrane (PM) and the cell plate of dividing cells have a unique electrostatic signature controlled by phosphatidylinositol-4-phosphate (PtdIns(4)P). Our results further reveal that, contrarily to other eukaryotes, PtdIns(4)P massively accumulates at the PM, establishing it as a critical hallmark of this membrane in plants. Membrane surface charges control the PM localization and function of the polar auxin transport regulator PINOID as well as proteins from the BRI1 KINASE INHIBITOR1 (BKI1)/MEMBRANE ASSOCIATED KINASE REGULATOR (MAKR) family, which are involved in brassinosteroid and receptor-like kinase signalling. We anticipate that this PtdIns(4)P-driven physical membrane property will control the localization and function of many proteins involved in development, reproduction, immunity and nutrition.


Subject(s)
Arabidopsis/physiology , Cell Membrane/metabolism , Phosphatidylinositol Phosphates/metabolism , Signal Transduction , Biophysical Phenomena , Plant Growth Regulators/genetics , Plant Growth Regulators/metabolism , Plant Proteins/genetics , Plant Proteins/metabolism
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