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1.
Ann Bot ; 133(4): 559-572, 2024 Apr 23.
Artículo en Inglés | MEDLINE | ID: mdl-38324309

RESUMEN

BACKGROUND AND AIMS: The formation of multifunctional vascular tissues represents a significant advancement in plant evolution. Differentiation of conductive cells is specific, involving two main pathways, namely protoplast clearance and cell wall modification. In xylogenesis, autophagy is a crucial process for complete protoplast elimination in tracheary elements, whose cell wall also undergoes strong changes. Knowledge pertaining to living sieve elements, which lose most of their protoplast during phloemogenesis, remains limited. We hypothesized that autophagy plays a crucial role, not only in complete cytoplasmic clearance in xylem but also in partial degradation in phloem. Cell wall elaborations of mature sieve elements are not so extensive. These analyses performed on evolutionarily diverse model species potentially make it possible to understand phloemogenesis to an equal extent to xylogenesis. METHODS: We investigated the distribution of ATG8 protein, which is an autophagy marker, and cell wall components in the roots of ferns, gymnosperms and angiosperms (monocots, dicot herbaceous plants and trees). Furthermore, we conducted a bioinformatic analysis of complete data on ATG8 isoforms for Ceratopteris richardii. KEY RESULTS: The presence of ATG8 protein was confirmed in both tracheary elements and sieve elements; however, the composition of cell wall components varied considerably among vascular tissues in the selected plants. Arabinogalactan proteins and ß-1,4-galactan were detected in the roots of all studied species, suggesting their potential importance in phloem formation or function. In contrast, no evolutionary pattern was observed for xyloglucan, arabinan or homogalacturonan. CONCLUSIONS: Our findings indicate that the involvement of autophagy in plants is universal during the development of tracheary elements that are dead at maturity and sieve elements that remain alive. Given the conserved nature of autophagy and its function in protoplast degradation for uninterrupted flow, autophagy might have played a vital role in the development of increasingly complex biological organizations, including the formation of vascular tissues. However, different cell wall compositions of xylem and phloem in different species might indicate diverse functionality and potential for substance transport, which is crucial in plant evolution.


Asunto(s)
Autofagia , Evolución Biológica , Pared Celular , Xilema , Pared Celular/metabolismo , Autofagia/fisiología , Xilema/fisiología , Cycadopsida/fisiología , Floema , Proteínas de Plantas/metabolismo , Magnoliopsida/fisiología , Helechos/fisiología , Helechos/citología
2.
New Phytol ; 242(6): 2803-2816, 2024 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-38184785

RESUMEN

We investigated the mining mode of insect feeding, involving larval consumption of a plant's internal tissues, from the Middle Jurassic (165 million years ago) Daohugou locality of Northeastern China. Documentation of mining from the Jurassic Period is virtually unknown, and results from this time interval would address mining evolution during the temporal gap of mine-seed plant diversifications from the previous Late Triassic to the subsequent Early Cretaceous. Plant fossils were examined with standard microscopic procedures for herbivory and used the standard functional feeding group-damage-type system of categorizing damage. All fossil mines were photographed and databased. We examined 2014 plant specimens, of which 27 occurrences on 14 specimens resulted in eight, new, mine damage types (DTs) present on six genera of bennettitalean, ginkgoalean, and pinalean gymnosperms. Three conclusions emerge from this study. First, these mid-Mesozoic mines are morphologically conservative and track plant host anatomical structure rather than plant phylogeny. Second, likely insect fabricators of these mines were three basal lineages of polyphagan beetles, four basal lineages of monotrysian moths, and a basal lineage tenthredinoid sawflies. Third, the nutrition hypothesis, indicating that miners had greater access to nutritious, inner tissues of new plant lineages, best explains mine evolution during the mid-Mesozoic.


Asunto(s)
Evolución Biológica , Cycadopsida , Fósiles , Insectos , Animales , Insectos/fisiología , Insectos/anatomía & histología , Cycadopsida/fisiología , Cycadopsida/anatomía & histología , Herbivoria , Filogenia , Minería , China
3.
Nat Plants ; 7(6): 748-756, 2021 06.
Artículo en Inglés | MEDLINE | ID: mdl-34135482

RESUMEN

Gymnosperms are a unique lineage of plants that currently lack a high-quality reference genome due to their large genome size and high repetitive sequence content. Here, we report a nearly complete genome assembly for Ginkgo biloba with a genome size of 9.87 Gb, an N50 contig size of 1.58 Mb and an N50 scaffold size of 775 Mb. We were able to accurately annotate 27,832 protein-coding genes in total, superseding the inaccurate annotation of 41,840 genes in a previous draft genome assembly. We found that expansion of the G. biloba genome, accompanied by the notable extension of introns, was mainly caused by the insertion of long terminal repeats rather than the recent occurrence of whole-genome duplication events, in contrast to the findings of a previous report. We also identified candidate genes in the central pair, intraflagellar transport and dynein protein families that are associated with the formation of the spermatophore flagellum, which has been lost in all seed plants except ginkgo and cycads. The newly obtained Ginkgo genome provides new insights into the evolution of the gymnosperm genome.


Asunto(s)
Evolución Biológica , Genoma de Planta , Ginkgo biloba/genética , Proteínas de Plantas/genética , Cycadopsida/genética , Cycadopsida/fisiología , Elementos Transponibles de ADN , Flores/genética , Intrones , Filogenia , Hojas de la Planta/genética , Secuencias Repetidas Terminales
4.
Photosynth Res ; 149(1-2): 171-185, 2021 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-33534052

RESUMEN

Alternative electron fluxes such as the cyclic electron flux (CEF) around photosystem I (PSI) and Mehler reaction (Me) are essential for efficient photosynthesis because they generate additional ATP and protect both photosystems against photoinhibition. The capacity for Me can be estimated by measuring O2 exchange rate under varying irradiance and CO2 concentration. In this study, mass spectrometric measurements of O2 exchange were made using leaves of representative species of C3 and C4 grasses grown under natural light (control; PAR ~ 800 µmol quanta m-2 s-1) and shade (~ 300 µmol quanta m-2 s-1), and in representative species of gymnosperm, liverwort and fern grown under natural light. For all control grown plants measured at high CO2, O2 uptake rates were similar between the light and dark, and the ratio of Rubisco oxygenation to carboxylation (Vo/Vc) was low, which suggests little potential for Me, and that O2 uptake was mainly due to photorespiration or mitochondrial respiration under these conditions. Low CO2 stimulated O2 uptake in the light, Vo/Vc and Me in all species. The C3 species had similar Vo/Vc, but Me was highest in the grass and lowest in the fern. Among the C4 grasses, shade increased O2 uptake in the light, Vo/Vc and the assimilation quotient (AQ), particularly at low CO2, whilst Me was only substantial at low CO2 where it may contribute 20-50% of maximum electron flow under high light.


Asunto(s)
Adaptación Ocular/fisiología , Dióxido de Carbono/metabolismo , Transporte de Electrón/fisiología , Oxígeno/metabolismo , Fotosíntesis/fisiología , Luz Solar/efectos adversos , Productos Agrícolas/fisiología , Cycadopsida/fisiología , Ginkgo biloba/fisiología , Marchantia/fisiología , Hojas de la Planta/metabolismo , Poaceae/fisiología , Polypodium/fisiología , Zea mays/fisiología
5.
Plant J ; 103(4): 1372-1385, 2020 08.
Artículo en Inglés | MEDLINE | ID: mdl-32390169

RESUMEN

Cell wall thickness is widely recognized as one of the main determinants of mesophyll conductance to CO2 (gm ). However, little is known about the components that regulate effective CO2 diffusivity in the cell wall (i.e. the ratio between actual porosity and tortuosity, the other two biophysical diffusion properties of cell walls). The aim of this study was to assess, at the interspecific level, potential relationships between cell wall composition, cell wall thickness (Tcw ) and gm . Gymnosperms constitute an ideal group to deepen these relationships, as they present, on average, the thickest cell walls within spermatophytes. We characterized the foliar gas exchange, the morphoanatomical traits related with gm , the leaf fraction constituted by cell walls and three main components of primary cell walls (hemicelluloses, cellulose and pectins) in seven gymnosperm species. We found that, although the relatively low gm of gymnosperms was mainly determined by their elevated Tcw , gm was also strongly correlated with cell wall composition, which presumably sets the final effective CO2 diffusivity. The data presented here suggest that (i) differences in gm are strongly correlated to the pectins to hemicelluloses and cellulose ratio in gymnosperms, and (ii) variations in cell wall composition may modify effective CO2 diffusivity in the cell wall to compensate the negative impact of thickened walls. We speculate that higher relative pectin content allows higher gm because pectins increase cell wall hydrophilicity and CO2 molecules cross the wall dissolved in water.


Asunto(s)
Pared Celular/metabolismo , Cycadopsida/metabolismo , Células del Mesófilo/metabolismo , Dióxido de Carbono/metabolismo , Pared Celular/fisiología , Clorofila/metabolismo , Cycadopsida/fisiología , Células del Mesófilo/fisiología , Fotosíntesis , Hojas de la Planta/anatomía & histología , Hojas de la Planta/metabolismo , Hojas de la Planta/fisiología , Transpiración de Plantas
6.
Plant Cell Environ ; 43(1): 28-39, 2020 01.
Artículo en Inglés | MEDLINE | ID: mdl-31677177

RESUMEN

Vapour pressure deficit is a major driver of seasonal changes in transpiration, but photoperiod also modulates leaf responses. Climate warming might enhance transpiration by increasing atmospheric water demand and the length of the growing season, but photoperiod-sensitive species could show dampened responses. Here, we document that day length is a significant driver of the seasonal variation in stomatal conductance. We performed weekly gas exchange measurements across a common garden experiment with 12 oak species from contrasting geographical origins, and we observed that the influence of day length was of similar strength to that of vapour pressure deficit in driving the seasonal pattern. We then examined the generality of our findings by incorporating day-length regulation into well-known stomatal models. For both angiosperm and gymnosperm species, the models improved significantly when adding day-length dependences. Photoperiod control over stomatal conductance could play a large yet underexplored role on the plant and ecosystem water balances.


Asunto(s)
Estomas de Plantas/fisiología , Quercus/fisiología , Estaciones del Año , Cycadopsida/fisiología , Magnoliopsida/fisiología , Fotoperiodo , Hojas de la Planta/fisiología , Transpiración de Plantas/fisiología , Árboles/fisiología , Presión de Vapor
7.
BMC Plant Biol ; 19(1): 402, 2019 Sep 13.
Artículo en Inglés | MEDLINE | ID: mdl-31519148

RESUMEN

BACKGROUND: Around the Cretaceous-Paleogene (K-Pg) boundary, an obvious global cooling occurred, which resulted in dramatic changes in terrestrial ecosystems and the evolutionary trends of numerous organisms. However, how plant lineages responded to the cooling has remained unknown until now. Between ca. 70-60 Ma Mesocyparis McIver & Basinger (Cupressaceae), an extinct conifer genus, was distributed from eastern Asia to western North America and provides an excellent opportunity to solve this riddle. RESULTS: Here we report a new species, Mesocyparis sinica from the early Paleocene of Jiayin, Heilongjiang, northeastern China. By integrating lines of evidence from phylogeny and comparative morphology of Mesocyparis, we found that during ca.70-60 Ma, the size of seed cone of Mesocyparis more than doubled, probably driven by the cooling during the K-Pg transition, which might be an effective adaptation for seed dispersal by animals. More importantly, we discovered that the northern limit of this genus, as well as those of two other arboreal taxa Metasequoia Miki ex Hu et Cheng (gymnosperm) and Nordenskioldia Heer (angiosperm), migrated ca.4-5° southward in paleolatitude during this time interval. CONCLUSIONS: Our results suggest that the cooling during the K-Pg transition may have been responsible for the increase in size of the seed cone of Mesocyparis and have driven the migration of plants southwards.


Asunto(s)
Fósiles , Evolución Biológica , Cycadopsida/fisiología , Ecosistema , Magnoliopsida/fisiología , Plantas
8.
Am J Bot ; 106(7): 1011-1020, 2019 07.
Artículo en Inglés | MEDLINE | ID: mdl-31294836

RESUMEN

PREMISE: Male gametophytes of most seed plants deliver sperm to eggs via a pollen tube. Pollen tube growth rates (PTGRs) of angiosperms are exceptionally rapid, a pattern attributed to more effective haploid selection under stronger pollen competition. Paradoxically, whole genome duplication (WGD) has been common in angiosperms but rare in gymnosperms. Pollen tube polyploidy should initially accelerate PTGR because increased heterozygosity and gene dosage should increase metabolic rates. However, polyploidy should also independently increase tube cell size, causing more work which should decelerate growth. We asked how genome size changes have affected the evolution of seed plant PTGRs. METHODS: We assembled a phylogenetic tree of 451 species with known PTGRs. We then used comparative phylogenetic methods to detect effects of neo-polyploidy (within-genus origins), DNA content, and WGD history on PTGR, and correlated evolution of PTGR and DNA content. RESULTS: Gymnosperms had significantly higher DNA content and slower PTGR optima than angiosperms, and their PTGR and DNA content were negatively correlated. For angiosperms, 89% of model weight favored Ornstein-Uhlenbeck models with a faster PTGR optimum for neo-polyploids, whereas PTGR and DNA content were not correlated. For within-genus and intraspecific-cytotype pairs, PTGRs of neo-polyploids < paleo-polyploids. CONCLUSIONS: Genome size increases should negatively affect PTGR when genetic consequences of WGDs are minimized, as found in intra-specific autopolyploids (low heterosis) and gymnosperms (few WGDs). But in angiosperms, the higher PTGR optimum of neo-polyploids and non-negative PTGR-DNA content correlation suggest that recurrent WGDs have caused substantial PTGR evolution in a non-haploid state.


Asunto(s)
Evolución Biológica , Cycadopsida/fisiología , Magnoliopsida/fisiología , Tubo Polínico/crecimiento & desarrollo , Poliploidía , Tamaño del Genoma , Genoma de Planta , Filogenia
9.
Plant Physiol ; 180(2): 743-756, 2019 06.
Artículo en Inglés | MEDLINE | ID: mdl-30918084

RESUMEN

Cone thermogenesis is a widespread phenomenon in cycads and may function to promote volatile emissions that affect pollinator behavior. Given their large population size and intense and durable heat-producing effects, cycads are important organisms for comprehensive studies of plant thermogenesis. However, knowledge of mitochondrial morphology and function in cone thermogenesis is limited. Therefore, we investigated these mitochondrial properties in the thermogenic cycad species Cycas revoluta Male cones generated heat even in cool weather conditions. Female cones produced heat, but to a lesser extent than male cones. Ultrastructural analyses of the two major tissues of male cones, microsporophylls and microsporangia, revealed the existence of a population of mitochondria with a distinct morphology in the microsporophylls. In these cells, we observed large mitochondria (cross-sectional area of 2 µm2 or more) with a uniform matrix density that occupied >10% of the total mitochondrial volume. Despite the size difference, many nonlarge mitochondria (cross-sectional area <2 µm2) also exhibited a shape and a matrix density similar to those of large mitochondria. Alternative oxidase (AOX) capacity and expression levels in microsporophylls were much higher than those in microsporangia. The AOX genes expressed in male cones revealed two different AOX complementary DNA sequences: CrAOX1 and CrAOX2 The expression level of CrAOX1 mRNA in the microsporophylls was 100 times greater than that of CrAOX2 mRNA. Collectively, these results suggest that distinctive mitochondrial morphology and CrAOX1-mediated respiration in microsporophylls might play a role in cycad cone thermogenesis.


Asunto(s)
Cycadopsida/enzimología , Cycadopsida/fisiología , Mitocondrias/enzimología , Proteínas Mitocondriales/metabolismo , Oxidorreductasas/metabolismo , Proteínas de Plantas/metabolismo , Polen/enzimología , Termogénesis , Respiración de la Célula , Cycadopsida/genética , Cycadopsida/ultraestructura , Regulación de la Expresión Génica de las Plantas , Genes de Plantas , Mitocondrias/ultraestructura , Membranas Mitocondriales/metabolismo , Especificidad de Órganos/genética , Polen/ultraestructura , ARN Mensajero/genética , ARN Mensajero/metabolismo , Temperatura
10.
New Phytol ; 222(4): 1883-1892, 2019 06.
Artículo en Inglés | MEDLINE | ID: mdl-30740702

RESUMEN

Origins of abscisic acid (ABA)-mediated metabolic control of stomatal conductance have been suggested to be recent, based on a gradualistic model of stomatal evolution. In ferns, steady-state stomatal conductance (gs ) was unresponsive to ABA in some studies, supporting this model. Stomatal kinetic responses to ABA have not been considered. We used dynamic gas exchange methods to characterise half times of stomatal opening and closing in response to step changes in light, across a range of ABA exposures in three diverse taxa. All taxa had asymmetric kinetics, with closure slower than opening in fern and cedar, but faster than opening in soybean. Closing was fastest in soybean but opening was slowest. Stomatal kinetics, particularly for closure, responded to ABA in all three taxa. Steady-state gs did not respond significantly to ABA in fern or cedar but responded strongly in soybean. Stomatal kinetics were responsive to ABA in fern. This finding supports a contrasting, single origin model, with ABA-mediated regulation of stomata arising early, in conjunction with stomata themselves. Stomatal kinetics are underutilised. Differential responses of opening and closing rates to environmental and hormonal stimuli may provide insights into phylogeny and stomatal regulatory strategies with potential application to selection for crop improvement.


Asunto(s)
Ácido Abscísico/farmacología , Cycadopsida/fisiología , Helechos/fisiología , Magnoliopsida/fisiología , Estomas de Plantas/fisiología , Cycadopsida/efectos de los fármacos , Helechos/efectos de los fármacos , Cinética , Magnoliopsida/efectos de los fármacos , Estomas de Plantas/efectos de los fármacos , Factores de Tiempo
11.
Plant Reprod ; 32(2): 153-166, 2019 06.
Artículo en Inglés | MEDLINE | ID: mdl-30430247

RESUMEN

KEY MESSAGE: Complex protein-containing reproductive secretions are a conserved trait amongst all extant gymnosperms; the pollination drops of most groups include carbohydrate-modifying enzymes and defence proteins. Pollination drops are aqueous secretions that receive pollen and transport it to the ovule interior in gymnosperms (Coniferales, Cycadales, Ginkgoales, Gnetales). Proteins are well established as components of pollination drops in conifers (Coniferales) and Ephedra spp. (Gnetales), but it is unknown whether proteins are also present in the pollination drops of cycads (Cycadales), Ginkgo (Ginkgoales), Gnetum (Gnetales), or in the pollination drops produced by sterile ovules occurring on pollen plants in the Gnetales. We used liquid chromatography-tandem mass spectrometry followed by database-derived protein identification to conduct proteomic surveys of pollination drops collected from: Ceratozamia hildae, Zamia furfuracea and Cycas rumphii (Cycadales); Ginkgo biloba (Ginkgoales); Gnetum gnemon and Welwitschia mirabilis, including pollination drops from both microsporangiate and ovulate plants (Gnetales). We identified proteins in all samples: C. hildae (61), Z. furfuracea (40), C. rumphii (9), G. biloba (57), G. gnemon ovulate (17) and sterile ovules from microsporangiate plants (25) and W. mirabilis fertile ovules (1) and sterile ovules from microsporangiate plants (138). Proteins involved in defence and carbohydrate modification occurred in the drops of most groups, indicating conserved functions for proteins in pollination drops. Our study demonstrates that all extant gymnosperm groups produce complex reproductive secretions containing proteins, an ancient trait that likely contributed to the evolutionary success of seed plants.


Asunto(s)
Cycadopsida/fisiología , Proteínas de Plantas/metabolismo , Polinización/fisiología , Proteómica , Evolución Biológica , Óvulo Vegetal/fisiología , Fenotipo , Polen/fisiología , Reproducción
12.
ScientificWorldJournal ; 2018: 6126528, 2018.
Artículo en Inglés | MEDLINE | ID: mdl-29988203

RESUMEN

Late Cretaceous-Paleocene foraminiferans and palynomorphs were recovered from the upper section of the Djega outcrop in the Rio del Rey Basin. Only a few planktonic foraminiferan species of the genera Heterohelix and Hedbergella were recovered among an assemblage dominated by calcareous and agglutinated benthonics. Marine dinocysts are curiously absent from among the palynomorph assemblage, which consists dominantly of pollen grains from land plants (angiosperms and gymnosperms) and pteridophytic spores, together with a few fungal remains. Two benthonic foraminiferal assemblages that include the Campanian-Maastrichtian Bolivina afra-Haplophragmoides talokensis and the Paleocene Anomalinoides umboniferus-Eponides pseudoelevatus are well established at this outcrop. The palynomorphs include a few typical Late Cretaceous and typical Paleogene species, while the majority are long ranging forms that straddle the Cretaceous-Tertiary boundary. The foraminiferal and palynomorph biostratigraphic distributions permitted us to recognize the succession of Campanian-Maastrichtian and Paleocene strata and the Cretaceous-Tertiary boundary for the first time in this basin. Lithofacies change from a monotonous thick pile of shales below, succeeded by sandstones, frequently alternating with mudstone, above. This indicates a general fall in sea level during the Early Paleocene earlier reported within this subregion, and the boundary marks the start of the out building of the Niger Delta which the Tertiary Rio del Rey Basin is part of. Both microfossils and lithofacies analyses aided the reconstruction of an open marine, probably middle to inner neritic shallow and transitional intertidal paleodepositional environments for the sediments exposed at this outcrop.


Asunto(s)
Foraminíferos/fisiología , Camerún , Cycadopsida/fisiología , Fósiles , Magnoliopsida/fisiología , Esporas Protozoarias/fisiología
13.
J Theor Biol ; 453: 48-57, 2018 09 14.
Artículo en Inglés | MEDLINE | ID: mdl-29782932

RESUMEN

Resins are plant exudates of economic importance used by plants as defence. They flow out of resin ducts, open and long tube-like intercellular spaces lined by a layer of specialized parenchyma cells, called the epithelium, which secrete resin into the duct lumen. A model that describes resin flow in conifers is presented to investigate how duct structure, resin loading, crystallisation, and viscosity affect flow and could explain differences between species. Considering resin viscosity, the structure of resin ducts, and a pressure-driven resin loading through the duct wall, the unsteady Stokes equation was applied. There is an increase in flow towards the open end that is favoured by the duct geometry. Both flow and pressure depend on the loading mechanism and on the duct resistance, which depends on the duct geometry, viscosity and duct wall permeability to resin. These results confirm previous measurements and observations made on Pinaceae and seem to be physiologically advantageous for the defence role of resin. Understanding of how these physiological and morphological parameters affect resin flow might be useful for selecting varieties and species having a high resin yielding capacity. The model presented in this paper is also applicable to other external secretory systems in plants.


Asunto(s)
Hidrodinámica , Resinas de Plantas/metabolismo , Tracheophyta/fisiología , Cycadopsida/fisiología , Magnoliopsida/fisiología , Modelos Biológicos , Modelos Teóricos , Pinaceae/fisiología
14.
Glob Chang Biol ; 24(5): 2143-2158, 2018 05.
Artículo en Inglés | MEDLINE | ID: mdl-29488293

RESUMEN

Forecasted increase drought frequency and severity may drive worldwide declines in forest productivity. Species-level responses to a drier world are likely to be influenced by their functional traits. Here, we analyse forest resilience to drought using an extensive network of tree-ring width data and satellite imagery. We compiled proxies of forest growth and productivity (TRWi, absolutely dated ring-width indices; NDVI, Normalized Difference Vegetation Index) for 11 tree species and 502 forests in Spain corresponding to Mediterranean, temperate, and continental biomes. Four different components of forest resilience to drought were calculated based on TRWi and NDVI data before, during, and after four major droughts (1986, 1994-1995, 1999, and 2005), and pointed out that TRWi data were more sensitive metrics of forest resilience to drought than NDVI data. Resilience was related to both drought severity and forest composition. Evergreen gymnosperms dominating semi-arid Mediterranean forests showed the lowest resistance to drought, but higher recovery than deciduous angiosperms dominating humid temperate forests. Moreover, semi-arid gymnosperm forests presented a negative temporal trend in the resistance to drought, but this pattern was absent in continental and temperate forests. Although gymnosperms in dry Mediterranean forests showed a faster recovery after drought, their recovery potential could be constrained if droughts become more frequent. Conversely, angiosperms and gymnosperms inhabiting temperate and continental sites might have problems to recover after more intense droughts since they resist drought but are less able to recover afterwards.


Asunto(s)
Cycadopsida/fisiología , Sequías , Bosques , Magnoliopsida/fisiología , Región Mediterránea , España , Factores de Tiempo
15.
Tree Physiol ; 38(7): 1016-1025, 2018 07 01.
Artículo en Inglés | MEDLINE | ID: mdl-29474679

RESUMEN

Methods to estimate xylem embolism resistance generally rely on hydraulic measurements, which can be far from straightforward. Recently, a pneumatic method based on air flow measurements of terminal branch ends was proposed to construct vulnerability curves by linking the amount of air extracted from a branch with the degree of embolism. We applied this novel technique for 10 temperate tree species, including six diffuse, two ring-porous and two gymnosperm species, and compared the pneumatic curves with hydraulic ones obtained from either the flow-centrifuge or the hydraulic-bench dehydration method. We found that the pneumatic method provides a good estimate of the degree of xylem embolism for all angiosperm species. The xylem pressure at 50% and 88% loss of hydraulic conductivity (i.e., Ψ50 and Ψ88) based on the methods applied showed a strongly significant correlation for all eight angiosperms. However, the pneumatic method showed significantly reduced Ψ50 values for the two conifers. Our findings suggest that the pneumatic method could provide a fast and accurate approach for angiosperms due to its convenience and feasibility, at least within the range of embolism resistances covered by our samples.


Asunto(s)
Transpiración de Plantas , Árboles/fisiología , Xilema/fisiología , Cycadopsida/fisiología , Magnoliopsida/fisiología , Tallos de la Planta/fisiología
16.
Sci Rep ; 8(1): 3516, 2018 02 23.
Artículo en Inglés | MEDLINE | ID: mdl-29476087

RESUMEN

The majority of the analyses of the evolutionary history of the megadiverse class Insecta are based on the documented taxonomic palaeobiodiversity. A different approach, poorly investigated, is to focus on morphological disparity, linked to changes in the organisms' functioning. Here we establish a hierarchy of the great geological epochs based on a new method using Wagner parsimony and a 'presence/absence of a morphological type of mouthpart of Hexapoda' dataset. We showed the absence of major rupture in the evolution of the mouthparts, but six epochs during which numerous innovations and few extinctions happened, i.e., Late Carboniferous, Middle and Late Triassic, 'Callovian-Oxfordian', 'Early' Cretaceous, and 'Albian-Cenomanian'. The three crises Permian-Triassic, Triassic-Jurassic, and Cretaceous-Cenozoic had no strong, visible impact on mouthparts types. We particularly emphasize the origination of mouthparts linked to nectarivory during the Cretaceous Terrestrial Revolution. We also underline the origination of mouthparts linked to phytophagy during the Middle and the Late Triassic, correlated to the diversification of the gymnosperms, especially in relation to the complex 'flowers' producing nectar of the Bennettitales and Gnetales.


Asunto(s)
Evolución Biológica , Fósiles/anatomía & histología , Insectos/clasificación , Boca/anatomía & histología , Filogenia , Animales , Biodiversidad , Cycadopsida/anatomía & histología , Cycadopsida/fisiología , Conjuntos de Datos como Asunto , Extinción Biológica , Conducta Alimentaria/fisiología , Fósiles/historia , Herbivoria/fisiología , Historia Antigua , Insectos/anatomía & histología , Néctar de las Plantas
17.
Ann Bot ; 121(3): 483-488, 2018 03 05.
Artículo en Inglés | MEDLINE | ID: mdl-29293875

RESUMEN

Background and Aims: The leaf axis of members of the order Cycadales ('cycads') has long been recognized by its configuration of independent vascular bundles that, in transverse section, resemble the Greek letter omega (hence the 'omega pattern'). This provides a useful diagnostic character for the order, especially when applied to paleobotany. The function of this pattern has never been elucidated. Here we provide a three-dimensional analysis and explain the pattern in terms of the hydraulic architecture of the pinnately compound cycad leaf. Methods: The genus Cycas was used as a simple model, because each leaflet is supplied by a single vascular bundle. Sequential sectioning was conducted throughout the leaf axis and photographed with a digital camera. Photographs were registered and converted to a cinematic format, which provided an objective method of analysis. Key Results: The omega pattern in the petiole can be sub-divided into three vascular components, an abaxial 'circle', a central 'column' and two adaxial 'wings', the last being the only direct source of vascular supply to the leaflets. Each leaflet is supplied by a vascular bundle that has divided or migrated directly from the closest wing bundle. There is neither multiplication nor anastomoses of vascular bundles in the other two components. Thus, as one proceeds from base to apex along the leaf axis, the number of vascular bundles in circle and column components is reduced distally by their uniform migration throughout all components. Consequently, the distal leaflets are irrigated by the more abaxial bundles, guaranteeing uniform water supply along the length of the axis. Conclusions: The omega pattern exemplifies one of the many solutions plants have achieved in supplying distal appendages of an axis with a uniform water supply. Our method presents a model that can be applied to other genera of cycads with more complex vascular organization.


Asunto(s)
Cycadopsida/anatomía & histología , Hojas de la Planta/anatomía & histología , Cycadopsida/fisiología , Cycadopsida/ultraestructura , Modelos Biológicos , Hojas de la Planta/fisiología , Hojas de la Planta/ultraestructura , Agua/metabolismo
18.
Nat Plants ; 4(2): 82-89, 2018 02.
Artículo en Inglés | MEDLINE | ID: mdl-29379155

RESUMEN

Gnetophytes are an enigmatic gymnosperm lineage comprising three genera, Gnetum, Welwitschia and Ephedra, which are morphologically distinct from all other seed plants. Their distinctiveness has triggered much debate as to their origin, evolution and phylogenetic placement among seed plants. To increase our understanding of the evolution of gnetophytes, and their relation to other seed plants, we report here a high-quality draft genome sequence for Gnetum montanum, the first for any gnetophyte. By using a novel genome assembly strategy to deal with high levels of heterozygosity, we assembled >4 Gb of sequence encoding 27,491 protein-coding genes. Comparative analysis of the G. montanum genome with other gymnosperm genomes unveiled some remarkable and distinctive genomic features, such as a diverse assemblage of retrotransposons with evidence for elevated frequencies of elimination rather than accumulation, considerable differences in intron architecture, including both length distribution and proportions of (retro) transposon elements, and distinctive patterns of proliferation of functional protein domains. Furthermore, a few gene families showed Gnetum-specific copy number expansions (for example, cellulose synthase) or contractions (for example, Late Embryogenesis Abundant protein), which could be connected with Gnetum's distinctive morphological innovations associated with their adaptation to warm, mesic environments. Overall, the G. montanum genome enables a better resolution of ancestral genomic features within seed plants, and the identification of genomic characters that distinguish Gnetum from other gymnosperms.


Asunto(s)
Cycadopsida/genética , Evolución Molecular , Genoma de Planta/genética , Gnetum/genética , Cycadopsida/fisiología , Variaciones en el Número de Copia de ADN , Elementos Transponibles de ADN/genética , Deshidratación , Duplicación de Gen , Genómica , Gnetum/fisiología , Intrones/genética , Anotación de Secuencia Molecular , Hojas de la Planta/genética , Hojas de la Planta/fisiología , Dominios Proteicos , Secuencias Repetitivas de Ácidos Nucleicos/genética , Semillas/genética , Semillas/fisiología
19.
Nat Ecol Evol ; 1(9): 1285-1291, 2017 Sep.
Artículo en Inglés | MEDLINE | ID: mdl-29046541

RESUMEN

Widespread tree mortality associated with drought has been observed on all forested continents and global change is expected to exacerbate vegetation vulnerability. Forest mortality has implications for future biosphere-atmosphere interactions of carbon, water and energy balance, and is poorly represented in dynamic vegetation models. Reducing uncertainty requires improved mortality projections founded on robust physiological processes. However, the proposed mechanisms of drought-induced mortality, including hydraulic failure and carbon starvation, are unresolved. A growing number of empirical studies have investigated these mechanisms, but data have not been consistently analysed across species and biomes using a standardized physiological framework. Here, we show that xylem hydraulic failure was ubiquitous across multiple tree taxa at drought-induced mortality. All species assessed had 60% or higher loss of xylem hydraulic conductivity, consistent with proposed theoretical and modelled survival thresholds. We found diverse responses in non-structural carbohydrate reserves at mortality, indicating that evidence supporting carbon starvation was not universal. Reduced non-structural carbohydrates were more common for gymnosperms than angiosperms, associated with xylem hydraulic vulnerability, and may have a role in reducing hydraulic function. Our finding that hydraulic failure at drought-induced mortality was persistent across species indicates that substantial improvement in vegetation modelling can be achieved using thresholds in hydraulic function.


Asunto(s)
Carbono/deficiencia , Sequías , Transpiración de Plantas/fisiología , Árboles/fisiología , Xilema/fisiología , Cambio Climático , Cycadopsida/fisiología , Magnoliopsida/fisiología , Dinámica Poblacional , Estrés Fisiológico
20.
Photosynth Res ; 134(2): 149-164, 2017 Nov.
Artículo en Inglés | MEDLINE | ID: mdl-28689227

RESUMEN

The present work was aimed to explain the recently reported higher O2-dependent electron flow capacity in gymnosperms than in angiosperms and to search for other differences in the electron transport processes by simultaneous characterization of the relative capacities of pseudocyclic (direct or Flavodiiron proteins (Flv)-mediated O2-reduction, Mehler(-like) reactions) and cyclic electron flows around photosystem I (CEF-PSI). To this end, a comparative multicomponent analysis was performed on the fluorescence decay curves of dark-adapted leaves after illumination with a 1-s saturating light pulse. In both gymnosperms and angiosperms, two or three exponential decay components were resolved: fast (t 1/21 ~ 170-260 ms), middle (~1.0-2.3 s), and slow (>4.2 s). The sensitivity of the decay parameters (amplitudes A1-3, halftimes t 1/2 1-3) to the alternative electron flows was assessed using Arabidopsis pgr5 and ndhM mutants, defective in CEF-PSI, Synechocystis sp. PCC 6803 Δflv1 mutant, defective in Flv-mediated O2-photoreduction, different O2 concentrations, and methyl viologen treatment. A1 reflected the part of electrons involved in linear and O2-photoreduction pathways after PSI. The middle component appeared in pgr5 (but not in ndhM), in gymnosperms under low O2, and in Δflv1, and reflected limitations at the PSI acceptor side. The slow component was sensitive to CEF-PSI. The comparison of decay parameters provided evidence that Flv mediate O2-photoreduction in gymnosperms, which explains their higher O2-dependent electron flow capacity. The concomitant quantification of relative electrons branching in O2-photoreduction and CEF-PSI pathways under the applied non-steady-state photosynthetic conditions reveals that CEF-PSI capacity significantly exceeds that of O2-photoreduction in angiosperms while the opposite occurs in gymnosperms.


Asunto(s)
Cycadopsida/fisiología , Transporte de Electrón/fisiología , Magnoliopsida/fisiología , Fotoperiodo , Hojas de la Planta/fisiología , Clorofila/química , Clorofila/metabolismo , Fluorescencia , Oxígeno/metabolismo
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