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1.
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
2.
BMC Genomics ; 22(1): 268, 2021 Apr 14.
Article in English | MEDLINE | ID: mdl-33853522

ABSTRACT

BACKGROUND: Fertilization in flowering plants depends on the early contact and acceptance of pollen grains by the receptive papilla cells of the stigma. Deciphering the specific transcriptomic response of both pollen and stigmatic cells during their interaction constitutes an important challenge to better our understanding of this cell recognition event. RESULTS: Here we describe a transcriptomic analysis based on single nucleotide polymorphisms (SNPs) present in two Arabidopsis thaliana accessions, one used as female and the other as male. This strategy allowed us to distinguish 80% of transcripts according to their parental origins. We also developed a tool which predicts male/female specific expression for genes without SNP. We report an unanticipated transcriptional activity triggered in stigma upon incompatible pollination and show that following compatible interaction, components of the pattern-triggered immunity (PTI) pathway are induced on the female side. CONCLUSIONS: Our work unveils the molecular signatures of compatible and incompatible pollinations both at the male and female side. We provide invaluable resource and tools to identify potential new molecular players involved in pollen-stigma interaction.


Subject(s)
Arabidopsis , Pollination , Arabidopsis/genetics , Pollen/genetics , Pollination/genetics , Transcriptome
3.
Dev Cell ; 56(4): 540-556.e8, 2021 02 22.
Article in English | MEDLINE | ID: mdl-33621494

ABSTRACT

We have analyzed the link between the gene regulation and growth during the early stages of flower development in Arabidopsis. Starting from time-lapse images, we generated a 4D atlas of early flower development, including cell lineage, cellular growth rates, and the expression patterns of regulatory genes. This information was introduced in MorphoNet, a web-based platform. Using computational models, we found that the literature-based molecular network only explained a minority of the gene expression patterns. This was substantially improved by adding regulatory hypotheses for individual genes. Correlating growth with the combinatorial expression of multiple regulators led to a set of hypotheses for the action of individual genes in morphogenesis. This identified the central factor LEAFY as a potential regulator of heterogeneous growth, which was supported by quantifying growth patterns in a leafy mutant. By providing an integrated view, this atlas should represent a fundamental step toward mechanistic models of flower development.


Subject(s)
Arabidopsis/growth & development , Arabidopsis/genetics , Flowers/growth & development , Flowers/genetics , Arabidopsis/cytology , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Body Patterning/genetics , Cell Lineage/genetics , Flowers/anatomy & histology , Flowers/cytology , Gene Expression Regulation, Developmental , Gene Expression Regulation, Plant , Gene Regulatory Networks , Genes, Plant , Morphogenesis/genetics , Mutation/genetics
5.
Nature ; 589(7840): 116-119, 2021 01.
Article in English | MEDLINE | ID: mdl-33208947

ABSTRACT

The regulation of signalling capacity, combined with the spatiotemporal distribution of developmental signals themselves, is pivotal in setting developmental responses in both plants and animals1. The hormone auxin is a key signal for plant growth and development that acts through the AUXIN RESPONSE FACTOR (ARF) transcription factors2-4. A subset of these, the conserved class A ARFs5, are transcriptional activators of auxin-responsive target genes that are essential for regulating auxin signalling throughout the plant lifecycle2,3. Although class A ARFs have tissue-specific expression patterns, how their expression is regulated is unknown. Here we show, by investigating chromatin modifications and accessibility, that loci encoding these proteins are constitutively open for transcription. Through yeast one-hybrid screening, we identify the transcriptional regulators of the genes encoding class A ARFs from Arabidopsis thaliana and demonstrate that each gene is controlled by specific sets of transcriptional regulators. Transient transformation assays and expression analyses in mutants reveal that, in planta, the majority of these regulators repress the transcription of genes encoding class A ARFs. These observations support a scenario in which the default configuration of open chromatin enables a network of transcriptional repressors to regulate expression levels of class A ARF proteins and modulate auxin signalling output throughout development.


Subject(s)
Arabidopsis/genetics , Arabidopsis/metabolism , Down-Regulation , Gene Expression Regulation, Plant , Gene Regulatory Networks , Indoleacetic Acids/metabolism , Repressor Proteins/metabolism , Transcription, Genetic , Arabidopsis/growth & development , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Chromatin/genetics , Chromatin/metabolism , Genes, Plant/genetics , Mutation , Repressor Proteins/genetics , Two-Hybrid System Techniques
6.
Elife ; 92020 05 07.
Article in English | MEDLINE | ID: mdl-32379043

ABSTRACT

Positional information is essential for coordinating the development of multicellular organisms. In plants, positional information provided by the hormone auxin regulates rhythmic organ production at the shoot apex, but the spatio-temporal dynamics of auxin gradients is unknown. We used quantitative imaging to demonstrate that auxin carries high-definition graded information not only in space but also in time. We show that, during organogenesis, temporal patterns of auxin arise from rhythmic centrifugal waves of high auxin travelling through the tissue faster than growth. We further demonstrate that temporal integration of auxin concentration is required to trigger the auxin-dependent transcription associated with organogenesis. This provides a mechanism to temporally differentiate sites of organ initiation and exemplifies how spatio-temporal positional information can be used to create rhythmicity.


Plants, like animals and many other multicellular organisms, control their body architecture by creating organized patterns of cells. These patterns are generally defined by signal molecules whose levels differ across the tissue and change over time. This tells the cells where they are located in the tissue and therefore helps them know what tasks to perform. A plant hormone called auxin is one such signal molecule and it controls when and where plants produce new leaves and flowers. Over time, this process gives rise to the dashing arrangements of spiraling organs exhibited by many plant species. The leaves and flowers form from a relatively small group of cells at the tip of a growing stem known as the shoot apical meristem. Auxin accumulates at precise locations within the shoot apical meristem before cells activate the genes required to make a new leaf or flower. However, the precise role of auxin in forming these new organs remained unclear because the tools to observe the process in enough detail were lacking. Galvan-Ampudia, Cerutti et al. have now developed new microscopy and computational approaches to observe auxin in a small plant known as Arabidopsis thaliana. This showed that dozens of shoot apical meristems exhibited very similar patterns of auxin. Images taken over a period of several hours showed that the locations where auxin accumulated were not fixed on a group of cells but instead shifted away from the center of the shoot apical meristems faster than the tissue grew. This suggested the cells experience rapidly changing levels of auxin. Further experiments revealed that the cells needed to be exposed to a high level of auxin over time to activate genes required to form an organ. This mechanism sheds a new light on how auxin regulates when and where plants make new leaves and flowers. The tools developed by Galvan-Ampudia, Cerutti et al. could be used to study the role of auxin in other plant tissues, and to investigate how plants regulate the response to other plant hormones.


Subject(s)
Arabidopsis/metabolism , Indoleacetic Acids/metabolism , Organogenesis, Plant , Plant Growth Regulators/metabolism , Plants, Genetically Modified/metabolism , Arabidopsis/genetics , Arabidopsis/growth & development , Biosensing Techniques , Gene Expression Regulation, Plant , Genes, Reporter , Microscopy, Confocal , Organogenesis, Plant/genetics , Plants, Genetically Modified/genetics , Plants, Genetically Modified/growth & development , Time Factors , Transcription, Genetic
7.
BMC Syst Biol ; 10: 22, 2016 Mar 01.
Article in English | MEDLINE | ID: mdl-26932351

ABSTRACT

BACKGROUND: Auxin is a major phytohormone involved in many developmental processes by controlling gene expression through a network of transcriptional regulators. In Arabidopsis thaliana, the auxin signalling network is made of 52 potentially interacting transcriptional regulators, activating or repressing gene expression. All the possible interactions were tested in two-way yeast-2-hybrid experiments. Our objective was to characterise this auxin signalling network and to quantify the influence of the dimerisation sequence dissimilarities on the interaction between transcriptional regulators. RESULTS: We applied model-based graph clustering methods relying on connectivity profiles between transcriptional regulators. Incorporating dimerisation sequence dissimilarities as explanatory variables, we modelled their influence on the auxin network topology using mixture of linear models for random graphs. Our results provide evidence that the network can be simplified into four groups, three of them being closely related to biological groups. We found that these groups behave differently, depending on their dimerisation sequence dissimilarities, and that the two dimerisation sub-domains might play different roles. CONCLUSIONS: We propose here the first pipeline of statistical methods combining yeast-2-hybrid data and protein sequence dissimilarities for analysing protein-protein interactions. We unveil using this pipeline of analysis the transcriptional regulator interaction modes.


Subject(s)
Arabidopsis Proteins/chemistry , Arabidopsis Proteins/metabolism , Arabidopsis/cytology , Indoleacetic Acids/metabolism , Models, Biological , Protein Multimerization , Signal Transduction , Arabidopsis/genetics , Arabidopsis/metabolism , Cluster Analysis , Gene Expression Profiling , Normal Distribution , Protein Structure, Quaternary , Transcription, Genetic
9.
Nat Commun ; 6: 6043, 2015 Jan 16.
Article in English | MEDLINE | ID: mdl-25592181

ABSTRACT

Activated forms of jasmonic acid (JA) are central signals coordinating plant responses to stresses, yet tools to analyse their spatial and temporal distribution are lacking. Here we describe a JA perception biosensor termed Jas9-VENUS that allows the quantification of dynamic changes in JA distribution in response to stress with high spatiotemporal sensitivity. We show that Jas9-VENUS abundance is dependent on bioactive JA isoforms, the COI1 co-receptor, a functional Jas motif and proteasome activity. We demonstrate the utility of Jas9-VENUS to analyse responses to JA in planta at a cellular scale, both quantitatively and dynamically. This included using Jas9-VENUS to determine the cotyledon-to-root JA signal velocities on wounding, revealing two distinct phases of JA activity in the root. Our results demonstrate the value of developing quantitative sensors such as Jas9-VENUS to provide high-resolution spatiotemporal data about hormone distribution in response to plant abiotic and biotic stresses.


Subject(s)
Biosensing Techniques/methods , Cyclopentanes/analysis , Cyclopentanes/metabolism , Oxylipins/analysis , Oxylipins/metabolism , Plants/metabolism , Cotyledon/metabolism , Plant Roots/metabolism
10.
Nature ; 505(7483): 417-21, 2014 Jan 16.
Article in English | MEDLINE | ID: mdl-24336201

ABSTRACT

How biological systems generate reproducible patterns with high precision is a central question in science. The shoot apical meristem (SAM), a specialized tissue producing plant aerial organs, is a developmental system of choice to address this question. Organs are periodically initiated at the SAM at specific spatial positions and this spatiotemporal pattern defines phyllotaxis. Accumulation of the plant hormone auxin triggers organ initiation, whereas auxin depletion around organs generates inhibitory fields that are thought to be sufficient to maintain these patterns and their dynamics. Here we show that another type of hormone-based inhibitory fields, generated directly downstream of auxin by intercellular movement of the cytokinin signalling inhibitor ARABIDOPSIS HISTIDINE PHOSPHOTRANSFER PROTEIN 6 (AHP6), is involved in regulating phyllotactic patterns. We demonstrate that AHP6-based fields establish patterns of cytokinin signalling in the meristem that contribute to the robustness of phyllotaxis by imposing a temporal sequence on organ initiation. Our findings indicate that not one but two distinct hormone-based fields may be required for achieving temporal precision during formation of reiterative structures at the SAM, thus indicating an original mechanism for providing robustness to a dynamic developmental system.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/growth & development , Arabidopsis/metabolism , Biological Transport , Cytokinins/antagonists & inhibitors , Signal Transduction , Arabidopsis/anatomy & histology , Arabidopsis/cytology , Cytokinins/metabolism , Indoleacetic Acids/metabolism , Meristem/metabolism , Plant Growth Regulators/antagonists & inhibitors , Plant Growth Regulators/metabolism , Plant Shoots/metabolism
11.
Mol Syst Biol ; 7: 508, 2011 Jul 05.
Article in English | MEDLINE | ID: mdl-21734647

ABSTRACT

The plant hormone auxin is thought to provide positional information for patterning during development. It is still unclear, however, precisely how auxin is distributed across tissues and how the hormone is sensed in space and time. The control of gene expression in response to auxin involves a complex network of over 50 potentially interacting transcriptional activators and repressors, the auxin response factors (ARFs) and Aux/IAAs. Here, we perform a large-scale analysis of the Aux/IAA-ARF pathway in the shoot apex of Arabidopsis, where dynamic auxin-based patterning controls organogenesis. A comprehensive expression map and full interactome uncovered an unexpectedly simple distribution and structure of this pathway in the shoot apex. A mathematical model of the Aux/IAA-ARF network predicted a strong buffering capacity along with spatial differences in auxin sensitivity. We then tested and confirmed these predictions using a novel auxin signalling sensor that reports input into the signalling pathway, in conjunction with the published DR5 transcriptional output reporter. Our results provide evidence that the auxin signalling network is essential to create robust patterns at the shoot apex.


Subject(s)
Arabidopsis/growth & development , Indoleacetic Acids/pharmacology , Plant Growth Regulators/pharmacology , Plant Shoots/growth & development , Signal Transduction/genetics , Arabidopsis/genetics , Arabidopsis/metabolism , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Cluster Analysis , DNA-Binding Proteins/genetics , DNA-Binding Proteins/metabolism , Gene Expression Regulation, Plant , Genes, Plant , In Situ Hybridization, Fluorescence , Meristem/chemistry , Meristem/metabolism , Microscopy, Confocal , Models, Theoretical , Nuclear Proteins/genetics , Nuclear Proteins/metabolism , Organogenesis , Plant Shoots/genetics , Plant Shoots/metabolism , Plants, Genetically Modified , Transcription, Genetic
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