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1.
Proc Natl Acad Sci U S A ; 121(7): e2313343121, 2024 Feb 13.
Article in English | MEDLINE | ID: mdl-38315839

ABSTRACT

Plants tightly control growth of their lateral organs, which led to the concept of apical dominance. However, outgrowth of the dormant lateral primordia is sensitive to the plant's nutritional status, resulting in an immense plasticity in plant architecture. While the impact of hormonal regulation on apical dominance is well characterized, the prime importance of sugar signaling to unleash lateral organ formation has just recently emerged. Here, we aimed to identify transcriptional regulators, which control the trade-off between growth of apical versus lateral organs. Making use of locally inducible gain-of-function as well as single and higher-order loss-of-function approaches of the sugar-responsive S1-basic-leucine-zipper (S1-bZIP) transcription factors, we disclosed their largely redundant function in establishing apical growth dominance. Consistently, comprehensive phenotypical and analytical studies of S1-bZIP mutants show a clear shift of sugar and organic nitrogen (N) allocation from apical to lateral organs, coinciding with strong lateral organ outgrowth. Tissue-specific transcriptomics reveal specific clade III SWEET sugar transporters, crucial for long-distance sugar transport to apical sinks and the glutaminase GLUTAMINE AMIDO-TRANSFERASE 1_2.1, involved in N homeostasis, as direct S1-bZIP targets, linking the architectural and metabolic mutant phenotypes to downstream gene regulation. Based on these results, we propose that S1-bZIPs control carbohydrate (C) partitioning from source leaves to apical organs and tune systemic N supply to restrict lateral organ formation by C/N depletion. Knowledge of the underlying mechanisms controlling plant C/N partitioning is of pivotal importance for breeding strategies to generate plants with desired architectural and nutritional characteristics.


Subject(s)
Basic-Leucine Zipper Transcription Factors , Plant Breeding , Basic-Leucine Zipper Transcription Factors/genetics , Basic-Leucine Zipper Transcription Factors/metabolism , Plants/metabolism , Signal Transduction/genetics , Sugars , Gene Expression Regulation, Plant , Plant Proteins/genetics , Plant Proteins/metabolism
2.
Sci Data ; 10(1): 490, 2023 07 27.
Article in English | MEDLINE | ID: mdl-37500689

ABSTRACT

Basic leucine zipper 11 (bZIP11) is a transcription factor that is activated under low energy conditions in plants and plays a crucial role in enabling plants to adapt to starvation situations. Although previous results indicate that bZIP11 regulates chromatin accessibility based on evidence obtained from single genomic loci, to what extent this transcription factor regulates the chromatin landscape at the whole genome level remains unknown. Here we addressed this by performing an ATAC-seq (Assay for Transposase-Accessible Chromatin with high-throughput sequencing) on Arabidopsis thaliana (Arabidopsis) leaf protoplasts to obtain a profile of chromatin patterning in response upon bZIP11 induction. We identified, on average, 10,000 differentially accessible regions upon bZIP11 induction, corresponding to over 8,420 different genes out of the 25,000 genes present in the Arabidopsis genome. Our study provides a resource for understanding how bZIP11 regulates the genome at the chromatin level and provides an example of the impact of a single transcription factor on a whole plant genome.


Subject(s)
Arabidopsis , Chromatin , Arabidopsis/genetics , Chromatin/genetics , Chromatin Immunoprecipitation Sequencing , Genome, Plant , High-Throughput Nucleotide Sequencing , Sequence Analysis, DNA , Transcription Factors/genetics
3.
New Phytol ; 234(1): 122-136, 2022 04.
Article in English | MEDLINE | ID: mdl-34716593

ABSTRACT

Shoot branching is regulated by multiple signals. Previous studies have indicated that sucrose may promote shoot branching through suppressing the inhibitory effect of the hormone strigolactone (SL). However, the molecular mechanisms underlying this effect are unknown. Here, we used molecular and genetic tools to identify the molecular targets underlying the antagonistic interaction between sucrose and SL. We showed that sucrose antagonizes the suppressive action of SL on tillering in rice and on the degradation of D53, a major target of SL signalling. Sucrose inhibits the gene expression of D3, the orthologue of the Arabidopsis F-box MAX2 required for SL signalling. Overexpression of D3 antagonizes sucrose inhibition of D53 degradation and enables the SL inhibition of tillering under high sucrose. Sucrose prevents SL-induced degradation of D14, the SL receptor involved in D53 degradation. In contrast to D3, D14 overexpression enhances D53 protein levels and sucrose-induced tillering, even in the presence of SL. Our results show that sucrose inhibits SL response by affecting key components of SL signalling and, together with previous studies reporting the inhibition of SL synthesis by nitrate and phosphate, demonstrate the central role played by SLs in the regulation of plant architecture by nutrients.


Subject(s)
Arabidopsis , Oryza , Arabidopsis/genetics , Gene Expression Regulation, Plant , Lactones/metabolism , Lactones/pharmacology , Oryza/metabolism , Plant Proteins/genetics , Plant Proteins/metabolism , Sucrose/metabolism , Sucrose/pharmacology
4.
Plant Physiol ; 188(3): 1586-1603, 2022 03 04.
Article in English | MEDLINE | ID: mdl-34919723

ABSTRACT

Shoot branching is a complex mechanism in which secondary shoots grow from buds that are initiated from meristems established in leaf axils. The model plant Arabidopsis (Arabidopsis thaliana) has a rosette leaf growth pattern in the vegetative stage. After flowering initiation, the main stem elongates with the top leaf primordia developing into cauline leaves. Meristems in Arabidopsis initiate in the axils of rosette or cauline leaves, giving rise to rosette or cauline buds, respectively. Plasticity in the process of shoot branching is regulated by resource and nutrient availability as well as by plant hormones. However, few studies have attempted to test whether cauline and rosette branching are subject to the same plasticity. Here, we addressed this question by phenotyping cauline and rosette branching in three Arabidopsis ecotypes and several Arabidopsis mutants with varied shoot architectures. Our results showed no negative correlation between cauline and rosette branch numbers in Arabidopsis, demonstrating that there is no tradeoff between cauline and rosette bud outgrowth. Through investigation of the altered branching pattern of flowering pathway mutants and Arabidopsis ecotypes grown in various photoperiods and light regimes, we further elucidated that the number of cauline branches is closely related to flowering time. The number of rosette branches has an enormous plasticity compared with cauline branches and is influenced by genetic background, flowering time, light intensity, and temperature. Our data reveal different levels of plasticity in the regulation of branching at rosette and cauline nodes, and promote a framework for future branching analyses.


Subject(s)
Arabidopsis/anatomy & histology , Arabidopsis/growth & development , Arabidopsis/genetics , Flowers/growth & development , Meristem/growth & development , Plant Leaves/growth & development , Plant Shoots/growth & development , Ecotype , Flowers/anatomy & histology , Flowers/genetics , Gene Expression Regulation, Plant , Genes, Plant , Genetic Variation , Meristem/anatomy & histology , Meristem/genetics , Phenotype , Photoperiod , Plant Leaves/anatomy & histology , Plant Leaves/genetics , Plant Shoots/anatomy & histology , Plant Shoots/genetics
5.
New Phytol ; 231(3): 1088-1104, 2021 08.
Article in English | MEDLINE | ID: mdl-33909299

ABSTRACT

Plant architecture is controlled by several endogenous signals including hormones and sugars. However, only little information is known about the nature and roles of the sugar signalling pathways in this process. Here we test whether the sugar signalling pathway mediated by HEXOKINASE1 (HXK1) is involved in the control of shoot branching. To test the involvement of HXK1 in shoot branching and in the hormonal network controlling this process, we modulated the HXK1 pathway using physiological and genetic approaches in rose, pea and arabidopsis. Mannose-induced HXK signalling triggered bud outgrowth in rose and pea. In arabidopsis, both HXK1 deficiency and defoliation led to decreased shoot branching and conferred hypersensitivity to auxin. Complementation of the HXK1 knockout mutant gin2 with a catalytically inactive HXK1, restored shoot branching to the wild-type level. HXK1-deficient plants displayed decreased cytokinin levels and increased expression of MAX2, which is required for strigolactone signalling. The branching phenotype of HXK1-deficient plants could be partly restored by cytokinin treatment and strigolactone deficiency could override the negative impact of HXK1 deficiency on shoot branching. Our observations demonstrate that HXK1 signalling contributes to the regulation of shoot branching and interacts with hormones to modulate plant architecture.


Subject(s)
Cytokinins , Indoleacetic Acids , Gene Expression Regulation, Plant , Heterocyclic Compounds, 3-Ring , Lactones/pharmacology , Plant Growth Regulators , Plant Shoots
6.
New Phytol ; 229(4): 2135-2151, 2021 02.
Article in English | MEDLINE | ID: mdl-33068448

ABSTRACT

Trehalose 6-phosphate (Tre6P) is a sucrose signalling metabolite that has been implicated in regulation of shoot branching, but its precise role is not understood. We expressed tagged forms of TREHALOSE-6-PHOSPHATE SYNTHASE1 (TPS1) to determine where Tre6P is synthesized in arabidopsis (Arabidopsis thaliana), and investigated the impact of localized changes in Tre6P levels, in axillary buds or vascular tissues, on shoot branching in wild-type and branching mutant backgrounds. TPS1 is expressed in axillary buds and the subtending vasculature, as well as in the leaf and stem vasculature. Expression of a heterologous Tre6P phosphatase (TPP) to lower Tre6P in axillary buds strongly delayed bud outgrowth in long days and inhibited branching in short days. TPP expression in the vasculature also delayed lateral bud outgrowth and decreased branching. Increased Tre6P in the vasculature enhanced branching and was accompanied by higher expression of FLOWERING LOCUS T (FT) and upregulation of sucrose transporters. Increased vascular Tre6P levels enhanced branching in branched1 but not in ft mutant backgrounds. These results provide direct genetic evidence of a local role for Tre6P in regulation of axillary bud outgrowth within the buds themselves, and also connect Tre6P with systemic regulation of shoot branching via FT.


Subject(s)
Arabidopsis , Sugar Phosphates , Arabidopsis/genetics , Gene Expression Regulation, Plant , Phosphates , Plant Shoots , Trehalose/analogs & derivatives
7.
Sci Data ; 7(1): 9, 2020 01 08.
Article in English | MEDLINE | ID: mdl-31913298

ABSTRACT

Avocado (Persea americana Mill.), macadamia (Macadamia integrifolia L.) and mango (Mangifera indica L.) are important subtropical tree species grown for their edible fruits and nuts. Despite their commercial and nutritional importance, the genomic information for these species is largely lacking. Here we report the generation of avocado, macadamia and mango transcriptome assemblies from pooled leaf, stem, bud, root, floral and fruit/nut tissue. Using normalized cDNA libraries, we generated comprehensive RNA-Seq datasets from which we assembled 63420, 78871 and 82198 unigenes of avocado, macadamia and mango, respectively using a combination of de novo transcriptome assembly and redundancy reduction. These unigenes were functionally annotated using Basic Local Alignment Search Tool (BLAST) to query the Universal Protein Resource Knowledgebase (UniProtKB). A workflow encompassing RNA extraction, library preparation, transcriptome assembly, redundancy reduction, assembly validation and annotation is provided. This study provides avocado, macadamia and mango transcriptome and annotation data, which is valuable for gene discovery and gene expression profiling experiments as well as ongoing and future genome annotation and marker development applications.


Subject(s)
Macadamia/genetics , Mangifera/genetics , Persea/genetics , Transcriptome , Gene Library , Genes, Plant , Molecular Sequence Annotation , RNA-Seq
8.
Plant Methods ; 15: 62, 2019.
Article in English | MEDLINE | ID: mdl-31171930

ABSTRACT

BACKGROUND: Woody tropical plants contain high levels of complex organic compounds that inhibit the chemical procedures needed to extract RNA or DNA, thus compromising downstream applications such as RNA sequencing and analysis of gene expression. To overcome this issue, researchers must use extraction protocols using CTAB/PVP buffer instead of commercially available DNA/RNA extraction kits. However, these protocols are time-consuming, use toxic chemicals like phenol and chloroform, and can only be used to process a small number of samples at a time. To overcome these issues, we developed a new CTAB/PVP based protocol for RNA or DNA extraction that eliminates the traditional phenol/chloroform step. Furthermore, the protocol was developed for 96-well plates to speed up processing. RESULTS: Our new protocol enabled us to successfully extract RNA from macadamia, avocado, and mango tissues that are traditionally difficult to work with. This RNA was then successfully used to synthesise cDNA for real-time quantitative PCR and to generate good quality RNA-Seq libraries. Our protocol can be easily converted for rapid DNA extraction from different tropical and sub-tropical tree species. CONCLUSION: This method enables safer and faster DNA and RNA extraction from recalcitrant species, thus facilitating future work on tropical trees.

9.
Trends Plant Sci ; 24(3): 220-236, 2019 03.
Article in English | MEDLINE | ID: mdl-30797425

ABSTRACT

Many new questions on the regulation of shoot branching have been raised in recent years, prompting a review and reassessment of the role of each signal involved. Sugars and their signaling networks have been attributed a major role in the early events of axillary bud outgrowth, whereas cytokinin appears to play a critical role in the modulation of this process in response to the environment. Perception of the recently discovered hormone strigolactone is now quite well understood, while the downstream targets remain largely unknown. Recent literature has highlighted that auxin export from a bud is important for its subsequent growth.


Subject(s)
Gene Expression Regulation, Plant , Indoleacetic Acids , Biological Transport , Cytokinins , Plant Shoots
10.
Plant J ; 92(4): 611-623, 2017 Nov.
Article in English | MEDLINE | ID: mdl-28869799

ABSTRACT

Trehalose 6-phosphate (Tre6P) is a signal of sucrose availability in plants, and has been implicated in the regulation of shoot branching by the abnormal branching phenotypes of Arabidopsis (Arabidopsis thaliana) and maize (Zea mays) mutants with altered Tre6P metabolism. Decapitation of garden pea (Pisum sativum) plants has been proposed to release the dormancy of axillary buds lower down the stem due to changes in sucrose supply, and we hypothesized that this response is mediated by Tre6P. Decapitation led to a rapid and sustained rise in Tre6P levels in axillary buds, coinciding with the onset of bud outgrowth. This response was suppressed by simultaneous defoliation that restricts the supply of sucrose to axillary buds in decapitated plants. Decapitation also led to a rise in amino acid levels in buds, but a fall in phosphoenolpyruvate and 2-oxoglutarate. Supplying sucrose to stem node explants in vitro triggered a concentration-dependent increase in the Tre6P content of the buds that was highly correlated with their rate of outgrowth. These data show that changes in bud Tre6P levels are correlated with initiation of bud outgrowth following decapitation, suggesting that Tre6P is involved in the release of bud dormancy by sucrose. Tre6P might also be linked to a reconfiguration of carbon and nitrogen metabolism to support the subsequent growth of the bud into a new shoot.


Subject(s)
Pisum sativum/enzymology , Sucrose/metabolism , Sugar Phosphates/metabolism , Trehalose/analogs & derivatives , Amino Acids/metabolism , Ketoglutaric Acids/metabolism , Metabolic Networks and Pathways , Models, Biological , Pisum sativum/genetics , Pisum sativum/growth & development , Phosphoenolpyruvate/metabolism , Plant Stems/enzymology , Plant Stems/genetics , Plant Stems/growth & development , Sucrose/analysis , Sugar Phosphates/analysis , Trehalose/analysis , Trehalose/metabolism
11.
Curr Biol ; 27(17): R864-R865, 2017 Sep 11.
Article in English | MEDLINE | ID: mdl-28898653

ABSTRACT

Barbier et al. give a quick guide to apical dominance, whereby a plant's main shoot dominates and inhibits the outgrowth of other shoots.


Subject(s)
Crops, Agricultural/growth & development , Plant Development , Plant Shoots/growth & development , Plant Shoots/physiology
12.
Curr Opin Plant Biol ; 25: 39-45, 2015 Jun.
Article in English | MEDLINE | ID: mdl-25938609

ABSTRACT

In the classical theory of apical dominance, auxin depletion from the stem releases bud dormancy. Recent studies have revealed a poor correlation between the initial bud release and auxin depletion from the stem after decapitation. Sucrose mobility in plants and its accumulation in buds correlates well with the onset of bud release and is able to trigger bud outgrowth. The diversion of sugars away from axillary buds decreases bud release even where hormones are at levels generally considered conducive to bud release. This impact of sugars on bud outgrowth may be mediated by specific sugar and hormonal signalling pathways.


Subject(s)
Indoleacetic Acids/metabolism , Plant Growth Regulators/metabolism , Plant Physiological Phenomena , Plants/metabolism , Signal Transduction , Sucrose/metabolism , Carbohydrate Metabolism , Gene Expression Regulation, Plant , Plant Development , Plant Shoots/growth & development , Plant Shoots/physiology , Plant Stems/growth & development , Plant Stems/physiology
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