RESUMO
The evolution of land flora was an epochal event in the history of planet Earth. The success of plants, and especially flowering plants, in colonizing all but the most hostile environments required multiple mechanisms of adaptation. The mainly polysaccharide-based cell walls of flowering plants, which are indispensable for water transport and structural support, are one of the most important adaptations to life on land. Thus, development of vasculature is regarded as a seminal event in cell wall evolution, but the impact of further refinements and diversification of cell wall compositions and architectures on radiation of flowering plant families is less well understood. We approached this from a glyco-profiling perspective and, using carbohydrate microarrays and monoclonal antibodies, studied the cell walls of 287 plant species selected to represent important evolutionary dichotomies and adaptation to a variety of habitats. The results support the conclusion that radiation of flowering plant families was indeed accompanied by changes in cell wall fine structure and that these changes can obscure earlier evolutionary events. Convergent cell wall adaptations identified by our analyses do not appear to be associated with plants with similar lifestyles but that are taxonomically distantly related. We conclude that cell wall structure is linked to phylogeny more strongly than to habitat or lifestyle and propose that there are many approaches of adaptation to any given ecological niche.
Assuntos
Plantas , Polissacarídeos , Polissacarídeos/análise , Filogenia , Plantas/química , Parede Celular/química , Pectinas/análise , Evolução BiológicaRESUMO
Almost all plant cells are surrounded by a wall constructed of co-extensive networks of polysaccharides and proteoglycans. The capability to analyse cell wall components is essential for both understanding their complex biology and to fully exploit their numerous practical applications. Several biochemical and immunological techniques are used to analyse cell walls and in almost all cases the first step is the preparation of an alcohol insoluble residue (AIR). There is significant variation in the protocols used for AIR preparation, which can have a notable impact on the downstream extractability and detection of cell wall components. To explore these effects, we have formally compared ten AIR preparation methods and analysed polysaccharides subsequently extracted using high-performance anion exchange chromatography (HPAEC-PAD) and Micro Array Polymer Profiling (MAPP). Our results reveal the impact that AIR preparation has on downstream detection of cell wall components and the need for optimisation and consistency when preparing AIR.
Assuntos
Parede Celular/química , Técnicas de Química Analítica/métodos , Células Vegetais/química , Polissacarídeos/isolamento & purificação , Arabidopsis/química , Membrana Celular/química , Cromatografia/métodos , Análise em Microsséries , Folhas de Planta/química , Preparações de Plantas/isolamento & purificação , Caules de Planta/química , Polímeros/análise , Polímeros/isolamento & purificação , Polissacarídeos/química , Nicotiana/químicaRESUMO
MAIN CONCLUSION: A combined approach, using a carbohydrate microarray as a support for genomic data, has revealed subtle plant cell-wall remodelling during Tuber melanosporum and Corylus avellana interaction. Cell walls are involved, to a great extent, in mediating plant-microbe interactions. An important feature of these interactions concerns changes in the cell-wall composition during interaction with other organisms. In ectomycorrhizae, plant and fungal cell walls come into direct contact, and represent the interface between the two partners. However, very little information is available on the re-arrangement that could occur within the plant and fungal cell walls during ectomycorrhizal symbiosis. Taking advantage of the Comprehensive Microarray Polymer Profiling (CoMPP) technology, the current study has had the aim of monitoring the changes that take place in the plant cell wall in Corylus avellana roots during colonization by the ascomycetous ectomycorrhizal fungus T. melanosporum. Additionally, genes encoding putative plant cell-wall degrading enzymes (PCWDEs) have been identified in the T. melanosporum genome, and RT-qPCRs have been performed to verify the expression of selected genes in fully developed C. avellana/T. melanosporum ectomycorrhizae. A localized degradation of pectin seems to occur during fungal colonization, in agreement with the growth of the ectomycorrhizal fungus through the middle lamella and with the fungal gene expression of genes acting on these polysaccharides.
Assuntos
Ascomicetos/fisiologia , Parede Celular/metabolismo , Corylus/microbiologia , Micorrizas , Ascomicetos/enzimologia , Ascomicetos/genética , Metabolismo dos Carboidratos , Parede Celular/ultraestrutura , Corylus/metabolismo , Corylus/ultraestrutura , Perfilação da Expressão Gênica , Pectinas/análise , Pectinas/genética , Pectinas/metabolismo , Raízes de Plantas/metabolismo , Raízes de Plantas/microbiologia , Raízes de Plantas/ultraestrutura , TranscriptomaRESUMO
The unraveling of crushed grapes by maceration enzymes during winemaking is difficult to study because of the complex and rather undefined nature of both the substrate and the enzyme preparations. In this study we simplified both the substrate, by using isolated grape skin cell walls, and the enzyme preparations, by using purified enzymes in buffered conditions, to carefully follow the impact of the individual and combined enzymes on the grape skin cell walls. By using cell wall profiling techniques we could monitor the compositional changes in the grape cell wall polymers due to enzyme activity. Extensive enzymatic hydrolysis, achieved with a preparation of pectinases or pectinases combined with cellulase or hemicellulase enzymes, completely removed or drastically reduced levels of pectin polymers, whereas less extensive hydrolysis only opened up the cell wall structure and allowed extraction of polymers from within the cell wall layers. Synergistic enzyme activity was detectable as well as indications of specific cell wall polymer associations.
Assuntos
Parede Celular/metabolismo , Frutas/metabolismo , Parede Celular/química , Celulase/metabolismo , Frutas/ultraestrutura , Glicosídeo Hidrolases/metabolismo , Hidrólise , Pectinas/análise , Poligalacturonase/metabolismo , Polímeros/análise , Análise Serial de Tecidos , VitisRESUMO
Pectin-one of the most complex biomacromolecules in nature has been extensively studied using various techniques. This has been done so in an attempt to understand the chemical composition and conformation of pectin, whilst discovering and optimising new industrial applications of the polymer. For the last decade the emergence of glycan microarray technology has led to a growing capacity of acquiring simultaneous measurements related to various carbohydrate characteristics while generating large collections of data. Here we used a multivariate analysis approach in order to analyse a set of 359 pectin samples probed with 14 different monoclonal antibodies (mAbs). Principal component analysis (PCA) and partial least squares (PLS) regression were utilised to obtain the most optimal qualitative and quantitative information from the spotted microarrays. The potential use of microarray technology combined with chemometrics for the accurate determination of degree of methyl-esterification (DM) and degree of blockiness (DB) was assessed.
Assuntos
Anticorpos Monoclonais/química , Análise em Microsséries/métodos , Pectinas/análise , Pectinas/química , Polissacarídeos/químicaRESUMO
Host plant penetration is the gateway to survival for holoparasitic Cuscuta and requires host cell wall degradation. Compositional differences of cell walls may explain why some hosts are amenable to such degradation while others can resist infection. Antibody-based techniques for comprehensive profiling of cell wall epitopes and cell wall-modifying enzymes were applied to several susceptible hosts and a resistant host of Cuscuta reflexa and to the parasite itself. Infected tissue of Pelargonium zonale contained high concentrations of de-esterified homogalacturonans in the cell walls, particularly adjacent to the parasite's haustoria. High pectinolytic activity in haustorial extracts and high expression levels of pectate lyase genes suggest that the parasite contributes directly to wall remodeling. Mannan and xylan concentrations were low in P. zonale and in five susceptible tomato introgression lines, but high in the resistant Solanum lycopersicum cv M82, and in C. reflexa itself. Knowledge of the composition of resistant host cell walls and the parasite's own cell walls is useful in developing strategies to prevent infection by parasitic plants.
Assuntos
Parede Celular/metabolismo , Cuscuta/metabolismo , Interações Hospedeiro-Parasita , Metabolômica , Parasitos/fisiologia , Pelargonium/parasitologia , Solanum lycopersicum/parasitologia , Animais , Cuscuta/citologia , Resistência à Doença , Epitopos/metabolismo , Glucanos/metabolismo , Solanum lycopersicum/citologia , Análise em Microsséries , Pectinas/metabolismo , Pelargonium/citologia , Doenças das Plantas/parasitologia , Caules de Planta/fisiologia , Plantas Geneticamente Modificadas , Polissacarídeo-Liases/metabolismo , Polissacarídeos/metabolismo , Xilanos/metabolismoRESUMO
Cell wall profiling technologies were used to follow compositional changes that occurred in the skins of grape berries (from two different ripeness levels) during fermentation and enzyme maceration. Multivariate data analysis showed that the fermentation process yielded cell walls enriched in hemicellulose components because pectin was solubilized (and removed) with a reduction as well as exposure of cell wall proteins usually embedded within the cell wall structure. The addition of enzymes caused even more depectination, and the enzymes unravelled the cell walls enabling better access to, and extraction of, all cell wall polymers. Overripe grapes had cell walls that were extensively hydrolyzed and depolymerized, probably by natural grape-tissue-ripening enzymes, and this enhanced the impact that the maceration enzymes had on the cell wall monosaccharide profile. The combination of the techniques that were used is an effective direct measurement of the hydrolysis actions of maceration enzymes on the cell walls of grape berry skin.
Assuntos
Parede Celular/química , Enzimas/química , Pectinas/química , Vitis/química , Biocatálise , Parede Celular/metabolismo , Fermentação , Frutas/química , Frutas/microbiologia , Hidrólise , Pectinas/metabolismo , Saccharomyces cerevisiae/metabolismo , Vitis/metabolismo , Vitis/microbiologiaRESUMO
Polysaccharides are major components of extracellular matrices and are often extensively modified post-synthetically to suit local requirements and developmental programmes. However, our current understanding of the spatiotemporal dynamics and functional significance of these modifications is limited by a lack of suitable molecular tools. Here, we report the development of a novel non-immunological approach for producing highly selective reciprocal oligosaccharide-based probes for chitosan (the product of chitin deacetylation) and for demethylesterified homogalacturonan. Specific reciprocal binding is mediated by the unique stereochemical arrangement of oppositely charged amino and carboxy groups. Conjugation of oligosaccharides to fluorophores or gold nanoparticles enables direct and rapid imaging of homogalacturonan and chitosan with unprecedented precision in diverse plant, fungal and animal systems. We demonstrated their potential for providing new biological insights by using them to study homogalacturonan processing during Arabidopsis thaliana root cap development and by analyzing sites of chitosan deposition in fungal cell walls and arthropod exoskeletons.
Assuntos
Quitina/metabolismo , Matriz Extracelular/metabolismo , Sondas Moleculares , Oligossacarídeos , Pectinas/metabolismo , Arabidopsis/crescimento & desenvolvimento , Arabidopsis/metabolismo , Parede Celular/ultraestrutura , Quitina/isolamento & purificação , Desmidiales/ultraestrutura , Nanopartículas Metálicas , Análise em Microsséries , Microscopia Eletrônica de Transmissão , Sondas Moleculares/metabolismo , Estrutura Molecular , Oligossacarídeos/química , Oligossacarídeos/metabolismo , Imagem Óptica/métodos , Pectinas/isolamento & purificação , Coifa/crescimento & desenvolvimento , Coifa/metabolismoRESUMO
BACKGROUND AND AIMS: Cell wall changes in ripening grapes (Vitis vinifera) have been shown to involve re-modelling of pectin, xyloglucan and cellulose networks. Newer experimental techniques, such as molecular probes specific for cell wall epitopes, have yet to be extensively used in grape studies. Limited general information is available on the cell wall properties that contribute to texture differences between wine and table grapes. This study evaluates whether profiling tools can detect cell wall changes in ripening grapes from commercial vineyards. METHODS: Standard sugar analysis and infra-red spectroscopy were used to examine the ripening stages (green, véraison and ripe) in grapes collected from Cabernet Sauvignon and Crimson Seedless vineyards. Comprehensive microarray polymer profiling (CoMPP) analysis was performed on cyclohexanediaminetetraacetic acid (CDTA) and NaOH extracts of alcohol-insoluble residue sourced from each stage using sets of cell wall probes (mAbs and CBMs), and the datasets were analysed using multivariate software. KEY RESULTS: The datasets obtained confirmed previous studies on cell wall changes known to occur during grape ripening. Probes for homogalacturonan (e.g. LM19) were enriched in the CDTA fractions of Crimson Seedless relative to Cabernet Sauvignon grapes. Probes for pectic-ß-(1,4)-galactan (mAb LM5), extensin (mAb LM1) and arabinogalactan proteins (AGPs, mAb LM2) were strongly correlated with ripening. From green stage to véraison, a progressive reduction in pectic-ß-(1,4)-galactan epitopes, present in both pectin-rich (CDTA) and hemicellulose-rich (NaOH) polymers, was observed. Ripening changes in AGP and extensin epitope abundance also were found during and after véraison. CONCLUSIONS: Combinations of cell wall probes are able to define distinct ripening phases in grapes. Pectic-ß-(1,4)-galactan epitopes decreased in abundance from green stage to véraison berries. From véraison there was an increase in abundance of significant extensin and AGP epitopes, which correlates with cell expansion events. This study provides new ripening biomarkers and changes that can be placed in the context of grape berry development.
Assuntos
Parede Celular/metabolismo , Galactanos/metabolismo , Regulação da Expressão Gênica de Plantas , Glicoproteínas/metabolismo , Mucoproteínas/metabolismo , Proteínas de Plantas/metabolismo , Vitis/crescimento & desenvolvimento , Biomarcadores , Parede Celular/química , Epitopos , Frutas/crescimento & desenvolvimento , Mucoproteínas/genética , Pectinas/metabolismo , Proteínas de Plantas/genética , Vitis/genética , Vitis/imunologia , Vitis/metabolismoRESUMO
The pectin polymer homogalacturonan (HG) is a major component of land plant cell walls and is especially abundant in the middle lamella. Current models suggest that HG is deposited into the wall as a highly methylesterified polymer, demethylesterified by pectin methylesterase enzymes and cross-linked by calcium ions to form a gel. However, this idea is based largely on indirect evidence and in vitro studies. We took advantage of the wall architecture of the unicellular alga Penium margaritaceum, which forms an elaborate calcium cross-linked HG-rich lattice on its cell surface, to test this model and other aspects of pectin dynamics. Studies of live cells and microscopic imaging of wall domains confirmed that the degree of methylesterification and sufficient levels of calcium are critical for lattice formation in vivo. Pectinase treatments of live cells and immunological studies suggested the presence of another class of pectin polymer, rhamnogalacturonan I, and indicated its colocalization and structural association with HG. Carbohydrate microarray analysis of the walls of P. margaritaceum, Physcomitrella patens, and Arabidopsis (Arabidopsis thaliana) further suggested the conservation of pectin organization and interpolymer associations in the walls of green plants. The individual constituent HG polymers also have a similar size and branched structure to those of embryophytes. The HG-rich lattice of P. margaritaceum, a member of the charophyte green algae, the immediate ancestors of land plants, was shown to be important for cell adhesion. Therefore, the calcium-HG gel at the cell surface may represent an early evolutionary innovation that paved the way for an adhesive middle lamella in multicellular land plants.
Assuntos
Parede Celular/metabolismo , Carofíceas/citologia , Carofíceas/metabolismo , Pectinas/metabolismo , Cálcio/metabolismo , Adesão Celular/efeitos dos fármacos , Parede Celular/ultraestrutura , Celulose/metabolismo , Carofíceas/efeitos dos fármacos , Carofíceas/ultraestrutura , Ácido Edético/análogos & derivados , Ácido Edético/farmacologia , Epitopos/metabolismo , Análise em Microsséries , Modelos Biológicos , Pectinas/química , Pectinas/imunologia , Poligalacturonase/metabolismo , Polissacarídeo-Liases/metabolismoRESUMO
Application of the dintroaniline compound, oryzalin, which inhibits microtubule formation, to the unicellular green alga Penium margaritaceum caused major perturbations to its cell morphology, such as swelling at the wall expansion zone in the central isthmus region. Cell wall structure was also notably altered, including a thinning of the inner cellulosic wall layer and a major disruption of the homogalacturonan (HG)-rich outer wall layer lattice. Polysaccharide microarray analysis indicated that the oryzalin treatment resulted in an increase in HG abundance in treated cells but a decrease in other cell wall components, specifically the pectin rhamnogalacturonan I (RG-I) and arabinogalactan proteins (AGPs). The ring of microtubules that characterizes the cortical area of the cell isthmus zone was significantly disrupted by oryzalin, as was the extensive peripheral network of actin microfilaments. It is proposed that the disruption of the microtubule network altered cellulose production, the main load-bearing component of the cell wall, which in turn affected the incorporation of HG in the two outer wall layers, suggesting coordinated mechanisms of wall polymer deposition.
Assuntos
Parede Celular/metabolismo , Celulose/metabolismo , Clorófitas/citologia , Clorófitas/metabolismo , Microtúbulos/metabolismo , Pectinas/metabolismo , Anticorpos Monoclonais/metabolismo , Forma Celular/efeitos dos fármacos , Parede Celular/efeitos dos fármacos , Parede Celular/ultraestrutura , Clorófitas/crescimento & desenvolvimento , Clorófitas/ultraestrutura , Dinitrobenzenos/farmacologia , Glicosídeo Hidrolases/farmacologia , Imuno-Histoquímica , Análise em Microsséries , Microtúbulos/efeitos dos fármacos , Modelos Biológicos , Polissacarídeos/metabolismo , Sulfanilamidas/farmacologiaRESUMO
Vitis species include Vitis vinifera, the domesticated grapevine, used for wine and grape agricultural production and considered the world's most important fruit crop. A cell wall preparation, isolated from fully expanded photosynthetically active leaves, was fractionated via chemical and enzymatic reagents; and the various extracts obtained were assayed using high-throughput cell wall profiling tools according to a previously optimized and validated workflow. The bulk of the homogalacturonan-rich pectin present was efficiently extracted using CDTA treatment, whereas over half of the grapevine leaf cell wall consisted of vascular veins, comprised of xylans and cellulose. The main hemicellulose component was found to be xyloglucan and an enzymatic oligosaccharide fingerprinting approach was used to analyze the grapevine leaf xyloglucan fraction. When Paenibacillus sp. xyloglucanase was applied the main subunits released were XXFG and XLFG; whereas the less-specific Trichoderma reesei EGII was also able to release the XXXG motif as well as other oligomers likely of mannan and xylan origin. This latter enzyme would thus be useful to screen for xyloglucan, xylan and mannan-linked cell wall alterations in laboratory and field grapevine populations. This methodology is well-suited for high-throughput cell wall profiling of grapevine mutant and transgenic plants for investigating the range of biological processes, specifically plant disease studies and plant-pathogen interactions, where the cell wall plays a crucial role.
Assuntos
Parede Celular/química , Folhas de Planta/química , Vitis/química , Proteínas de Bactérias/química , Celulose/química , Celulose/isolamento & purificação , Fracionamento Químico , Ácido Edético/análogos & derivados , Ácido Edético/química , Proteínas Fúngicas/química , Glucanos/química , Glucanos/isolamento & purificação , Glicosídeo Hidrolases/química , Ensaios de Triagem em Larga Escala , Mananas/química , Mananas/isolamento & purificação , Paenibacillus/química , Paenibacillus/enzimologia , Pectinas/química , Pectinas/isolamento & purificação , Extratos Vegetais/química , Trichoderma/química , Trichoderma/enzimologia , Xilanos/química , Xilanos/isolamento & purificaçãoRESUMO
Plant cell wall polysaccharides are amongst the most complex, heterogeneous and abundant bio-molecules on earth. This makes the biosynthetic enzymes, namely the glycosyltransferases and polysaccharide synthases, important research targets in plant science and biotechnology. As an initial step to characterize At4g01220, a putative Arabidopsis thaliana encoding glycosyltransferases in CAZy GT-family-77 that is similar to three known xylosyltransferases involved in the biosynthesis of the pectic polysaccharide, rhamnogalacturonan II, we conducted an expression analysis. In transgenic Arabidopsis thaliana plants containing a fusion between the At4g01220 promoter and the gusA reporter gene we found the expression to be spatially and developmentally regulated. Analysis of Nicotiana benthamiana transfected with the At2g01220::YFP fusion protein revealed that the fusion protein resided in a Brefeldin A-sensitive compartment consistent with a sub-cellular location in the Golgi apparatus. In addition, in silico expression analysis from the Genevestigator database revealed that At4g01220 was up-regulated upon treatment with isoxaben, an inhibitor of cellulose synthesis, which, together with a co-expression analysis that identified a number of plant cell wall co-related biosynthetic genes, suggests involvement in cell wall biosynthesis with pectin being a prime candidate. The data presented provide insights into the expression, sub-cellular location and regulation of At4g01220 under various conditions and may help elucidate its specific function.