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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.
Dev Cell ; 59(10): 1333-1344.e4, 2024 May 20.
Article in English | MEDLINE | ID: mdl-38579717

ABSTRACT

Plant morphogenesis relies exclusively on oriented cell expansion and division. Nonetheless, the mechanism(s) determining division plane orientation remain elusive. Here, we studied tissue healing after laser-assisted wounding in roots of Arabidopsis thaliana and uncovered how mechanical forces stabilize and reorient the microtubule cytoskeleton for the orientation of cell division. We identified that root tissue functions as an interconnected cell matrix, with a radial gradient of tissue extendibility causing predictable tissue deformation after wounding. This deformation causes instant redirection of expansion in the surrounding cells and reorientation of microtubule arrays, ultimately predicting cell division orientation. Microtubules are destabilized under low tension, whereas stretching of cells, either through wounding or external aspiration, immediately induces their polymerization. The higher microtubule abundance in the stretched cell parts leads to the reorientation of microtubule arrays and, ultimately, informs cell division planes. This provides a long-sought mechanism for flexible re-arrangement of cell divisions by mechanical forces for tissue reconstruction and plant architecture.


Subject(s)
Arabidopsis , Cell Division , Microtubules , Plant Roots , Microtubules/metabolism , Arabidopsis/metabolism , Arabidopsis/cytology , Cell Division/physiology , Plant Roots/metabolism , Plant Roots/cytology , Plant Roots/growth & development , Cytoskeleton/metabolism , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Biomechanical Phenomena
3.
J Plant Physiol ; 297: 154236, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38621330

ABSTRACT

Germline cells are critical for transmitting genetic information to subsequent generations in biological organisms. While their differentiation from somatic cells during embryonic development is well-documented in most animals, the regulatory mechanisms initiating plant germline cells are not well understood. To thoroughly investigate the complex morphological transformations of their ultrastructure over developmental time, nanoscale 3D reconstruction of entire plant tissues is necessary, achievable exclusively through electron microscopy imaging. This paper presents a full-process framework designed for reconstructing large-volume plant tissue from serial electron microscopy images. The framework ensures end-to-end direct output of reconstruction results, including topological networks and morphological analysis. The proposed 3D cell alignment, denoise, and instance segmentation pipeline (3DCADS) leverages deep learning to provide a cell instance segmentation workflow for electron microscopy image series, ensuring accurate and robust 3D cell reconstructions with high computational efficiency. The pipeline involves five stages: the registration of electron microscopy serial images; image enhancement and denoising; semantic segmentation using a Transformer-based neural network; instance segmentation through a supervoxel-based clustering algorithm; and an automated analysis and statistical assessment of the reconstruction results, with the mapping of topological connections. The 3DCADS model's precision was validated on a plant tissue ground-truth dataset, outperforming traditional baseline models and deep learning baselines in overall accuracy. The framework was applied to the reconstruction of early meiosis stages in the anthers of Arabidopsis thaliana, resulting in a topological connectivity network and analysis of morphological parameters and characteristics of cell distribution. The experiment underscores the 3DCADS model's potential for biological tissue identification and its significance in quantitative analysis of plant cell development, crucial for examining samples across different genetic phenotypes and mutations in plant development. Additionally, the paper discusses the regulatory mechanisms of Arabidopsis thaliana's germline cells and the development of stamen cells before meiosis, offering new insights into the transition from somatic to germline cell fate in plants.


Subject(s)
Imaging, Three-Dimensional , Imaging, Three-Dimensional/methods , Microscopy, Electron/methods , Arabidopsis/ultrastructure , Arabidopsis/growth & development , Arabidopsis/cytology , Algorithms , Plant Cells/ultrastructure , Image Processing, Computer-Assisted/methods
4.
EMBO J ; 43(9): 1822-1842, 2024 May.
Article in English | MEDLINE | ID: mdl-38565947

ABSTRACT

A key question in plant biology is how oriented cell divisions are integrated with patterning mechanisms to generate organs with adequate cell type allocation. In the root vasculature, a gradient of miRNA165/6 controls the abundance of HD-ZIP III transcription factors, which in turn control cell fate and spatially restrict vascular cell proliferation to specific cells. Here, we show that vascular development requires the presence of ARGONAUTE10, which is thought to sequester miRNA165/6 and protect HD-ZIP III transcripts from degradation. Our results suggest that the miR165/6-AGO10-HDZIP III module acts by buffering cytokinin responses and restricting xylem differentiation. Mutants of AGO10 show faster growth rates and strongly enhanced survival under severe drought conditions. However, this superior performance is offset by markedly increased variation and phenotypic plasticity in sub-optimal carbon supply conditions. Thus, AGO10 is required for the control of formative cell division and coordination of robust cell fate specification of the vasculature, while altering its expression provides a means to adjust phenotypic plasticity.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Argonaute Proteins , Cell Division , Gene Expression Regulation, Plant , MicroRNAs , Plant Roots , Arabidopsis/genetics , Arabidopsis/metabolism , Arabidopsis/growth & development , Arabidopsis/cytology , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Argonaute Proteins/metabolism , Argonaute Proteins/genetics , Cell Division/genetics , Plant Roots/cytology , Plant Roots/metabolism , Plant Roots/growth & development , Plant Roots/genetics , MicroRNAs/genetics , MicroRNAs/metabolism , Cell Differentiation , Xylem/cytology , Xylem/metabolism , Xylem/growth & development , Xylem/genetics
5.
Dev Cell ; 59(9): 1096-1109.e5, 2024 May 06.
Article in English | MEDLINE | ID: mdl-38518768

ABSTRACT

Cell polarity is used to guide asymmetric divisions and create morphologically diverse cells. We find that two oppositely oriented cortical polarity domains present during the asymmetric divisions in the Arabidopsis stomatal lineage are reconfigured into polar domains marking ventral (pore-forming) and outward-facing domains of maturing stomatal guard cells. Proteins that define these opposing polarity domains were used as baits in miniTurboID-based proximity labeling. Among differentially enriched proteins, we find kinases, putative microtubule-interacting proteins, and polar SOSEKIs with their effector ANGUSTIFOLIA. Using AI-facilitated protein structure prediction models, we identify potential protein-protein interaction interfaces among them. Functional and localization analyses of the polarity protein OPL2 and its putative interaction partners suggest a positive interaction with mitotic microtubules and a role in cytokinesis. This combination of proteomics and structural modeling with live-cell imaging provides insights into how polarity is rewired in different cell types and cell-cycle stages.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Cell Division , Cell Polarity , Plant Stomata , Proteomics , Arabidopsis/metabolism , Arabidopsis/cytology , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Plant Stomata/metabolism , Plant Stomata/cytology , Proteomics/methods , Cell Polarity/physiology , Microtubules/metabolism , Cell Lineage , Cytokinesis/physiology , Repressor Proteins
6.
Science ; 383(6683): 646-653, 2024 Feb 09.
Article in English | MEDLINE | ID: mdl-38330116

ABSTRACT

In multicellular organisms, sexual reproduction relies on the formation of highly differentiated cells, the gametes, which await fertilization in a quiescent state. Upon fertilization, the cell cycle resumes. Successful development requires that male and female gametes are in the same phase of the cell cycle. The molecular mechanisms that reinstate cell division in a fertilization-dependent manner are poorly understood in both animals and plants. Using Arabidopsis, we show that a sperm-derived signal induces the proliferation of a female gamete, the central cell, precisely upon fertilization. The central cell is arrested in S phase by the activity of the RETINOBLASTOMA RELATED1 (RBR1) protein. Upon fertilization, delivery of the core cell cycle component CYCD7;1 causes RBR1 degradation and thus S phase progression, ensuring the formation of functional endosperm and, consequently, viable seeds.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Endosperm , Gametogenesis, Plant , Paternal Inheritance , Arabidopsis/cytology , Arabidopsis/growth & development , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Cell Division , Endosperm/cytology , Endosperm/physiology
7.
Nature ; 627(8003): 382-388, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38418878

ABSTRACT

Calcium (Ca2+) is an essential nutrient for plants and a cellular signal, but excessive levels can be toxic and inhibit growth1,2. To thrive in dynamic environments, plants must monitor and maintain cytosolic Ca2+ homeostasis by regulating numerous Ca2+ transporters3. Here we report two signalling pathways in Arabidopsis thaliana that converge on the activation of vacuolar Ca2+/H+ exchangers (CAXs) to scavenge excess cytosolic Ca2+ in plants. One mechanism, activated in response to an elevated external Ca2+ level, entails calcineurin B-like (CBL) Ca2+ sensors and CBL-interacting protein kinases (CIPKs), which activate CAXs by phosphorylating a serine (S) cluster in the auto-inhibitory domain. The second pathway, triggered by molecular patterns associated with microorganisms, engages the immune receptor complex FLS2-BAK1 and the associated cytoplasmic kinases BIK1 and PBL1, which phosphorylate the same S-cluster in CAXs to modulate Ca2+ signals in immunity. These Ca2+-dependent (CBL-CIPK) and Ca2+-independent (FLS2-BAK1-BIK1/PBL1) mechanisms combine to balance plant growth and immunity by regulating cytosolic Ca2+ homeostasis.


Subject(s)
Arabidopsis , Calcium , Homeostasis , Plant Immunity , Arabidopsis/cytology , Arabidopsis/growth & development , Arabidopsis/immunology , Arabidopsis/metabolism , Arabidopsis Proteins/metabolism , Calcium/metabolism , Calcium-Binding Proteins/metabolism , Cytosol/metabolism , Phosphorylation , Phosphoserine/metabolism , Protein Serine-Threonine Kinases/metabolism , Cation Transport Proteins/metabolism , Antiporters/metabolism
8.
Nature ; 626(7999): 611-616, 2024 Feb.
Article in English | MEDLINE | ID: mdl-38297119

ABSTRACT

Precise control of cell division is essential for proper patterning and growth during the development of multicellular organisms. Coordination of formative divisions that generate new tissue patterns with proliferative divisions that promote growth is poorly understood. SHORTROOT (SHR) and SCARECROW (SCR) are transcription factors that are required for formative divisions in the stem cell niche of Arabidopsis roots1,2. Here we show that levels of SHR and SCR early in the cell cycle determine the orientation of the division plane, resulting in either formative or proliferative cell division. We used 4D quantitative, long-term and frequent (every 15 min for up to 48 h) light sheet and confocal microscopy to probe the dynamics of SHR and SCR in tandem within single cells of living roots. Directly controlling their dynamics with an SHR induction system enabled us to challenge an existing bistable model3 of the SHR-SCR gene-regulatory network and to identify key features that are essential for rescue of formative divisions in shr mutants. SHR and SCR kinetics do not align with the expected behaviour of a bistable system, and only low transient levels, present early in the cell cycle, are required for formative divisions. These results reveal an uncharacterized mechanism by which developmental regulators directly coordinate patterning and growth.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Cell Cycle , Plant Roots , Arabidopsis/cytology , Arabidopsis/genetics , Arabidopsis/growth & development , Arabidopsis/metabolism , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Cell Cycle/genetics , Cell Division/genetics , Gene Expression Regulation, Plant , Plant Roots/cytology , Plant Roots/growth & development , Plant Roots/metabolism , Microscopy, Confocal , Mutation
9.
Plant J ; 116(6): 1633-1651, 2023 Dec.
Article in English | MEDLINE | ID: mdl-37659090

ABSTRACT

The final step in secretion is membrane fusion facilitated by SNARE proteins that reside in opposite membranes. The formation of a trans-SNARE complex between one R and three Q coiled-coiled SNARE domains drives the final approach of the membranes providing the mechanical energy for fusion. Biological control of this mechanism is exerted by additional domains within some SNAREs. For example, the N-terminal Longin domain (LD) of R-SNAREs (also called Vesicle-associated membrane proteins, VAMPs) can fold back onto the SNARE domain blocking interaction with other cognate SNAREs. The LD may also determine the subcellular localization via interaction with other trafficking-related proteins. Here, we provide cell-biological and genetic evidence that phosphorylation of the Tyrosine57 residue regulates the functionality of VAMP721. We found that an aspartate mutation mimics phosphorylation, leading to protein instability and subsequent degradation in lytic vacuoles. The mutant SNARE also fails to rescue the defects of vamp721vamp722 loss-of-function lines in spite of its wildtype-like localization within the secretory pathway and the ability to interact with cognate SNARE partners. Most importantly, it imposes a dominant negative phenotype interfering with root growth, normal secretion and cytokinesis in wildtype plants generating large aggregates that mainly contain secretory vesicles. Non-phosphorylatable VAMP721Y57F needs higher gene dosage to rescue double mutants in comparison to native VAMP721 underpinning that phosphorylation modulates SNARE function. We propose a model where short-lived phosphorylation of Y57 serves as a regulatory step to control VAMP721 activity, favoring its open state and interaction with cognate partners to ultimately drive membrane fusion.


Subject(s)
Arabidopsis , SNARE Proteins , Cell Membrane/metabolism , Membrane Fusion , R-SNARE Proteins/genetics , R-SNARE Proteins/metabolism , SNARE Proteins/genetics , SNARE Proteins/metabolism , Tyrosine/metabolism , Arabidopsis/cytology , Arabidopsis/metabolism
10.
Proc Natl Acad Sci U S A ; 120(33): e2305002120, 2023 08 15.
Article in English | MEDLINE | ID: mdl-37549263

ABSTRACT

Polyploids, which arise from whole-genome duplication events, have contributed to genome evolution throughout eukaryotes. Among plants, novel features of neopolyploids include traits that can be evolutionarily or agriculturally beneficial, such as increased abiotic stress tolerance. Thus, in addition to being interesting from an evolutionary perspective, genome duplication is also increasingly recognized as a promising crop improvement tool. However, newly formed (neo)polyploids commonly suffer from fertility problems, which have been attributed to abnormal associations among the multiple homologous chromosome copies during meiosis (multivalents). Here, we test the long-standing hypothesis that reducing meiotic cross-over number may be sufficient to limit multivalent formation, favoring diploid-like bivalent associations (cytological diploidization). To do so, we developed Arabidopsis thaliana lines with low cross-over rates by combining mutations for HEI10 and TAF4b. Double mutants showed a reduction of ~33% in cross-over numbers in diploids without compromising meiotic stability. Neopolyploids derived from the double mutant show a cross-over rate reduction of about 40% relative to wild-type neotetraploids, and groups of four homologs indeed formed fewer multivalents and more bivalents. However, we also show that the reduction in multivalents comes with the cost of a slightly increased frequency of univalents and that it does not rescue neopolyploid fertility. Thus, while our results do show that reducing cross-over rates can reduce multivalent frequency in neopolyploids, they also emphasize that there are additional factors affecting both meiotic stability and neopolyploid fertility that will need to be considered in solving the neopolyploid fertility challenge.


Subject(s)
Meiosis , Polyploidy , Arabidopsis/cytology , Arabidopsis/genetics , Recombination, Genetic , Chromosomes, Plant , Genotype
11.
Science ; 381(6653): 54-59, 2023 07 07.
Article in English | MEDLINE | ID: mdl-37410832

ABSTRACT

Asymmetric cell divisions specify differential cell fates across kingdoms. In metazoans, preferential inheritance of fate determinants into one daughter cell frequently depends on polarity-cytoskeleton interactions. Despite the prevalence of asymmetric divisions throughout plant development, evidence for analogous mechanisms that segregate fate determinants remains elusive. Here, we describe a mechanism in the Arabidopsis leaf epidermis that ensures unequal inheritance of a fate-enforcing polarity domain. By defining a cortical region depleted of stable microtubules, the polarity domain limits possible division orientations. Accordingly, uncoupling the polarity domain from microtubule organization during mitosis leads to aberrant division planes and accompanying cell identity defects. Our data highlight how a common biological module, coupling polarity to fate segregation through the cytoskeleton, can be reconfigured to accommodate unique features of plant development.


Subject(s)
Arabidopsis , Asymmetric Cell Division , Plant Epidermis , Plant Leaves , Arabidopsis/cytology , Arabidopsis/genetics , Arabidopsis/growth & development , Cell Lineage , Cell Polarity/genetics , Cytoskeleton , Mitosis/genetics , Plant Leaves/cytology , Plant Leaves/genetics , Plant Leaves/growth & development , Plant Epidermis/cytology , Plant Epidermis/genetics
12.
Science ; 379(6639): eadf4721, 2023 03 31.
Article in English | MEDLINE | ID: mdl-36996230

ABSTRACT

Brassinosteroids are plant steroid hormones that regulate diverse processes, such as cell division and cell elongation, through gene regulatory networks that vary in space and time. By using time series single-cell RNA sequencing to profile brassinosteroid-responsive gene expression specific to different cell types and developmental stages of the Arabidopsis root, we identified the elongating cortex as a site where brassinosteroids trigger a shift from proliferation to elongation associated with increased expression of cell wall-related genes. Our analysis revealed HOMEOBOX FROM ARABIDOPSIS THALIANA 7 (HAT7) and GT-2-LIKE 1 (GTL1) as brassinosteroid-responsive transcription factors that regulate cortex cell elongation. These results establish the cortex as a site of brassinosteroid-mediated growth and unveil a brassinosteroid signaling network regulating the transition from proliferation to elongation, which illuminates aspects of spatiotemporal hormone responses.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Brassinosteroids , Cell Differentiation , Cell Division , Gene Expression Regulation, Plant , Gene Regulatory Networks , Plant Growth Regulators , Plant Roots , Arabidopsis/cytology , Arabidopsis/genetics , Arabidopsis/growth & development , Arabidopsis Proteins/metabolism , Brassinosteroids/metabolism , Plant Growth Regulators/metabolism , Transcription Factors/genetics , Transcription Factors/metabolism , Plant Roots/cytology , Plant Roots/genetics , Plant Roots/growth & development , Cell Division/genetics , Cell Differentiation/genetics , Homeodomain Proteins/genetics , Homeodomain Proteins/metabolism
13.
Nature ; 611(7936): 614-622, 2022 Nov.
Article in English | MEDLINE | ID: mdl-36323776

ABSTRACT

Sperm chromatin is typically transformed by protamines into a compact and transcriptionally inactive state1,2. Sperm cells of flowering plants lack protamines, yet they have small, transcriptionally active nuclei with chromatin condensed through an unknown mechanism3,4. Here we show that a histone variant, H2B.8, mediates sperm chromatin and nuclear condensation in Arabidopsis thaliana. Loss of H2B.8 causes enlarged sperm nuclei with dispersed chromatin, whereas ectopic expression in somatic cells produces smaller nuclei with aggregated chromatin. This result demonstrates that H2B.8 is sufficient for chromatin condensation. H2B.8 aggregates transcriptionally inactive AT-rich chromatin into phase-separated condensates, which facilitates nuclear compaction without reducing transcription. Reciprocal crosses show that mutation of h2b.8 reduces male transmission, which suggests that H2B.8-mediated sperm compaction is important for fertility. Altogether, our results reveal a new mechanism of nuclear compaction through global aggregation of unexpressed chromatin. We propose that H2B.8 is an evolutionary innovation of flowering plants that achieves nuclear condensation compatible with active transcription.


Subject(s)
Arabidopsis , Cell Size , Chromatin , Histones , Pollen , Arabidopsis/cytology , Arabidopsis/genetics , Arabidopsis/metabolism , Chromatin/chemistry , Chromatin/genetics , Chromatin/metabolism , Histones/classification , Histones/genetics , Histones/metabolism , Protamines , Pollen/cytology , Pollen/genetics , Pollen/metabolism , Gene Expression Regulation, Plant , AT Rich Sequence , Cell Nucleus/genetics , Mutation , Cell Nucleus Size , Phase Transition , Transcription, Genetic
14.
Planta ; 256(3): 55, 2022 Aug 06.
Article in English | MEDLINE | ID: mdl-35932433

ABSTRACT

MAIN CONCLUSION: Guard cell- or mesophyll cell-localized phytochromes do not have a predominant direct light sensory role in red- or blue-light-mediated stomatal opening or far-red-light-mediated stomatal closure of Arabidopsis. The role of phytochromes in blue- and red-light-mediated stomatal opening, and far-red-light- mediated decrease in opening, is still under debate. It is not clear whether reduced stomatal opening in a phytochrome B (phyB) mutant line, is due to phytochrome acting as a direct photosensor or an indirect growth effect. The exact tissue localization of the phytochrome photoreceptor important for stomatal opening is also not known. We studied differences in stomatal opening in an Arabidopsis phyB mutant, and lines showing mesophyll cell-specific or guard cell-specific inactivation of phytochromes. Stomatal conductance (gs) of intact leaves was measured under red, blue, and blue + far-red light. Lines exhibiting guard cell-specific inactivation of phytochrome did not show a change in gs under blue or red light compared to Col-0. phyB consistently exhibited a reduction in gs under both blue and red light. Addition of far-red light did not have a significant impact on the blue- or red-light-mediated stomatal response. Treatment of leaves with DCMU (3-(3,4-dichlorophenyl)-1,1-dimethylurea), a photosynthetic electron transport (PET) inhibitor, eliminated the response to red light in all lines, indicating that stomatal opening under red light is controlled by PET, and not directly by phytochrome. Similar to previous studies, leaves of the phyB mutant line had fewer stomata. Overall, phytochrome does not appear have a predominant direct sensory role in stomatal opening under red or blue light. However, phytochromes likely have an indirect effect on the degree of stomatal opening under light through effects on leaf growth and stomatal development.


Subject(s)
Arabidopsis Proteins/physiology , Arabidopsis/physiology , Mesophyll Cells/chemistry , Phytochrome/physiology , Arabidopsis/cytology , Arabidopsis/radiation effects , Arabidopsis Proteins/genetics , Arabidopsis Proteins/radiation effects , Diuron/pharmacology , Electron Transport/physiology , Herbicides/pharmacology , Light , Photosynthesis/physiology , Phytochrome/genetics , Phytochrome B/genetics , Phytochrome B/physiology , Plant Leaves/physiology , Plant Leaves/radiation effects , Plant Stomata/physiology , Plant Stomata/radiation effects
15.
Science ; 377(6606): 629-634, 2022 08 05.
Article in English | MEDLINE | ID: mdl-35926014

ABSTRACT

Meiosis, at the transition between diploid and haploid life cycle phases, is accompanied by reprograming of cell division machinery and followed by a transition back to mitosis. We show that, in Arabidopsis, this transition is driven by inhibition of translation, achieved by a mechanism that involves processing bodies (P-bodies). During the second meiotic division, the meiosis-specific protein THREE-DIVISION MUTANT 1 (TDM1) is incorporated into P-bodies through interaction with SUPPRESSOR WITH MORPHOGENETIC EFFECTS ON GENITALIA 7 (SMG7). TDM1 attracts eIF4F, the main translation initiation complex, temporarily sequestering it in P-bodies and inhibiting translation. The failure of tdm1 mutants to terminate meiosis can be overcome by chemical inhibition of translation. We propose that TDM1-containing P-bodies down-regulate expression of meiotic transcripts to facilitate transition of cell fates to postmeiotic gametophyte differentiation.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Cyclins , Meiosis , Processing Bodies , Arabidopsis/cytology , Arabidopsis/genetics , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Carrier Proteins/metabolism , Cell Differentiation , Cyclins/genetics , Cyclins/metabolism , Meiosis/genetics , Mitosis , Processing Bodies/metabolism , Protein Biosynthesis
16.
Proc Natl Acad Sci U S A ; 119(11): e2123353119, 2022 03 15.
Article in English | MEDLINE | ID: mdl-35275795

ABSTRACT

SignificanceAlthough plastid division is critical for plant development, how components of the plastid division machinery (PDM) are imported into plastids remains unexplored. A forward genetic screen to identify suppressors of a crumpled leaf (crl) mutant deficient in plastid division led us to find dominant gain-of-function (GF) mutations in TIC236, which significantly increases the import of PDM components and completely rescues crl phenotypes. The defective plastid division phenotypes in crl and tic236-knockdown mutants and CRL-TIC236 association in a functional complex indicate that the CRL-TIC236 module is vital for plastid division. Hence, we report the first GF translocon mutants and unveil CRL as a novel functional partner of TIC236 for PDM import.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Cell Division , Chloroplast Proteins , Membrane Transport Proteins , Plastids , Arabidopsis/cytology , Arabidopsis/genetics , Arabidopsis/metabolism , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Chloroplast Proteins/genetics , Chloroplast Proteins/metabolism , Gain of Function Mutation , Membrane Transport Proteins/genetics , Membrane Transport Proteins/metabolism , Plastids/genetics , Plastids/metabolism , Protein Transport
17.
Biochem Biophys Res Commun ; 598: 100-106, 2022 04 02.
Article in English | MEDLINE | ID: mdl-35151976

ABSTRACT

Cytokinesis during pollen mitosis I is critical for cell division and differentiation in the male gametophyte development, but the vesicle trafficking mechanisms in this process are largely unknown. Exocyst is an octameric tethering complex which plays multiple important roles in plant cell vesicle trafficking. Here we report the characterization of exocyst subunit SEC6 in the cytokinesis during pollen mitosis I. We found that significantly amount of pollen from two sec6/+ mutant alleles arrested at the transition from unicelluar stage microspore to bicellular stage. Further analysis showed that sec6 mutation impaired cell plate formation and led to vesicles accumulation in cytoplasm. The localization of KNOLLE on the cell plate was compromised. Consistently, SEC6 gene was expressed start from early pollen development stage and SEC6-GFP localized to the cell plate. These results indicated that SEC6 participated in the cell plate formation during pollen mitosis I, where it might help to tether the vesicles before fusion.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/cytology , Pollen/cytology , Arabidopsis/physiology , Arabidopsis Proteins/genetics , Gene Expression Regulation, Plant , Green Fluorescent Proteins/genetics , Mutation , Plant Cells , Plants, Genetically Modified , Pollen/physiology , Qa-SNARE Proteins/genetics , Qa-SNARE Proteins/metabolism
18.
Nat Commun ; 13(1): 652, 2022 02 03.
Article in English | MEDLINE | ID: mdl-35115512

ABSTRACT

Stomatal opening requires the provision of energy in the form of ATP for proton pumping across the guard cell (GC) plasma membrane and for associated metabolic rearrangements. The source of ATP for GCs is a matter of ongoing debate that is mainly fuelled by controversies around the ability of GC chloroplasts (GCCs) to perform photosynthesis. By imaging compartment-specific fluorescent ATP and NADPH sensor proteins in Arabidopsis, we show that GC photosynthesis is limited and mitochondria are the main source of ATP. Unlike mature mesophyll cell (MC) chloroplasts, which are impermeable to cytosolic ATP, GCCs import cytosolic ATP through NUCLEOTIDE TRANSPORTER (NTT) proteins. GCs from ntt mutants exhibit impaired abilities for starch biosynthesis and stomatal opening. Our work shows that GCs obtain ATP and carbohydrates via different routes from MCs, likely to compensate for the lower chlorophyll contents and limited photosynthesis of GCCs.


Subject(s)
Adenosine Triphosphate/metabolism , Arabidopsis/metabolism , Chloroplasts/metabolism , Plant Stomata/metabolism , Starch/metabolism , Arabidopsis/cytology , Arabidopsis/genetics , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Biological Transport , Chloroplasts/drug effects , Chloroplasts/radiation effects , Cytosol/metabolism , Hydrogen Peroxide/pharmacology , Light , Mesophyll Cells/cytology , Mesophyll Cells/metabolism , Mesophyll Cells/radiation effects , Microscopy, Confocal , NADP/metabolism , Nucleotide Transport Proteins/genetics , Nucleotide Transport Proteins/metabolism , Oxidants/pharmacology , Plant Epidermis/cytology , Plant Epidermis/metabolism , Plant Leaves/cytology , Plant Leaves/metabolism , Plant Stomata/cytology , Plant Stomata/physiology , Plants, Genetically Modified
19.
Elife ; 112022 01 14.
Article in English | MEDLINE | ID: mdl-35029147

ABSTRACT

Efficient uptake of nutrients in both animal and plant cells requires tissue-spanning diffusion barriers separating inner tissues from the outer lumen/soil. However, we poorly understand how such contiguous three-dimensional superstructures are formed in plants. Here, we show that correct establishment of the plant Casparian Strip (CS) network relies on local neighbor communication. We show that positioning of Casparian Strip membrane domains (CSDs) is tightly coordinated between neighbors in wild-type and that restriction of domain formation involves the putative extracellular protease LOTR1. Impaired domain restriction in lotr1 leads to fully functional CSDs at ectopic positions, forming 'half strips'. LOTR1 action in the endodermis requires its expression in the stele. LOTR1 endodermal expression cannot complement, while cortex expression causes a dominant-negative phenotype. Our findings establish LOTR1 as a crucial player in CSD positioning acting in a directional, non-cell-autonomous manner to restrict and coordinate CS positioning.


Subject(s)
Arabidopsis Proteins , Cell Wall , Lignin , Arabidopsis/cytology , Arabidopsis/genetics , Arabidopsis/physiology , Arabidopsis Proteins/chemistry , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Cell Wall/chemistry , Cell Wall/metabolism , Cell Wall/physiology , Lignin/chemistry , Lignin/genetics , Lignin/physiology , Promoter Regions, Genetic/genetics
20.
Science ; 375(6577): 177-182, 2022 Jan 14.
Article in English | MEDLINE | ID: mdl-35025667

ABSTRACT

Messenger RNAs (mRNAs) function as mobile signals for cell-to-cell communication in multicellular organisms. The KNOTTED1 (KN1) homeodomain family transcription factors act non­cell autonomously to control stem cell maintenance in plants through cell-to-cell movement of their proteins and mRNAs through plasmodesmata; however, the mechanism of mRNA movement is largely unknown. We show that cell-to-cell movement of a KN1 mRNA requires ribosomal RNA­processing protein 44A (AtRRP44A), a subunit of the RNA exosome that processes or degrades diverse RNAs in eukaryotes. AtRRP44A can interact with plasmodesmata and mediates the cell-to-cell trafficking of KN1 mRNA, and genetic analysis indicates that AtRRP44A is required for the developmental functions of SHOOT MERISTEMLESS, an Arabidopsis KN1 homolog. Our findings suggest that AtRRP44A promotes mRNA trafficking through plasmodesmata to control stem cell­dependent processes in plants.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/metabolism , Exosome Multienzyme Ribonuclease Complex/metabolism , Homeodomain Proteins/genetics , Plant Proteins/genetics , Plasmodesmata/metabolism , RNA, Messenger/genetics , RNA, Messenger/metabolism , Arabidopsis/cytology , Arabidopsis/genetics , Arabidopsis Proteins/genetics , Cell Communication , Exosome Multienzyme Ribonuclease Complex/genetics , Homeodomain Proteins/metabolism , Meristem/genetics , Meristem/physiology , Mesophyll Cells/metabolism , Mutation , Plant Epidermis/cytology , Plant Epidermis/metabolism , Protein Transport , RNA, Plant/genetics , RNA, Plant/metabolism , Zea mays
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