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1.
Dev Cell ; 59(9): 1091-1093, 2024 May 06.
Article in English | MEDLINE | ID: mdl-38714155

ABSTRACT

Polar localization of proteins is important for plant growth and development. Identifying the interactors of polarized proteins provides spatial information and cell-type functions. In this issue of Developmental Cell, Wallner et al. (2024) utilize opposing polarity domain proteins to identify interactors and their functions during cell division in Arabidopsis stomata.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Cell Division , Cell Polarity , Plant Development , Cell Polarity/physiology , Cell Division/physiology , Arabidopsis/metabolism , Arabidopsis/growth & development , Arabidopsis/cytology , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Plant Development/physiology
2.
Nat Commun ; 15(1): 3895, 2024 May 08.
Article in English | MEDLINE | ID: mdl-38719832

ABSTRACT

Growth at the shoot apical meristem (SAM) is essential for shoot architecture construction. The phytohormones gibberellins (GA) play a pivotal role in coordinating plant growth, but their role in the SAM remains mostly unknown. Here, we developed a ratiometric GA signaling biosensor by engineering one of the DELLA proteins, to suppress its master regulatory function in GA transcriptional responses while preserving its degradation upon GA sensing. We demonstrate that this degradation-based biosensor accurately reports on cellular changes in GA levels and perception during development. We used this biosensor to map GA signaling activity in the SAM. We show that high GA signaling is found primarily in cells located between organ primordia that are the precursors of internodes. By gain- and loss-of-function approaches, we further demonstrate that GAs regulate cell division plane orientation to establish the typical cellular organization of internodes, thus contributing to internode specification in the SAM.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Biosensing Techniques , Gene Expression Regulation, Plant , Gibberellins , Meristem , Signal Transduction , Gibberellins/metabolism , Meristem/metabolism , Meristem/growth & development , Arabidopsis/metabolism , Arabidopsis/growth & development , Arabidopsis/genetics , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Plant Growth Regulators/metabolism , Plant Shoots/metabolism , Plant Shoots/growth & development , Plants, Genetically Modified
3.
Plant Cell Rep ; 43(5): 135, 2024 May 05.
Article in English | MEDLINE | ID: mdl-38704787

ABSTRACT

KEY MESSAGE: The disruption of the SWL1 gene leads to a significant down regulation of chloroplast and secondary metabolites gene expression in Arabidopsis thaliana. And finally results in a dysfunction of chloroplast and plant growth. Although the development of the chloroplast has been a consistent focus of research, the corresponding regulatory mechanisms remain unidentified. In this study, the CRISPR/Cas9 system was used to mutate the SWL1 gene, resulting in albino cotyledons and variegated true leaf phenotype. Confocal microscopy and western blot of chloroplast protein fractions revealed that SWL1 localized in the chloroplast stroma. Electron microscopy indicated chloroplasts in the cotyledons of swl1 lack well-defined grana and internal membrane structures, and similar structures have been detected in the albino region of variegated true leaves. Transcriptome analysis revealed that down regulation of chloroplast and nuclear gene expression related to chloroplast, including light harvesting complexes, porphyrin, chlorophyll metabolism and carbon metabolism in the swl1 compared to wild-type plant. In addition, proteomic analysis combined with western blot analysis, showed that a significant decrease in chloroplast proteins of swl1. Furthermore, the expression of genes associated with secondary metabolites and growth hormones was also reduced, which may be attributed to SWL1 associated with absorption and fixation of inorganic carbon during chloroplast development. Together, the above findings provide valuable information to elucidate the exact function of SWL1 in chloroplast biogenesis and development.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Chloroplasts , Gene Expression Regulation, Plant , Arabidopsis/genetics , Arabidopsis/growth & development , Arabidopsis/metabolism , Chloroplasts/metabolism , Chloroplasts/ultrastructure , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Plant Leaves/genetics , Plant Leaves/metabolism , Plant Leaves/growth & development , Plant Leaves/ultrastructure , Cotyledon/genetics , Cotyledon/metabolism , Cotyledon/growth & development , Proteomics , Chloroplast Proteins/metabolism , Chloroplast Proteins/genetics , Organelle Biogenesis , Chlorophyll/metabolism , CRISPR-Cas Systems
4.
Plant Signal Behav ; 19(1): 2358684, 2024 Dec 31.
Article in English | MEDLINE | ID: mdl-38805453

ABSTRACT

Adjusting the timing of floral transition is essential for reproductive success in plants. A number of flowering regulators integrate internal and external signals to precisely determine the time to flower. We here report that the AGAMOUS-LIKE 6 (AGL6) - EARLY FLOWERING 3 (ELF3) module regulates flowering in the FLOWERING LOCUS T (FT)-dependent pathway in Arabidopsis. The AGL6 transcriptional repressor promotes floral transition by directly suppressing ELF3, which in turn directly represses FT expression that acts as a floral integrator. Indeed, ELF3 is epistatic to AGL6 in the control of floral transition. Overall, our findings propose that the AGL6-ELF3 module contributes to fine-tuning flowering time in plants.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Flowers , Gene Expression Regulation, Plant , Transcription Factors , Arabidopsis/genetics , Arabidopsis/physiology , Arabidopsis/growth & development , Arabidopsis/metabolism , Flowers/genetics , Flowers/growth & development , Flowers/physiology , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Transcription Factors/metabolism , Transcription Factors/genetics , MADS Domain Proteins/genetics , MADS Domain Proteins/metabolism , Time Factors , DNA-Binding Proteins/genetics , DNA-Binding Proteins/metabolism
5.
Plant Mol Biol ; 114(3): 64, 2024 May 29.
Article in English | MEDLINE | ID: mdl-38809410

ABSTRACT

Pollen tube growth is an essential step leading to reproductive success in flowering plants, in which vesicular trafficking plays a key role. Vesicular trafficking from endoplasmic reticulum to the Golgi apparatus is mediated by the coat protein complex II (COPII). A key component of COPII is small GTPase Sar1. Five Sar1 isoforms are encoded in the Arabidopsis genome and they show distinct while redundant roles in various cellular and developmental processes, especially in reproduction. Arabidopsis Sar1b is essential for sporophytic control of pollen development while Sar1b and Sar1c are critical for gametophytic control of pollen development. Because functional loss of Sar1b and Sar1c resulted in pollen abortion, whether they influence pollen tube growth was unclear. Here we demonstrate that Sar1b mediates pollen tube growth, in addition to its role in pollen development. Although functional loss of Sar1b does not affect pollen germination, it causes a significant reduction in male transmission and of pollen tube penetration of style. We further show that membrane dynamics at the apex of pollen tubes are compromised by Sar1b loss-of-function. Results presented provide further support of functional complexity of the Sar1 isoforms.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Pollen Tube , Arabidopsis/genetics , Arabidopsis/growth & development , Arabidopsis/metabolism , Pollen Tube/growth & development , Pollen Tube/metabolism , Pollen Tube/genetics , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Monomeric GTP-Binding Proteins/metabolism , Monomeric GTP-Binding Proteins/genetics , Gene Expression Regulation, Plant , Pollen/growth & development , Pollen/genetics , Pollen/metabolism , Plants, Genetically Modified , Germination/genetics
6.
Plant Signal Behav ; 19(1): 2353536, 2024 Dec 31.
Article in English | MEDLINE | ID: mdl-38771929

ABSTRACT

Cellular behavior, cell differentiation and ontogenetic development in eukaryotes result from complex interactions between epigenetic and classic molecular genetic mechanisms, with many of these interactions still to be elucidated. Histone deacetylase enzymes (HDACs) promote the interaction of histones with DNA by compacting the nucleosome, thus causing transcriptional repression. MADS-domain transcription factors are highly conserved in eukaryotes and participate in controlling diverse developmental processes in animals and plants, as well as regulating stress responses in plants. In this work, we focused on finding out putative interactions of Arabidopsis thaliana HDACs and MADS-domain proteins using an evolutionary perspective combined with bioinformatics analyses and testing the more promising predicted interactions through classic molecular biology tools. Through bioinformatic analyses, we found similarities between HDACs proteins from different organisms, which allowed us to predict a putative protein-protein interaction between the Arabidopsis thaliana deacetylase HDA15 and the MADS-domain protein XAANTAL1 (XAL1). The results of two-hybrid and Bimolecular Fluorescence Complementation analysis demonstrated in vitro and in vivo HDA15-XAL1 interaction in the nucleus. Likely, this interaction might regulate developmental processes in plants as is the case for this type of interaction in animals.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Histone Deacetylases , MADS Domain Proteins , Arabidopsis/metabolism , Arabidopsis/genetics , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Histone Deacetylases/metabolism , Histone Deacetylases/genetics , MADS Domain Proteins/metabolism , MADS Domain Proteins/genetics , Protein Binding , Two-Hybrid System Techniques
7.
Nat Commun ; 15(1): 3779, 2024 May 06.
Article in English | MEDLINE | ID: mdl-38710684

ABSTRACT

The α-Aurora kinase is a crucial regulator of spindle microtubule organization during mitosis in plants. Here, we report a post-mitotic role for α-Aurora in reorganizing the phragmoplast microtubule array. In Arabidopsis thaliana, α-Aurora relocated from spindle poles to the phragmoplast midzone, where it interacted with the microtubule cross-linker MAP65-3. In a hypomorphic α-Aurora mutant, MAP65-3 was detected on spindle microtubules, followed by a diffuse association pattern across the phragmoplast midzone. Simultaneously, phragmoplast microtubules remained belatedly in a solid disk array before transitioning to a ring shape. Microtubules at the leading edge of the matured phragmoplast were often disengaged, accompanied by conspicuous retentions of MAP65-3 at the phragmoplast interior edge. Specifically, α-Aurora phosphorylated two residues towards the C-terminus of MAP65-3. Mutation of these residues to alanines resulted in an increased association of MAP65-3 with microtubules within the phragmoplast. Consequently, the expansion of the phragmoplast was notably slower compared to wild-type cells or cells expressing a phospho-mimetic variant of MAP65-3. Moreover, mimicking phosphorylation reinstated disrupted MAP65-3 behaviors in plants with compromised α-Aurora function. Overall, our findings reveal a mechanism in which α-Aurora facilitates cytokinesis progression through phosphorylation-dependent restriction of MAP65-3 associating with microtubules at the phragmoplast midzone.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Cytokinesis , Microtubule-Associated Proteins , Microtubules , Arabidopsis/metabolism , Arabidopsis/genetics , Microtubules/metabolism , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Microtubule-Associated Proteins/metabolism , Microtubule-Associated Proteins/genetics , Phosphorylation , Mutation , Spindle Apparatus/metabolism , Protein Serine-Threonine Kinases/metabolism , Protein Serine-Threonine Kinases/genetics , Plants, Genetically Modified , Mitosis
8.
Nat Plants ; 10(5): 798-814, 2024 May.
Article in English | MEDLINE | ID: mdl-38714768

ABSTRACT

Phytochrome A (phyA) is the plant far-red (FR) light photoreceptor and plays an essential role in regulating photomorphogenic development in FR-rich conditions, such as canopy shade. It has long been observed that phyA is a phosphoprotein in vivo; however, the protein kinases that could phosphorylate phyA remain largely unknown. Here we show that a small protein kinase family, consisting of four members named PHOTOREGULATORY PROTEIN KINASES (PPKs) (also known as MUT9-LIKE KINASES), directly phosphorylate phyA in vitro and in vivo. In addition, TANDEM ZINC-FINGER/PLUS3 (TZP), a recently characterized phyA-interacting protein required for in vivo phosphorylation of phyA, is also directly phosphorylated by PPKs. We reveal that TZP contains two intrinsically disordered regions in its amino-terminal domain that undergo liquid-liquid phase separation (LLPS) upon light exposure. The LLPS of TZP promotes colocalization and interaction between PPKs and phyA, thus facilitating PPK-mediated phosphorylation of phyA in FR light. Our study identifies PPKs as a class of protein kinases mediating the phosphorylation of phyA and demonstrates that the LLPS of TZP contributes significantly to more production of the phosphorylated phyA form in FR light.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Phytochrome A , Phosphorylation , Phytochrome A/metabolism , Phytochrome A/genetics , Arabidopsis/metabolism , Arabidopsis/genetics , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Protein Kinases/metabolism , Protein Kinases/genetics , Phase Separation
11.
Sci Adv ; 10(20): eadn0895, 2024 May 17.
Article in English | MEDLINE | ID: mdl-38758793

ABSTRACT

SUCROSE-NON-FERMENTING1-RELATED PROTEIN KINASE1 (SnRK1), a central plant metabolic sensor kinase, phosphorylates its target proteins, triggering a global shift from anabolism to catabolism. Molecular modeling revealed that upon binding of KIN10 to GEMINIVIRUS REP-INTERACTING KINASE1 (GRIK1), KIN10's activation T-loop reorients into GRIK1's active site, enabling its phosphorylation and activation. Trehalose 6-phosphate (T6P) is a proxy for cellular sugar status and a potent inhibitor of SnRK1. T6P binds to KIN10, a SnRK1 catalytic subunit, weakening its affinity for GRIK1. Here, we investigate the molecular details of T6P inhibition of KIN10. Molecular dynamics simulations and in vitro phosphorylation assays identified and validated the T6P binding site on KIN10. Under high-sugar conditions, T6P binds to KIN10, blocking the reorientation of its activation loop and preventing its phosphorylation and activation by GRIK1. Under these conditions, SnRK1 maintains only basal activity levels, minimizing phosphorylation of its target proteins, thereby facilitating a general shift from catabolism to anabolism.


Subject(s)
Arabidopsis Proteins , Molecular Dynamics Simulation , Protein Serine-Threonine Kinases , Sugar Phosphates , Trehalose , Sugar Phosphates/metabolism , Trehalose/analogs & derivatives , Trehalose/metabolism , Protein Serine-Threonine Kinases/metabolism , Phosphorylation , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Arabidopsis Proteins/antagonists & inhibitors , Arabidopsis Proteins/chemistry , Protein Binding , Arabidopsis/metabolism , Binding Sites , Transcription Factors
12.
Plant Mol Biol ; 114(3): 56, 2024 May 14.
Article in English | MEDLINE | ID: mdl-38743198

ABSTRACT

Most eukaryotic organisms employ a telomerase complex for the maintenance of chromosome ends. The core of this complex is composed of telomerase reverse transcriptase (TERT) and telomerase RNA (TR) subunits. The TERT reverse transcriptase (RT) domain synthesises telomeric DNA using the TR template sequence. The other TERT domains contribute to this process in different ways. In particular, the TERT RNA-binding domain (TRBD) interacts with specific TR motif(s). Using a yeast 3-hybrid system, we show the critical role of Arabidopsis thaliana (At) TRBD and embryophyta-conserved KRxR motif in the unstructured linker preceding the TRBD domain for binding to the recently identified AtTR subunit. We also show the essential role of the predicted P4 stem and pseudoknot AtTR structures and provide evidence for the binding of AtTRBD to pseudoknot and KRxR motif stabilising interaction with the P4 stem structure. Our results thus provide the first insight into the core part of the plant telomerase complex.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Telomerase , Telomerase/genetics , Telomerase/metabolism , Telomerase/chemistry , Arabidopsis/genetics , Arabidopsis/enzymology , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/chemistry , RNA/metabolism , RNA/genetics , Two-Hybrid System Techniques , RNA, Plant/genetics , RNA, Plant/metabolism , Nucleic Acid Conformation , Protein Binding
13.
Commun Biol ; 7(1): 561, 2024 May 11.
Article in English | MEDLINE | ID: mdl-38734744

ABSTRACT

The WRKY transcription factors play essential roles in a variety of plant signaling pathways associated with biotic and abiotic stress response. The transcriptional activity of many WRKY members are regulated by a class of intrinsically disordered VQ proteins. While it is known that VQ proteins interact with the WRKY DNA-binding domains (DBDs), also termed as the WRKY domains, structural information regarding VQ-WRKY interaction is lacking and the regulation mechanism remains unknown. Herein we report a solution NMR study of the interaction between Arabidopsis WRKY33 and its regulatory VQ protein partner SIB1. We uncover a SIB1 minimal sequence neccessary for forming a stable complex with WRKY33 DBD, which comprises not only the consensus "FxxhVQxhTG" VQ motif but also its preceding region. We demonstrate that the ßN-strand and the extended ßN-ß1 loop of WRKY33 DBD form the SIB1 docking site, and build a structural model of the complex based on the NMR paramagnetic relaxation enhancement and mutagenesis data. Based on this model, we further identify a cluster of positively-charged residues in the N-terminal region of SIB1 to be essential for the formation of a SIB1-WRKY33-DNA ternary complex. These results provide a framework for the mechanism of SIB1-enhanced WRKY33 transcriptional activity.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Transcription Factors , Transcription Factors/metabolism , Transcription Factors/chemistry , Transcription Factors/genetics , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Arabidopsis Proteins/chemistry , Arabidopsis/genetics , Arabidopsis/metabolism , Gene Expression Regulation, Plant , Protein Binding , Models, Molecular , Amino Acid Sequence , Protein Domains
14.
Physiol Plant ; 176(3): e14340, 2024.
Article in English | MEDLINE | ID: mdl-38741259

ABSTRACT

Malate dehydrogenases (MDHs) catalyze a reversible NAD(P)-dependent-oxidoreductase reaction that plays an important role in central metabolism and redox homeostasis of plant cells. Recent studies suggest a moonlighting function of plastidial NAD-dependent MDH (plNAD-MDH; EC 1.1.1.37) in plastid biogenesis, independent of its enzyme activity. In this study, redox effects on activity and conformation of recombinant plNAD-MDH from Arabidopsis thaliana were investigated. We show that reduced plNAD-MDH is active while it is inhibited upon oxidation. Interestingly, the presence of its cofactors NAD+ and NADH could prevent oxidative inhibition of plNAD-MDH. In addition, a conformational change upon oxidation could be observed via non-reducing SDS-PAGE. Both effects, its inhibition and conformational change, were reversible by re-reduction. Further investigation of single cysteine substitutions and mass spectrometry revealed that oxidation of plNAD-MDH leads to oxidation of all four cysteine residues. However, cysteine oxidation of C129 leads to inhibition of plNAD-MDH activity and oxidation of C147 induces its conformational change. In contrast, oxidation of C190 and C333 does not affect plNAD-MDH activity or structure. Our results demonstrate that plNAD-MDH activity can be reversibly inhibited, but not inactivated, by cysteine oxidation and might be co-regulated by the availability of its cofactors in vivo.


Subject(s)
Arabidopsis , Cysteine , Malate Dehydrogenase , NAD , Oxidation-Reduction , Plastids , Arabidopsis/enzymology , Arabidopsis/genetics , Arabidopsis/metabolism , Cysteine/metabolism , Malate Dehydrogenase/metabolism , Malate Dehydrogenase/genetics , Plastids/metabolism , Plastids/enzymology , NAD/metabolism , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Recombinant Proteins/metabolism , Recombinant Proteins/genetics
15.
PLoS Biol ; 22(5): e3002592, 2024 May.
Article in English | MEDLINE | ID: mdl-38691548

ABSTRACT

Stomata are pores on plant aerial surfaces, each bordered by a pair of guard cells. They control gas exchange vital for plant survival. Understanding how guard cells respond to environmental signals such as atmospheric carbon dioxide (CO2) levels is not only insightful to fundamental biology but also relevant to real-world issues of crop productivity under global climate change. In the past decade, multiple important signaling elements for stomatal closure induced by elevated CO2 have been identified. Yet, there is no comprehensive understanding of high CO2-induced stomatal closure. In this work, we assemble a cellular signaling network underlying high CO2-induced stomatal closure by integrating evidence from a comprehensive literature analysis. We further construct a Boolean dynamic model of the network, which allows in silico simulation of the stomatal closure response to high CO2 in wild-type Arabidopsis thaliana plants and in cases of pharmacological or genetic manipulation of network nodes. Our model has a 91% accuracy in capturing known experimental observations. We perform network-based logical analysis and reveal a feedback core of the network, which dictates cellular decisions in closure response to high CO2. Based on these analyses, we predict and experimentally confirm that applying nitric oxide (NO) induces stomatal closure in ambient CO2 and causes hypersensitivity to elevated CO2. Moreover, we predict a negative regulatory relationship between NO and the protein phosphatase ABI2 and find experimentally that NO inhibits ABI2 phosphatase activity. The experimental validation of these model predictions demonstrates the effectiveness of network-based modeling and highlights the decision-making role of the feedback core of the network in signal transduction. We further explore the model's potential in predicting targets of signaling elements not yet connected to the CO2 network. Our combination of network science, in silico model simulation, and experimental assays demonstrates an effective interdisciplinary approach to understanding system-level biology.


Subject(s)
Arabidopsis , Carbon Dioxide , Models, Biological , Plant Stomata , Signal Transduction , Plant Stomata/drug effects , Plant Stomata/metabolism , Plant Stomata/physiology , Carbon Dioxide/metabolism , Carbon Dioxide/pharmacology , Arabidopsis/metabolism , Arabidopsis/genetics , Arabidopsis/physiology , Computer Simulation , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics
16.
Nat Commun ; 15(1): 3978, 2024 May 10.
Article in English | MEDLINE | ID: mdl-38729926

ABSTRACT

A key mechanism employed by plants to adapt to salinity stress involves maintaining ion homeostasis via the actions of ion transporters. While the function of cation transporters in maintaining ion homeostasis in plants has been extensively studied, little is known about the roles of their anion counterparts in this process. Here, we describe a mechanism of salt adaptation in plants. We characterized the chloride channel (CLC) gene AtCLCf, whose expression is regulated by WRKY transcription factor under salt stress in Arabidopsis thaliana. Loss-of-function atclcf seedlings show increased sensitivity to salt, whereas AtCLCf overexpression confers enhanced resistance to salt stress. Salt stress induces the translocation of GFP-AtCLCf fusion protein to the plasma membrane (PM). Blocking AtCLCf translocation using the exocytosis inhibitor brefeldin-A or mutating the small GTPase gene AtRABA1b/BEX5 (RAS GENES FROM RAT BRAINA1b homolog) increases salt sensitivity in plants. Electrophysiology and liposome-based assays confirm the Cl-/H+ antiport function of AtCLCf. Therefore, we have uncovered a mechanism of plant adaptation to salt stress involving the NaCl-induced translocation of AtCLCf to the PM, thus facilitating Cl- removal at the roots, and increasing the plant's salinity tolerance.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Cell Membrane , Chloride Channels , Golgi Apparatus , Salt Stress , Arabidopsis/genetics , Arabidopsis/metabolism , Arabidopsis/physiology , Arabidopsis/drug effects , Cell Membrane/metabolism , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Golgi Apparatus/metabolism , Chloride Channels/metabolism , Chloride Channels/genetics , Gene Expression Regulation, Plant , Protein Transport/drug effects , Salt Tolerance/genetics , Sodium Chloride/pharmacology , Plants, Genetically Modified
17.
Glycobiology ; 34(6)2024 Apr 24.
Article in English | MEDLINE | ID: mdl-38690785

ABSTRACT

Cellulose is an abundant component of plant cell wall matrices, and this para-crystalline polysaccharide is synthesized at the plasma membrane by motile Cellulose Synthase Complexes (CSCs). However, the factors that control CSC activity and motility are not fully resolved. In a targeted chemical screen, we identified the alkylated nojirimycin analog N-Dodecyl Deoxynojirimycin (ND-DNJ) as a small molecule that severely impacts Arabidopsis seedling growth. Previous work suggests that ND-DNJ-related compounds inhibit the biosynthesis of glucosylceramides (GlcCers), a class of glycosphingolipid associated with plant membranes. Our work uncovered major changes in the sphingolipidome of plants treated with ND-DNJ, including reductions in GlcCer abundance and altered acyl chain length distributions. Crystalline cellulose content was also reduced in ND-DNJ-treated plants as well as plants treated with the known GlcCer biosynthesis inhibitor N-[2-hydroxy-1-(4-morpholinylmethyl)-2-phenyl ethyl]-decanamide (PDMP) or plants containing a genetic disruption in GLUCOSYLCERAMIDE SYNTHASE (GCS), the enzyme responsible for sphingolipid glucosylation that results in GlcCer synthesis. Live-cell imaging revealed that CSC speed distributions were reduced upon treatment with ND-DNJ or PDMP, further suggesting an important relationship between glycosylated sphingolipid composition and CSC motility across the plasma membrane. These results indicate that multiple interventions compromising GlcCer biosynthesis disrupt cellulose deposition and CSC motility, suggesting that GlcCers regulate cellulose biosynthesis in plants.


Subject(s)
Arabidopsis , Cellulose , Glucosylceramides , Glucosyltransferases , Arabidopsis/metabolism , Glucosyltransferases/metabolism , Glucosyltransferases/genetics , Cellulose/metabolism , Cellulose/biosynthesis , Glucosylceramides/metabolism , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , 1-Deoxynojirimycin/pharmacology , 1-Deoxynojirimycin/analogs & derivatives , Cell Wall/metabolism
18.
Plant Signal Behav ; 19(1): 2347783, 2024 Dec 31.
Article in English | MEDLINE | ID: mdl-38699898

ABSTRACT

As sessile organisms, plants have evolved complex signaling mechanisms to sense stress and acclimate. This includes the use of reactive oxygen species (ROS) generated during dysfunctional photosynthesis to initiate signaling. One such ROS, singlet oxygen (1O2), can trigger retrograde signaling, chloroplast degradation, and programmed cell death. However, the signaling mechanisms are largely unknown. Several proteins (e.g. PUB4, OXI1, EX1) are proposed to play signaling roles across three Arabidopsis thaliana mutants that conditionally accumulate chloroplast 1O2 (fluorescent in blue light (flu), chlorina 1 (ch1), and plastid ferrochelatase 2 (fc2)). We previously demonstrated that these mutants reveal at least two chloroplast 1O2 signaling pathways (represented by flu and fc2/ch1). Here, we test if the 1O2-accumulating lesion mimic mutant, accelerated cell death 2 (acd2), also utilizes these pathways. The pub4-6 allele delayed lesion formation in acd2 and restored photosynthetic efficiency and biomass. Conversely, an oxi1 mutation had no measurable effect on these phenotypes. acd2 mutants were not sensitive to excess light (EL) stress, yet pub4-6 and oxi1 both conferred EL tolerance within the acd2 background, suggesting that EL-induced 1O2 signaling pathways are independent from spontaneous lesion formation. Thus, 1O2 signaling in acd2 may represent a third (partially overlapping) pathway to control cellular degradation.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Chloroplasts , Mutation , Signal Transduction , Singlet Oxygen , Arabidopsis/genetics , Arabidopsis/metabolism , Singlet Oxygen/metabolism , Chloroplasts/metabolism , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Signal Transduction/genetics , Mutation/genetics , Photosynthesis/genetics
19.
Mol Plant Pathol ; 25(5): e13466, 2024 May.
Article in English | MEDLINE | ID: mdl-38767756

ABSTRACT

The movement of potyviruses, the largest genus of single-stranded, positive-sense RNA viruses responsible for serious diseases in crops, is very complex. As potyviruses developed strategies to hijack the host secretory pathway and plasmodesmata (PD) for their transport, the goal of this study was to identify membrane and/or PD-proteins that interact with the 6K2 protein, a potyviral protein involved in replication and cell-to-cell movement of turnip mosaic virus (TuMV). Using split-ubiquitin membrane yeast two-hybrid assays, we screened an Arabidopsis cDNA library for interactors of TuMV6K2. We isolated AtHVA22a (Hordeum vulgare abscisic acid responsive gene 22), which belongs to a multigenic family of transmembrane proteins, homologous to Receptor expression-enhancing protein (Reep)/Deleted in polyposis (DP1)/Yop1 family proteins in animal and yeast. HVA22/DP1/Yop1 family genes are widely distributed in eukaryotes, but the role of HVA22 proteins in plants is still not well known, although proteomics analysis of PD fractions purified from Arabidopsis suspension cells showed that AtHVA22a is highly enriched in a PD proteome. We confirmed the interaction between TuMV6K2 and AtHVA22a in yeast, as well as in planta by using bimolecular fluorescence complementation and showed that TuMV6K2/AtHVA22a interaction occurs at the level of the viral replication compartment during TuMV infection. Finally, we showed that the propagation of TuMV is increased when AtHVA22a is overexpressed in planta but slowed down upon mutagenesis of AtHVA22a by CRISPR-Cas9. Altogether, our results indicate that AtHVA22a plays an agonistic effect on TuMV propagation and that the C-terminal tail of the protein is important in this process.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Potyvirus , Potyvirus/pathogenicity , Potyvirus/physiology , Arabidopsis/virology , Arabidopsis/genetics , Arabidopsis/metabolism , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Plant Diseases/virology , Viral Proteins/metabolism , Viral Proteins/genetics , Virus Replication , Nicotiana/virology , Nicotiana/genetics
20.
Plant Sci ; 344: 112108, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38705480

ABSTRACT

Ureides, the degraded products of purine catabolism in Arabidopsis, have been shown to act as antioxidant and nitrogen sources. Herein we elucidate purine degraded metabolites as a carbon source using the Arabidopsis Atxdh1, Ataln, and Ataah knockout (KO) mutants vis-à-vis wild-type (WT) plants. Plants were grown under short-day conditions on agar plates containing half-strength MS medium with or without 1% sucrose. Notably, the absence of sucrose led to diminished biomass accumulation in both shoot and root tissues of the Atxdh1, Ataln, and Ataah mutants, while no such effect was observed in WT plants. Moreover, the application of sucrose resulted in a reduction of purine degradation metabolite levels, specifically xanthine and allantoin, predominantly within the roots of WT plants. Remarkably, an increase in proteins associated with the purine degradation pathway was observed in WT plants in the presence of sucrose. Lower glyoxylate levels in the roots but not in the shoot of the Atxdh1 mutant in comparison to WT, were observed under sucrose limitation, and improved by sucrose application in root, indicating that purine degradation provided glyoxylate in the root. Furthermore, the deficit of purine-degraded metabolites in the roots of mutants subjected to carbon starvation was partially mitigated through allantoin application. Collectively, these findings signify that under conditions of sucrose limitation and short-day growth, purines are primarily remobilized within the root system to augment the availability of ureides, serving as an additional carbon (as well as nitrogen) source to support plant growth.


Subject(s)
Arabidopsis , Carbon , Plant Roots , Sucrose , Arabidopsis/metabolism , Arabidopsis/genetics , Arabidopsis/growth & development , Carbon/metabolism , Sucrose/metabolism , Plant Roots/metabolism , Plant Roots/growth & development , Allantoin/metabolism , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Purines/metabolism , Urea/metabolism , Plant Shoots/metabolism , Plant Shoots/growth & development , Glyoxylates/metabolism
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