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1.
J Exp Bot ; 2024 Jul 19.
Article in English | MEDLINE | ID: mdl-39028261

ABSTRACT

Salicylic acid (SA) is a central phytohormone that orchestrates genetic and physiological responses involving defense mechanisms against pathogens. This review presents cutting-edge research on emerging molecular players identified within the past five years contributing to SA accumulation. Furthermore, we delve into two relatively underexplored domains: the dynamic production of SA throughout the plant life cycle, with a specific focus on senescence, and the intricate interplay between SA, nutrition, and its multifaceted implications on plant development and defense response. This synthesis aims to provide a contemporary and comprehensive understanding of the diverse roles of SA in plant biology.

2.
Heliyon ; 10(4): e25648, 2024 Feb 29.
Article in English | MEDLINE | ID: mdl-38390140

ABSTRACT

This article analyses mothers' work decisions and their determinants during the first three years of their children's life, based on data from a survey of 1219 mothers in the Barcelona area during 2020. The factors affecting the probability of mothers reducing their working day or leaving their job after having a child are studied through a descriptive analysis, as well as by estimating a multinomial logic model. The results obtained indicate the relevance of the following aspects: the mother's income level, her level of education, the number of children and the fact of having the daily help of grandparents for childcare. The survey data show that the main reason mothers decide to reduce their working day or leave their job is to care for their children. These results are relevant for the design of childcare policies and work-life balance policies with the aim of avoiding gender inequalities in the future.

3.
J Exp Bot ; 72(5): 1891-1905, 2021 02 27.
Article in English | MEDLINE | ID: mdl-33188435

ABSTRACT

Plants possess a robust metabolic network for sensing and controlling reactive oxygen species (ROS) levels upon stress conditions. Evidence shown here supports a role for TGA class II transcription factors as critical regulators of genes controlling ROS levels in the tolerance response to UV-B stress in Arabidopsis. First, tga256 mutant plants showed reduced capacity to scavenge H2O2 and restrict oxidative damage in response to UV-B, and also to methylviologen-induced photooxidative stress. The TGA2 transgene (tga256/TGA2 plants) complemented these phenotypes. Second, RNAseq followed by clustering and Gene Ontology term analyses indicate that TGA2/5/6 positively control the UV-B-induced expression of a group of genes with oxidoreductase, glutathione transferase, and glucosyltransferase activities, such as members of the glutathione S-transferase Tau subfamily (GSTU), which encodes peroxide-scavenging enzymes. Accordingly, increased glutathione peroxidase activity triggered by UV-B was impaired in tga256 mutants. Third, the function of TGA2/5/6 as transcriptional activators of GSTU genes in the UV-B response was confirmed for GSTU7, GSTU8, and GSTU25, using quantitative reverse transcription-PCR and ChIP analyses. Fourth, expression of the GSTU7 transgene complemented the UV-B-susceptible phenotype of tga256 mutant plants. Together, this evidence indicates that TGA2/5/6 factors are key regulators of the antioxidant/detoxifying response to an abiotic stress such as UV-B light overexposure.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Oxidative Stress , Transcription Factors , Ultraviolet Rays , Arabidopsis/genetics , Arabidopsis/metabolism , Arabidopsis/radiation effects , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Gene Expression Regulation, Plant , Hydrogen Peroxide/metabolism , Reactive Oxygen Species/metabolism , Transcription Factors/genetics , Transcription Factors/metabolism
4.
Microorganisms ; 8(7)2020 Jun 29.
Article in English | MEDLINE | ID: mdl-32610695

ABSTRACT

Pseudomonas syringae pv. actinidiae (Psa) is the causal agent of a bacterial canker in kiwifruit plants and has caused economic losses worldwide. Currently, the primary strategies to control this pathogen include the use of copper-based compounds and even antibiotics. However, the emergence of isolates of Psa that are resistant to these agrochemicals has raised the need for new alternatives to control this pathogen. Bacteriophages have been proposed as an alternative to control bacterial infections in agriculture, including Psa. Here, we show the isolation and characterization of 13 phages with the potential to control Psa infections in kiwifruit plants. The phages were characterized according to their host range and restriction fragment length polymorphism (RFLP) pattern. Four phages were selected according to their lytic effect on the bacteria and their tolerance to different environmental conditions of pH (4-7), temperature (4-37 °C), and solar radiation exposure (30 and 60 min). The selected phages (CHF1, CHF7, CHF19, and CHF21) were sequenced, revealing a high identity with the podophage of Psa phiPSA2. In vitro assays with kiwifruit leaf samples demonstrated that the mixture of phages reduced the Psa bacterial load within three hours post-application and was able to reduce the damage index in 50% of cases. Similarly, assays with kiwifruit plants maintained in greenhouse conditions showed that these phages were able to reduce the Psa bacterial load in more than 50% of cases and produced a significant decrease in the damage index of treated plants after 30 days. Finally, none of the selected phages were able to infect the other bacteria present in the natural microbiota of kiwifruit plants. These results show that bacteriophages are an attractive alternative to control Psa infections in kiwifruit plants.

5.
Front Plant Sci ; 8: 964, 2017.
Article in English | MEDLINE | ID: mdl-28580008

ABSTRACT

[This corrects the article on p. 171 in vol. 6, PMID: 25852720.].

6.
Plant Mol Biol Report ; 33: 624-637, 2015.
Article in English | MEDLINE | ID: mdl-26696694

ABSTRACT

Salicylic acid (SA) is a key hormone that mediates gene transcriptional reprogramming in the context of the defense response to stress. GRXC9, coding for a CC-type glutaredoxin from Arabidopsis, is an SA-responsive gene induced early and transiently by an NPR1-independent pathway. Here, we address the mechanism involved in this SA-dependent pathway, using GRXC9 as a model gene. We first established that GRXC9 expression is induced by UVB exposure through this pathway, validating its activation in a physiological stress condition. GRXC9 promoter analyses indicate that SA controls gene transcription through two activating sequence-1 (as-1)-like elements located in its proximal region. TGA2 and TGA3, but not TGA1, are constitutively bound to this promoter region. Accordingly, the transient recruitment of RNA polymerase II to the GRXC9 promoter, as well as the transient accumulation of gene transcripts detected in SA-treated WT plants, was abolished in a knockout mutant for the TGA class II factors. We conclude that constitutive binding of TGA2 is essential for controlling GRXC9 expression, while binding of TGA3 in a lesser extent contributes to this regulation. Finally, overexpression of GRXC9 indicates that the GRXC9 protein negatively controls its own gene expression, forming part of the complex bound to the as-1-containing promoter region. These findings are integrated in a model that explains how SA controls transcription of GRXC9 in the context of the defense response to stress.

7.
Front Plant Sci ; 6: 171, 2015.
Article in English | MEDLINE | ID: mdl-25852720

ABSTRACT

It is well established that salicylic acid (SA) plays a critical role in the transcriptional reprograming that occurs during the plant defense response against biotic and abiotic stress. In the course of the defense response, the transcription of different sets of defense genes is controlled in a spatio-temporal manner via SA-mediated mechanisms. Interestingly, different lines of evidence indicate that SA interplays with reactive oxygen species (ROS) and glutathione (GSH) in stressed plants. In this review we focus on the evidence that links SA, ROS, and GSH signals to the transcriptional control of defense genes. We discuss how redox modifications of regulators and co-regulators involved in SA-mediated transcriptional responses control the temporal patterns of gene expression in response to stress. Finally, we examine how these redox sensors are coordinated with the dynamics of cellular redox changes occurring in the defense response to biotic and abiotic stress.

8.
Mol Plant Microbe Interact ; 26(12): 1395-406, 2013 Dec.
Article in English | MEDLINE | ID: mdl-24006883

ABSTRACT

Salicylic acid (SA) is one of the key hormones that orchestrate the pathogen-induced immune response in plants. This response is often characterized by the activation of a local hypersensitive reaction involving programmed cell death, which constrains proliferation of biotrophic pathogens. Here, we report the identification and functional characterization of an SA-induced legume lectin-like protein 1 (SAI-LLP1), which is coded by a gene that belongs to the group of early SA-activated Arabidopsis genes. SAI-LLP1 expression is induced upon inoculation with avirulent strains of Pseudomonas syringae pv. tomato via an SA-dependent mechanism. Constitutive expression of SAI-LLP1 restrains proliferation of P. syringae pv. tomato Avr-Rpm1 and triggers more cell death in inoculated leaves. Cellular and biochemical evidence indicates that SAI-LLP1 is a glycoprotein located primarily at the apoplastic side of the plasma membrane. This work indicates that SAI-LLP1 is involved in resistance to P. syringae pv. tomato Avr-Rpm1 in Arabidopsis, as a component of the SA-mediated defense processes associated with the effector-triggered immunity response.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/genetics , Gene Expression Regulation, Plant , Plant Diseases/immunology , Plant Immunity , Pseudomonas syringae/physiology , Salicylic Acid/pharmacology , Arabidopsis/immunology , Arabidopsis/metabolism , Arabidopsis/ultrastructure , Arabidopsis Proteins/genetics , Bacterial Proteins/metabolism , Cell Death , Cell Membrane/metabolism , Glycoproteins , Lectins/genetics , Lectins/metabolism , Plant Leaves/genetics , Plant Leaves/immunology , Plant Leaves/metabolism , Plant Leaves/ultrastructure , Pseudomonas syringae/growth & development , Pseudomonas syringae/pathogenicity
9.
PLoS Genet ; 8(4): e1002652, 2012.
Article in English | MEDLINE | ID: mdl-22511887

ABSTRACT

Eukaryotic mRNA transcription and turnover is controlled by an enzymatic machinery that includes RNA polymerase II and the 3' to 5' exosome. The activity of these protein complexes is modulated by additional factors, such as the nuclear RNA polymerase II-associated factor 1 (Paf1c) and the cytoplasmic Superkiller (SKI) complex, respectively. Their components are conserved across uni- as well as multi-cellular organisms, including yeast, Arabidopsis, and humans. Among them, SKI8 displays multiple facets on top of its cytoplasmic role in the SKI complex. For instance, nuclear yeast ScSKI8 has an additional function in meiotic recombination, whereas nuclear human hSKI8 (unlike ScSKI8) associates with Paf1c. The Arabidopsis SKI8 homolog VERNALIZATION INDEPENDENT 3 (VIP3) has been found in Paf1c as well; however, whether it also has a role in the SKI complex remains obscure so far. We found that transgenic VIP3-GFP, which complements a novel vip3 mutant allele, localizes to both nucleus and cytoplasm. Consistently, biochemical analyses suggest that VIP3-GFP associates with the SKI complex. A role of VIP3 in the turnover of nuclear encoded mRNAs is supported by random-primed RNA sequencing of wild-type and vip3 seedlings, which indicates mRNA stabilization in vip3. Another SKI subunit homolog mutant, ski2, displays a dwarf phenotype similar to vip3. However, unlike vip3, it displays neither early flowering nor flower development phenotypes, suggesting that the latter reflect VIP3's role in Paf1c. Surprisingly then, transgenic ScSKI8 rescued all aspects of the vip3 phenotype, suggesting that the dual role of SKI8 depends on species-specific cellular context.


Subject(s)
Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , RNA Polymerase II , RNA, Messenger , Arabidopsis/genetics , Flowers/genetics , Flowers/growth & development , High-Throughput Nucleotide Sequencing , Humans , Meiosis/genetics , Mutation , Nuclear Proteins/genetics , Phenotype , Plants, Genetically Modified , RNA Polymerase II/genetics , RNA Polymerase II/metabolism , RNA, Messenger/genetics , RNA, Messenger/metabolism , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae Proteins/metabolism , Species Specificity
10.
J Exp Bot ; 63(1): 503-15, 2012 Jan.
Article in English | MEDLINE | ID: mdl-21963612

ABSTRACT

Glutaredoxins (GRXs) belong to the antioxidant and signalling network involved in the cellular response to oxidative stress in bacterial and eukaryotic cells. In spite of the high number of GRX genes in plant genomes, the biological functions and physiological roles of most of them remain unknown. Here the functional characterization of the Arabidopsis GRXS13 gene (At1g03850), that codes for two CC-type GRX isoforms, is reported. The transcript variant coding for the GRXS13.2 isoform is predominantly expressed under basal conditions and is the isoform that is induced by photooxidative stress. Transgenic lines where the GRXS13 gene has been knocked down show increased basal levels of superoxide radicals and reduced plant growth. These lines also display reduced tolerance to methyl viologen (MeV) and high light (HL) treatments, both conditions of photooxidative stress characterized by increased production of superoxide ions. Consistently, lines overexpressing the GRXS13.2 variant show reduced MeV- and HL-induced damage. Alterations in GRXS13 expression also affect superoxide levels and the ascorbate/dehydroascorbate ratio after HL-induced stress. These results indicate that GRXS13 gene expression is critical for limiting basal and photooxidative stress-induced reactive oxygen species (ROS) production. Together, these results place GRXS13.2 as a member of the ROS-scavenging/antioxidant network that shows a particularly low functional redundancy in the Arabidopsis GRX family.


Subject(s)
Arabidopsis/physiology , Glutaredoxins/physiology , Oxidative Stress , Photochemistry , Arabidopsis/genetics , Base Sequence , DNA Primers , Plants, Genetically Modified
11.
Curr Biol ; 21(22): 1918-23, 2011 Nov 22.
Article in English | MEDLINE | ID: mdl-22079112

ABSTRACT

In the Arabidopsis root meristem, polar auxin transport creates a transcriptional auxin response gradient that peaks at the stem cell niche and gradually decreases as stem cell daughters divide and differentiate [1-3]. The amplitude and extent of this gradient are essential for both stem cell maintenance and root meristem growth [4, 5]. To investigate why expression of some auxin-responsive genes, such as the essential root meristem growth regulator BREVIS RADIX (BRX) [6], deviates from this gradient, we combined experimental and computational approaches. We created cellular-level root meristem models that accurately reproduce distribution of nuclear auxin activity and allow dynamic modeling of regulatory processes to guide experimentation. Expression profiles deviating from the auxin gradient could only be modeled after intersection of auxin activity with the observed differential endocytosis pattern and positive autoregulatory feedback through plasma-membrane-to-nucleus transfer of BRX. Because BRX is required for expression of certain auxin response factor targets, our data suggest a cell-type-specific endocytosis-dependent input into transcriptional auxin perception. This input sustains expression of a subset of auxin-responsive genes across the root meristem's division and transition zones and is essential for meristem growth. Thus, the endocytosis pattern provides specific positional information to modulate auxin response.


Subject(s)
Arabidopsis/growth & development , Endocytosis , Indoleacetic Acids/metabolism , Meristem/growth & development , Plant Growth Regulators/metabolism , Arabidopsis/metabolism , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Cell Membrane/metabolism , Cell Nucleus/metabolism , Computer Simulation , Gene Expression Regulation, Plant , Meristem/metabolism , Models, Biological , Plant Roots/growth & development , Plant Roots/metabolism
12.
Proc Natl Acad Sci U S A ; 107(52): 22734-9, 2010 Dec 28.
Article in English | MEDLINE | ID: mdl-21149702

ABSTRACT

A central question in developmental biology is how multicellular organisms coordinate cell division and differentiation to determine organ size. In Arabidopsis roots, this balance is controlled by cytokinin-induced expression of SHORT HYPOCOTYL 2 (SHY2) in the so-called transition zone of the meristem, where SHY2 negatively regulates auxin response factors (ARFs) by protein-protein interaction. The resulting down-regulation of PIN-FORMED (PIN) auxin efflux carriers is considered the key event in promoting differentiation of meristematic cells. Here we show that this regulation involves additional, intermediary factors and is spatio-temporally constrained. We found that the described cytokinin-auxin crosstalk antagonizes BREVIS RADIX (BRX) activity in the developing protophloem. BRX is an auxin-responsive target of the prototypical ARF MONOPTEROS (MP), a key promoter of vascular development, and transiently enhances PIN3 expression to promote meristem growth in young roots. At later stages, cytokinin induction of SHY2 in the vascular transition zone restricts BRX expression to down-regulate PIN3 and thus limit meristem growth. Interestingly, proper SHY2 expression requires BRX, which could reflect feedback on the auxin responsiveness of SHY2 because BRX protein can directly interact with MP, likely acting as a cofactor. Thus, cross-regulatory antagonism between BRX and SHY2 could determine ARF activity in the protophloem. Our data suggest a model in which the regulatory interactions favor BRX expression in the early proximal meristem and SHY2 prevails because of supplementary cytokinin induction in the later distal meristem. The complex equilibrium of this regulatory module might represent a universal switch in the transition toward differentiation in various developmental contexts.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/metabolism , Meristem/metabolism , Plant Roots/metabolism , Arabidopsis/genetics , Arabidopsis/growth & development , Arabidopsis Proteins/genetics , Blotting, Western , Cytokinins/pharmacology , DNA-Binding Proteins/genetics , DNA-Binding Proteins/metabolism , Gene Expression Regulation, Developmental/drug effects , Gene Expression Regulation, Plant/drug effects , Glucuronidase/genetics , Glucuronidase/metabolism , Green Fluorescent Proteins/genetics , Green Fluorescent Proteins/metabolism , Indoleacetic Acids/pharmacology , Meristem/genetics , Meristem/growth & development , Microscopy, Confocal , Mutation , Nuclear Proteins/genetics , Nuclear Proteins/metabolism , Plant Growth Regulators/pharmacology , Plant Roots/genetics , Plant Roots/growth & development , Plants, Genetically Modified , Reverse Transcriptase Polymerase Chain Reaction , Time Factors , Transcription Factors/genetics , Transcription Factors/metabolism
13.
Development ; 136(12): 2059-67, 2009 Jun.
Article in English | MEDLINE | ID: mdl-19465596

ABSTRACT

In Arabidopsis, interplay between nuclear auxin perception and trans-cellular polar auxin transport determines the transcriptional auxin response. In brevis radix (brx) mutants, this response is impaired, probably indirectly because of disturbed crosstalk between the auxin and brassinosteroid pathways. Here we provide evidence that BRX protein is plasma membrane-associated, but translocates to the nucleus upon auxin treatment to modulate cellular growth, possibly in conjunction with NGATHA class B3 domain-type transcription factors. Application of the polar auxin transport inhibitor naphthalene phthalamic acid (NPA) resulted in increased BRX abundance at the plasma membrane. Thus, nuclear translocation of BRX could depend on cellular auxin concentration or on auxin flux. Supporting this idea, NPA treatment of wild-type roots phenocopied the brx root meristem phenotype. Moreover, BRX is constitutively turned over by the proteasome pathway in the nucleus. However, a stabilized C-terminal BRX fragment significantly rescued the brx root growth phenotype and triggered a hypocotyl gain-of-function phenotype, similar to strong overexpressors of full length BRX. Therefore, although BRX activity is required in the nucleus, excess activity interferes with normal development. Finally, similar to the PIN-FORMED 1 (PIN1) auxin efflux carrier, BRX is polarly localized in vascular cells and subject to endocytic recycling. Expression of BRX under control of the PIN1 promoter fully rescued the brx short root phenotype, suggesting that the two genes act in the same tissues. Collectively, our results suggest that BRX might provide a contextual readout to synchronize cellular growth with the auxin concentration gradient across the root tip.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/metabolism , Cell Membrane/metabolism , Cell Nucleus/metabolism , Indoleacetic Acids/pharmacology , Arabidopsis/embryology , Arabidopsis Proteins/genetics , Endocytosis , Gene Expression Regulation, Plant , Indoleacetic Acids/metabolism , Membrane Transport Proteins/genetics , Membrane Transport Proteins/metabolism , Mutation , Plant Roots/embryology , Plant Roots/metabolism , Protein Transport
14.
Plant Mol Biol ; 70(1-2): 79-102, 2009 May.
Article in English | MEDLINE | ID: mdl-19199050

ABSTRACT

Salicylic acid (SA) is a stress-induced hormone involved in the activation of defense genes. Here we analyzed the early genetic responses to SA of wild type and npr1-1 mutant Arabidopsis seedlings, using Complete Arabidopsis Transcriptome MicroArray (CATMAv2) chip. We identified 217 genes rapidly induced by SA (early SAIGs); 193 by a NPR1-dependent and 24 by a NPR1-independent pathway. These two groups of genes also differed in their functional classification, expression profiles and over-representation of cis-elements, supporting differential pathways for their activation. Examination of the expression patterns for selected early SAIGs from both groups indicated that their activation by SA required TGA2/5/6 subclass of transcription factors. These genes were also activated by Pseudomonas syringae pv. tomato AvrRpm1, suggesting that they might play a role in defense against bacteria. This study gives a global idea of the early response to SA in Arabidopsis seedlings, expanding our knowledge about SA function in plant defense.


Subject(s)
Arabidopsis/genetics , Genome, Plant , Salicylic Acid/pharmacology , Seedlings/genetics , Arabidopsis/drug effects , Arabidopsis/metabolism , Arabidopsis/microbiology , Gene Expression Profiling , Gene Expression Regulation, Plant , Genes, Plant , Oligonucleotide Array Sequence Analysis , Promoter Regions, Genetic , Pseudomonas syringae/physiology , RNA, Plant/genetics , Seedlings/drug effects , Seedlings/metabolism , Seedlings/microbiology , Transcription Factors/genetics , Transcription, Genetic , Transcriptional Activation
15.
Plant Cell Physiol ; 47(9): 1295-308, 2006 Sep.
Article in English | MEDLINE | ID: mdl-16926165

ABSTRACT

Casein kinase 2 (CK2) is a ubiquitous enzyme essential for the viability of eukaryotic cells. In the present work we analyzed the Arabidopsis thaliana genome in a search for the genes coding for all CK2 alpha and beta subunits. We found four alpha subunit and four beta subunit genes. Expression analysis showed that all CK2 subunit genes are expressed in inflorescences, stems, leaves and roots. The level of expression of these genes is very similar, except for the one that codes for an alpha subunit harboring a putative chloroplastic destination peptide (alphacp), which shows a slightly higher expression level in all tissues. Using transgenic plants and agroinfiltration, we have also characterized the subcellular localization of all proteins encoded by CK2 genes. Our results show that all alpha subunits are localized in the nucleus, with the exception of alphacp, which is only found in the chloroplasts. On the other hand, beta subunits have a more diverse distribution, with some of them localizing both to the nucleus and to the cytosol, while others are exclusively located in one of these compartments. Remarkably, no CK2beta subunit was found in the chloroplasts. Finally, by directly measuring its activity, we have demonstrated that purified Arabidopsis chloroplasts have active CK2 that can be regulated by external addition of CK2beta. This study represents a complete survey of the CK2 gene family in Arabidopsis and the first step for future studies on CK2 cellular function in this species.


Subject(s)
Arabidopsis/enzymology , Casein Kinase II/metabolism , Amino Acid Sequence , Arabidopsis/classification , Arabidopsis/genetics , Casein Kinase II/chemistry , Casein Kinase II/genetics , Chloroplasts/enzymology , Gene Expression Regulation, Plant , Genes, Plant , Genome, Plant , Isoenzymes/analysis , Isoenzymes/chemistry , Isoenzymes/genetics , Isoenzymes/metabolism , Molecular Sequence Data , Phylogeny , Sequence Alignment
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