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1.
BMC Plant Biol ; 24(1): 414, 2024 May 17.
Article in English | MEDLINE | ID: mdl-38760680

ABSTRACT

BACKGROUND: Variations in hydraulic conductivity may arise from species-specific differences in the anatomical structure and function of the xylem, reflecting a spectrum of plant strategies along a slow-fast resource economy continuum. Spruce (Picea spp.), a widely distributed and highly adaptable tree species, is crucial in preventing soil erosion and enabling climate regulation. However, a comprehensive understanding of the variability in anatomical traits of stems and their underlying drivers in the Picea genus is currently lacking especially in a common garden. RESULTS: We assessed 19 stem economic properties and hydraulic characteristics of 17 Picea species grown in a common garden in Tianshui, Gansu Province, China. Significant interspecific differences in growth and anatomical characteristics were observed among the species. Specifically, xylem hydraulic conductivity (Ks) and hydraulic diameter exhibited a significant negative correlation with the thickness to span ratio (TSR), cell wall ratio, and tracheid density and a significant positive correlation with fiber length, and size of the radial tracheid. PCA revealed that the first two axes accounted for 64.40% of the variance, with PC1 reflecting the trade-off between hydraulic efficiency and mechanical support and PC2 representing the trade-off between high embolism resistance and strong pit flexibility. Regression analysis and structural equation modelling further confirmed that tracheid size positively influenced Ks, whereas the traits DWT, D_r, and TSR have influenced Ks indirectly. All traits failed to show significant phylogenetic associations. Pearson's correlation analysis demonstrated strong correlations between most traits and longitude, with the notable influence of the mean temperature during the driest quarter, annual precipitation, precipitation during the wettest quarter, and aridity index. CONCLUSIONS: Our results showed that xylem anatomical traits demonstrated considerable variability across phylogenies, consistent with the pattern of parallel sympatric radiation evolution and global diversity in spruce. By integrating the anatomical structure of the stem xylem as well as environmental factors of origin and evolutionary relationships, our findings provide novel insights into the ecological adaptations of the Picea genus.


Subject(s)
Climate , Picea , Wood , Xylem , Picea/anatomy & histology , Picea/physiology , Picea/growth & development , Wood/anatomy & histology , Xylem/anatomy & histology , Xylem/physiology , China , Species Specificity , Plant Stems/anatomy & histology , Plant Stems/physiology , Plant Stems/growth & development
2.
BMC Plant Biol ; 24(1): 323, 2024 Apr 24.
Article in English | MEDLINE | ID: mdl-38658848

ABSTRACT

BACKGROUND: Water stress seriously affects the survival of plants in natural ecosystems. Plant resistance to water stress relies on adaptive strategies, which are mainly based on plant anatomy with following relevant functions: (1) increase in water uptake and storage; (2) reduction of water loss; and (3) mechanical reinforcement of tissues. We measured 15 leaf-stem anatomical traits of five dominant shrub species from 12 community plots in the eastern Qaidam Basin to explore adaptive strategies based on plant leaf-stem anatomy at species and community levels. and their relationship with environmental stresses were tested. RESULTS: Results showed that the combination of leaf-stem anatomical traits formed three types of adaptive strategies with the drought tolerance of leaf and stem taken as two coordinate axes. Three types of water stress were caused by environmental factors in the eastern Qaidam Basin, and the established adaptive strategy triangle could be well explained by these environmental stresses. The interpretation of the strategic triangle was as follows: (1) exploitative plant strategy, in which leaf and stem adopt the hydraulic efficiency strategy and safety strategy, respectively. This strategy is mostly applied to plants in sandy desert (i.e., Nitraria tangutorum, and Artemisia sphaerocephala) which is mainly influenced by drought stress; (2) stable plant strategy, in which both leaf/assimilation branches and stem adopt hydraulic safety strategy. This strategy is mostly applied to plants in salty desert (i.e., Kalidium foliatum and Haloxylon ammodendron) which aridity has little effect on them; and (3) opportunistic plant strategy, in which leaf and stem adopt hydraulic safety strategy and water transport efficiency strategy. This strategy is mostly applied to plants in multiple habitats (i.e., Sympegma regelii) which is mainly affected by coldness stress. CONCLUSION: The proposed adaptive strategy system could provide a basis for elucidating the ecological adaptation mechanism of desert woody plants and the scientific management of natural vegetation in the Qinghai-Tibet Plateau.


Subject(s)
Adaptation, Physiological , Plant Leaves , Plant Stems , Plant Leaves/anatomy & histology , Plant Leaves/physiology , Plant Stems/anatomy & histology , Plant Stems/physiology , Droughts , Water/metabolism , China , Ecosystem , Stress, Physiological
3.
Tree Physiol ; 44(4)2024 Apr 03.
Article in English | MEDLINE | ID: mdl-38531772

ABSTRACT

Xylem embolism is a significant factor in tree mortality. Restoration of hydraulic conductivity after massive embolization of the vascular system requires the application of positive pressure to the vessels and/or the creation of new conductive elements. Some species generate positive pressure from the root system to propagate pressure in distal, aboveground organs in spring, whereas other species generate positive pressure locally at the stem level during winter. We provide a mechanistic explanation for winter stem pressure build-up in the walnut tree. We have developed a physical model that accounts for temperature fluctuations and phase transitions. This model is based on the exchange of water and sugars between living cells and vessels. Our computations demonstrate that vessel pressurization can be attributed to the transfer of water between vessels across the parenchyma rays, which is facilitated by a radial imbalance in sugar concentration. The ability to dispose of soluble sugars in living cells, and to transport them between living cells and up to the vessels, is identified as the main drivers of stem pressure build-up in the walnut tree.


Subject(s)
Juglans , Plant Stems , Seasons , Trees , Xylem , Juglans/physiology , Plant Stems/physiology , Xylem/physiology , Trees/physiology , Pressure , Models, Biological , Water/metabolism , Water/physiology , Biological Transport
4.
New Phytol ; 242(5): 1981-1995, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38511237

ABSTRACT

Understanding the capacity of temperate trees to acclimate to limited soil water has become essential in the face of increasing drought risk due to climate change. We documented seasonal - or phenological - patterns in acclimation to water deficit stress in stems and leaves of tree species spanning the angiosperm phylogeny. Over 3 yr of field observations carried out in two US arboreta, we measured stem vulnerability to embolism (36 individuals of 7 Species) and turgor loss point (119 individuals of 27 species) over the growing season. We also conducted a growth chamber experiment on 20 individuals of one species to assess the mechanistic relationship between soil water restriction and acclimation. In three-quarters of species measured, plants became less vulnerable to embolism and/or loss of turgor over the growing season. We were able to stimulate this acclimatory effect by withholding water in the growth chamber experiment. Temperate angiosperms are capable of acclimation to soil water deficit stress, showing maximum vulnerability to soil water deficits following budbreak and becoming more resilient to damage over the course of the growing season or in response to simulated drought. The species-specific tempo and extent of this acclimatory potential constitutes preadaptive climate change resilience.


Subject(s)
Acclimatization , Droughts , Magnoliopsida , Phylogeny , Seasons , Stress, Physiological , Water , Magnoliopsida/physiology , Magnoliopsida/genetics , Magnoliopsida/growth & development , Acclimatization/genetics , Wood/physiology , Species Specificity , Plant Stems/physiology , Plant Stems/growth & development , Plant Leaves/physiology , Dehydration , Soil , Trees/physiology
5.
Cell Rep ; 43(4): 113987, 2024 Apr 23.
Article in English | MEDLINE | ID: mdl-38517888

ABSTRACT

Cultivating drought-tolerant tea varieties enhances both yield and quality of tea plants in northern China. However, the mechanisms underlying their drought tolerance remain largely unknown. Here we identified a key regulator called CsREV, which differentially regulates xylem patterns between leaves and stems, thereby conferring drought tolerance in tea plants. When drought occurs, upregulation of CsREV activates the CsVND7a-dependent xylem vessel differentiation. However, when drought persists, the vessel differentiation is hindered as CsVND7a is downregulated by CsTCP4a. This, combined with the CsREV-promoted secondary-cell-wall thickness of xylem vessel, leads to the enhanced curling of leaves, a characteristic closely associated with plant drought tolerance. Notably, this inhibitory effect of CsTCP4a on CsVND7a expression is absent in stems, allowing stem xylem vessels to continuously differentiate. Overall, the CsREV-CsTCP4-CsVND7 module is differentially utilized to shape the xylem patterns in leaves and stems, potentially balancing water transportation and utilization to improve tea plant drought tolerance.


Subject(s)
Droughts , Gene Expression Regulation, Plant , Plant Leaves , Plant Proteins , Plant Stems , Xylem , Xylem/metabolism , Plant Leaves/metabolism , Plant Leaves/physiology , Plant Stems/metabolism , Plant Stems/physiology , Plant Proteins/metabolism , Plant Proteins/genetics , Camellia sinensis/physiology , Camellia sinensis/genetics , Camellia sinensis/metabolism , Adaptation, Physiological
6.
Ann Bot ; 133(7): 969-982, 2024 May 13.
Article in English | MEDLINE | ID: mdl-38366557

ABSTRACT

BACKGROUND AND AIMS: Plant water status is important for fruit development, because many fleshy fruits contain large amounts of water. However, there is no information on vascular flows of Persea americana 'Hass' avocado. The aims of this research were to explore the impact of drought stress on the water relationships of the 'Hass' avocado plant and its fruit growth. METHODS: Well-watered and water-stressed 'Hass' avocado plants were compared. Over 4 weeks, water flows through the shoot and fruit pedicel were monitored using external sap flow gauges. Fruit diameter was monitored using linear transducers, and stomatal conductance (gs), photosynthesis (A) and leaf and stem water potentials (Ñ°leaf and Ñ°stem) were measured to assess the response of the plants to water supply. KEY RESULTS: In well-watered conditions, the average water inflow to the shoot was 72 g day-1. Fruit water inflow was 2.72 g day-1, but there was water loss of 0.37 g day-1 caused by the outflow (loss back into the tree) through the vascular tissues and 1.06 g day-1 from the fruit skin. Overall, fruit volume increased by 1.4 cm3 day-1. In contrast, water flow into fruit of water-stressed plants decreased to 1.88 g day-1, with the outflow increasing to 0.61 g day-1. As a result, increases in fruit volume were reduced to 0.4 cm3 day-1. The values of A, gs and sap flow to shoots were also reduced during drought conditions. Changes in the hourly time-courses of pedicel sap flow, fruit volume and stem water potential during drought suggest that the stomatal response prevented larger increases in outflow from the fruit. Following re-watering, a substantial recovery in growth rate was observed. CONCLUSIONS: In summary, a reduction in growth of avocado fruit was observed with induced water deficit, but the isohydric stomatal behaviour of the leaves helped to minimize negative changes in water balance. Also, there was substantial recovery after re-watering, hence the short-term water stress did not decrease avocado fruit size. Negative impacts might appear if the drought treatment were prolonged.


Subject(s)
Droughts , Fruit , Persea , Photosynthesis , Plant Stomata , Water , Persea/physiology , Persea/growth & development , Plant Stomata/physiology , Fruit/physiology , Fruit/growth & development , Water/physiology , Water/metabolism , Photosynthesis/physiology , Plant Leaves/physiology , Plant Leaves/growth & development , Plant Transpiration/physiology , Plant Stems/physiology , Plant Stems/growth & development , Plant Stems/anatomy & histology , Plant Shoots/physiology , Plant Shoots/growth & development , Stress, Physiological/physiology , Dehydration
7.
BMC Plant Biol ; 22(1): 49, 2022 Jan 24.
Article in English | MEDLINE | ID: mdl-35073838

ABSTRACT

BACKGROUND: The stalk rind is one of the important factors affecting maize stalk strength that is closely related to stalk lodging. However, the mechanism of rind development in maize is still largely unknown. RESULTS: In this study, we analyzed the mechanical, anatomical, and biochemical properties of the third basal internode in one maize non-stiff-stalk (NSS) line and two stiff-stalk (SS) lines. Compared with the NSS line, the two SS lines had a significantly higher rind penetrometer resistance, thicker rind, and higher dry matter, hemicellulose, cellulose, and lignin weights per unit length. RNA-seq analysis was used to compare transcriptomes of the third basal internode of the two SS lines and the NSS line at the ninth leaf and tasseling stages. Gene Ontology (GO) enrichment analysis revealed that genes involved in hydrolase activity (hydrolyzing O-glycosyl compounds) and cytoskeleton organization were significantly up-regulated in the two SS lines at the ninth leaf stage and that microtubule process-related genes were significantly up-regulated in the two SS lines at the tasseling stage. Moreover, the two SS lines had enhanced expression of cell wall metabolism-related genes at the tasseling stage. CONCLUSIONS: The synthesis of cell wall polysaccharides and the cytoskeleton might play important roles in internode development. Our results can be applied for screening lodging-resistant inbred lines and breeding lodging-resistant cultivars in maize.


Subject(s)
Gene Expression Profiling , Plant Stems/growth & development , Transcriptome , Zea mays/growth & development , Biomechanical Phenomena , Plant Stems/chemistry , Plant Stems/genetics , Plant Stems/physiology , Zea mays/chemistry , Zea mays/genetics , Zea mays/physiology
8.
Sci Rep ; 12(1): 1407, 2022 01 26.
Article in English | MEDLINE | ID: mdl-35082381

ABSTRACT

Female plants not only flower but also produce resource-rich seeds, fruits, and cones. Thus, it is generally considered that female plants allocate more resources to sexual reproduction than male plants and that this allocation difference can explain vegetative dimorphism, such as greater leaf size in females. We found significant sexual vegetative differences in the dioecious and serotinous species, Aulax umbellata and A. cancellata. Plant height, annual branch length and canopy spread were greater in males whereas leaf size, branch thickness and branch number were greater in females. Sex ratios and basal stem area were, however, equal in the sexes. Equal sex ratios imply equal allocation to sexual reproduction and equal stem areas imply equal resource use and biomass, and thus allocation to vegetative growth. Given equal allocation to reproduction and resource use, we suggest that the vegetative dimorphism is driven by intra-male-competition to be more visually conspicuous to pollinators. This implies that plant architecture is both a vegetative and a reproductive trait.


Subject(s)
Flowers/anatomy & histology , Fruit/anatomy & histology , Plant Leaves/anatomy & histology , Plant Stems/anatomy & histology , Proteaceae/anatomy & histology , Biomass , Flowers/physiology , Fruit/physiology , Plant Leaves/physiology , Plant Stems/physiology , Pollination/physiology , Proteaceae/physiology , Sex Characteristics , South Africa
9.
Plant Cell Environ ; 45(1): 23-40, 2022 01.
Article in English | MEDLINE | ID: mdl-34723383

ABSTRACT

Tree stems have been identified as sources of volatile organic compounds (VOCs) that play important roles in tree defence and atmospheric chemistry. Yet, we lack understanding on the magnitude and environmental drivers of stem VOC emissions in various forest ecosystems. Due to the increasing importance of extreme drought, we studied drought effects on the VOC emissions from mature Scots pine (Pinus sylvestris L.) stems. We measured monoterpenes, acetone, acetaldehyde and methanol emissions with custom-made stem chambers, online PTR-MS and adsorbent sampling in a drought-prone forest over the hot-dry summer of 2018 and compared the emission rates and dynamics between trees in naturally dry conditions and under long-term irrigation (drought release). The pine stems were significant monoterpene sources. The stem monoterpene emissions potentially originated from resin, based on their similar monoterpene spectra. The emission dynamics of all VOCs followed temperature at a daily scale, but monoterpene and acetaldehyde emission rates decreased nonlinearly with drought over the summer. Despite the dry conditions, large peaks of monoterpene, acetaldehyde and acetone emissions occurred in late summer potentially due to abiotic or biotic stressors. Our results highlight the potential importance of stem emissions in the ecosystem VOC budget, encouraging further studies in diverse environments.


Subject(s)
Pinus sylvestris/physiology , Volatile Organic Compounds/analysis , Droughts , Mass Spectrometry , Methanol/analysis , Monoterpenes/analysis , Monoterpenes/chemistry , Pinus sylvestris/chemistry , Plant Stems/chemistry , Plant Stems/physiology , Resins, Plant/analysis , Resins, Plant/chemistry , Sesquiterpenes/analysis , Sesquiterpenes/chemistry , Soil/chemistry , Switzerland , Temperature , Volatile Organic Compounds/chemistry
10.
Plant Cell Environ ; 45(1): 69-79, 2022 01.
Article in English | MEDLINE | ID: mdl-34705293

ABSTRACT

Reproductive success largely defines the fitness of plant species. Understanding how heat and drought affect plant reproduction is thus key to predicting future plant fitness under rising global temperatures. Recent work suggests reproductive tissues are highly vulnerable to water stress in perennial plants where reproductive sacrifice could preserve plant survival. However, most crop species are annuals where such a strategy would theoretically reduce fitness. We examined the reproductive strategy of tomato (Solanum lycopersicum var. Rheinlands Ruhm) to determine whether water supply to fruits is prioritized above vegetative tissues during drought. Using optical methods, we mapped xylem cavitation and tissue shrinkage in vegetative and reproductive organs during dehydration to determine the priority of water flow under acute water stress. Stems and peduncles of tomato showed significantly greater xylem cavitation resistance than leaves. This maintenance of intact water supply enabled tomato fruit to continue to expand during acute water stress, utilizing xylem water made available by tissue collapse and early cavitation of leaves. Here, tomato plants prioritize water supply to reproductive tissues, maintaining fruit development under drought conditions. These results emphasize the critical role of water transport in shaping life history and suggest a broad relevance of hydraulic prioritization in plant ecology.


Subject(s)
Fruit/growth & development , Solanum lycopersicum/physiology , Dehydration , Droughts , Fruit/physiology , Solanum lycopersicum/growth & development , Plant Leaves/physiology , Plant Stems/physiology , Xylem/physiology
11.
BMC Plant Biol ; 21(1): 590, 2021 Dec 13.
Article in English | MEDLINE | ID: mdl-34903166

ABSTRACT

BACKGROUND: Arabinogalactan-proteins (AGPs) are structurally complex hydroxyproline-rich cell wall glycoproteins ubiquitous in the plant kingdom. AGPs biosynthesis involves a series of post-translational modifications including the addition of type II arabinogalactans to non-contiguous Hyp residues. To date, eight Hyp-galactosyltransferases (Hyp-GALTs; GALT2-GALT9) belonging to CAZy GT31, are known to catalyze the addition of the first galactose residues to AGP protein backbones and enable subsequent AGP glycosylation. The extent of genetic redundancy, however, remains to be elucidated for the Hyp-GALT gene family. RESULTS: To examine their gene redundancy and functions, we generated various multiple gene knock-outs, including a triple mutant (galt5 galt8 galt9), two quadruple mutants (galt2 galt5 galt7 galt8, galt2 galt5 galt7 galt9), and one quintuple mutant (galt2 galt5 galt7 galt8 galt9), and comprehensively examined their biochemical and physiological phenotypes. The key findings include: AGP precipitations with ß-Yariv reagent showed that GALT2, GALT5, GALT7, GALT8 and GALT9 act redundantly with respect to AGP glycosylation in cauline and rosette leaves, while the activity of GALT7, GALT8 and GALT9 dominate in the stem, silique and flowers. Monosaccharide composition analysis showed that galactose was decreased in the silique and root AGPs of the Hyp-GALT mutants. TEM analysis of 25789 quintuple mutant stems indicated cell wall defects coincident with the observed developmental and growth impairment in these Hyp-GALT mutants. Correlated with expression patterns, galt2, galt5, galt7, galt8, and galt9 display equal additive effects on insensitivity to ß-Yariv-induced growth inhibition, silique length, plant height, and pollen viability. Interestingly, galt7, galt8, and galt9 contributed more to primary root growth and root tip swelling under salt stress, whereas galt2 and galt5 played more important roles in seed morphology, germination defects and seed set. Pollen defects likely contributed to the reduced seed set in these mutants. CONCLUSION: Additive and pleiotropic effects of GALT2, GALT5, GALT7, GALT8 and GALT9 on vegetative and reproductive growth phenotypes were teased apart via generation of different combinations of Hyp-GALT knock-out mutants. Taken together, the generation of higher order Hyp-GALT mutants demonstrate the functional importance of AG polysaccharides decorating the AGPs with respect to various aspects of plant growth and development.


Subject(s)
Arabidopsis/genetics , Galactans/metabolism , Galactosyltransferases/metabolism , Mucoproteins/metabolism , Arabidopsis/enzymology , Arabidopsis/physiology , Arabidopsis/ultrastructure , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Cell Wall/metabolism , Flowers/enzymology , Flowers/genetics , Flowers/physiology , Flowers/ultrastructure , Galactosyltransferases/genetics , Genetic Pleiotropy , Germination , Glucosides/chemistry , Glycosylation , Hydroxyproline/metabolism , Meristem/enzymology , Meristem/genetics , Meristem/physiology , Meristem/ultrastructure , Mucoproteins/genetics , Mutation , Organ Specificity , Phloroglucinol/analogs & derivatives , Phloroglucinol/chemistry , Plant Proteins/genetics , Plant Proteins/metabolism , Plant Stems/enzymology , Plant Stems/genetics , Plant Stems/physiology , Plant Stems/ultrastructure , Protein Biosynthesis , Salt Stress , Seeds/enzymology , Seeds/genetics , Seeds/physiology , Seeds/ultrastructure
12.
PLoS One ; 16(10): e0259117, 2021.
Article in English | MEDLINE | ID: mdl-34710163

ABSTRACT

Xylem tracheids are the channels for water transport in conifer. Tracheid flow resistance is composed of tracheid lumen resistance and pit resistance. The single tracheid structure parameters in the stem and root of Sabina chinensis were obtained by dissociation and slicing, combined with numerical simulation to analyze the tracheid flow resistance characteristics. The results showed that the tracheid lumen resistance was determined by the tracheid width and tracheid length. The pit resistance was determined by the number of pits and single pit resistance. The single pit resistance was composed of four elements: the secondary cell wall, the border, the margo and the torus. The margo contributed a relatively large fraction of flow resistance, while the torus, the border and the secondary cell wall formed a small fraction. The size and position of the pores in the margo had a significant effect on the fluid velocity. The number of pits were proportional to tracheid length. The power curve, S-curve and inverse curve were fitted the scatter plot of total pit resistance, total resistance, total resistivity, which was found that there were the negative correlation between them. The three scatter plot values were larger in the stem than in the root, indicating that the tracheid structure in the root was more conducive to water transport than the stem. The ratio of tracheid lumen resistance to pit resistance mainly was less than 0.6 in the stem and less than 1 in the root, indicating that the pit resistance was dominant in the total resistance of the stem and root.


Subject(s)
Plant Roots/physiology , Plant Stems/physiology , Tracheophyta/physiology , Xylem/physiology , Models, Biological , Wood/physiology
13.
Int J Biol Macromol ; 190: 769-779, 2021 Nov 01.
Article in English | MEDLINE | ID: mdl-34520779

ABSTRACT

Herbaceous peony (Paeonia lactiflora Pall.) is a popular high-end cut flower, but stem bending caused by low stem strength severely decreases its quality. To enhance stem strength, the regulatory effects of exogenous silicon were investigated in P. lactiflora. The results showed that silicon application enhanced stem strength by increasing the thickness of secondary cell walls and the layers of thickened secondary cells. Moreover, more lignin accumulated, particularly G-lignin and S-lignin, and the activities of lignin biosynthetic enzymes increased with silicon application. In addition, based on transcriptome analysis, silicon application induced the expression of genes participating in lignin biosynthesis pathway. Among them, hydroxycinnamoyl-CoA: shikimate hydroxycinnamoyl transferase gene (HCT1) was isolated from P. lactiflora and found to be mainly localized in the cytoplasm of cells. Overexpression of PlHCT1 increased the layers of thickened secondary cells and lignin accumulation in tobacco, resulting in enhanced stem strength and demonstrably straight stems. Finally, silicon content, lignin content and PlHCT1 expression in P. lactiflora cultivars with high stem strengths were totally higher than those in cultivars with low stem strengths. These results indicated that silicon application enhanced stem strength by promoting lignin accumulation in P. lactiflora, which has prospects for stem quality improvement in general.


Subject(s)
Lignin/metabolism , Paeonia/metabolism , Plant Stems/physiology , Silicon/pharmacology , Biosynthetic Pathways/drug effects , Biosynthetic Pathways/genetics , Cell Wall/drug effects , Gene Expression Profiling , Gene Expression Regulation, Plant , Lignin/biosynthesis , Paeonia/drug effects , Paeonia/genetics , Photosynthesis/drug effects , Plant Proteins/metabolism , Plant Stems/drug effects , Plants, Genetically Modified , Protoplasts/drug effects , Protoplasts/metabolism , RNA-Seq , Nicotiana/genetics
14.
J Plant Physiol ; 264: 153485, 2021 Sep.
Article in English | MEDLINE | ID: mdl-34358945

ABSTRACT

Soil salinity is a global concern and often the primary factor contributing to land degradation, limiting crop growth and production. Alfalfa (Medicago sativa L.) is a low input high value forage legume with a wide adaptation. Examining the tissue-specific responses to salt stress will be important to understanding physiological changes of alfalfa. The responses of two alfalfa cultivars (salt tolerant 'Halo', salt intolerant 'Vernal') were studied for 12 weeks in five gradients of salt stress in a sand based hydroponic system in the greenhouse. The accumulation and localization of elements and organic compounds in different tissues of alfalfa under salt stress were evaluated using synchrotron beamlines. The pattern of chlorine accumulation for 'Halo' was: root > stem ~ leaf at 8 dSm-1, and root ~ leaf > stem at 12 dSm-1, potentially preventing toxic ion accumulation in leaf tissues. In contrast, for 'Vernal', it was leaf > stem ~ root at 8 dSm-1 and leaf > root ~ stem at 12 dSm-1. The distribution of chlorine in 'Halo' was relatively uniform in the leaf surface and vascular bundles of the stem. Amide concentration in the leaf and stem tissues was greater for 'Halo' than 'Vernal' at all salt gradients. This study determined that low ion accumulation in the shoot was a common strategy in salt tolerant alfalfa up to 8 dSm-1 of salt stress, which was then replaced by shoot tissue tolerance at 12 dSm-1.


Subject(s)
Medicago sativa/metabolism , Calcium/analysis , Calcium/metabolism , Chlorine/analysis , Chlorine/metabolism , Medicago sativa/chemistry , Medicago sativa/physiology , Plant Leaves/chemistry , Plant Leaves/metabolism , Plant Leaves/physiology , Plant Roots/chemistry , Plant Roots/metabolism , Plant Roots/physiology , Plant Stems/chemistry , Plant Stems/metabolism , Plant Stems/physiology , Potassium/analysis , Potassium/metabolism , Salt Stress , Salt Tolerance , Sodium/analysis , Sodium/metabolism
15.
Plant J ; 108(2): 541-554, 2021 10.
Article in English | MEDLINE | ID: mdl-34403543

ABSTRACT

The enucleated vascular elements of the xylem and the phloem offer an excellent system to test the effect of ploidy on plant function because variation in vascular geometry has a direct influence on transport efficiency. However, evaluations of conduit sizes in polyploid plants have remained elusive, most remarkably in woody species. We used a combination of molecular, physiological and microscopy techniques to model the hydraulic resistance between source and sinks in tetraploid and diploid mango trees. Tetraploids exhibited larger chloroplasts, mesophyll cells and stomatal guard cells, resulting in higher leaf elastic modulus and lower dehydration rates, despite the high water potentials of both ploidies in the field. Both the xylem and the phloem displayed a scaling of conduits with ploidy, revealing attenuated hydraulic resistance in tetraploids. Conspicuous wall hygroscopic moieties in the cells involved in transpiration and transport indicate a role in volumetric adjustments as a result of turgor change in both ploidies. In autotetraploids, the enlargement of organelles, cells and tissues, which are critical for water and photoassimilate transport at long distances, point to major physiological novelties associated with whole-genome duplication.


Subject(s)
Mangifera/physiology , Phloem/physiology , Plant Leaves/chemistry , Ploidies , Xylem/physiology , Cell Wall/chemistry , Inflorescence/physiology , Mangifera/cytology , Mangifera/genetics , Plant Cells/chemistry , Plant Leaves/anatomy & histology , Plant Leaves/cytology , Plant Leaves/genetics , Plant Stems/physiology , Plant Stomata/chemistry , Trees/cytology , Trees/genetics , Trees/physiology
16.
J Biosci ; 462021.
Article in English | MEDLINE | ID: mdl-34148874

ABSTRACT

Like any other biological tissue, plant tissue also exhibits optical properties like refraction, transmission, absorption, coloration, scattering and so on. Several studies have been conducted using different parts of plants such as leaves, seedlings, roots, stems and so on, and their optical properties have been analyzed to study plant physiology, influence of environmental cues on plant metabolism, light propagation through plant parts and the like. Thus, it is essential to study in detail the optical properties of several plant parts to determine their structural relationship. In this backdrop, an experimental study was conducted to observe and analyze the optical properties of node and inter-nodal tissue cross-sections of the plant Alternanthera philoxeroides under a polarizing microscope constructed and standardized in the laboratory. The observed optical properties of the microscopic tissue sections have been then studied to determine a significant structural relationship between nodal and inter-nodal tissue arrangement patterns as a whole. Tissue sections that have undergone a sort of biological perturbation like loss of water (dried in air for 15 min) have also been studied to study the change in the pattern of tissue optical property when compared with that of normal plant-tissue cross-sections under a polarizing microscope. This type of biological perturbation was chosen for the study because water plays an important role in maintenance of the normal physiological processes in plants and most other forms of life.


Subject(s)
Amaranthaceae/ultrastructure , Plant Leaves/ultrastructure , Plant Roots/ultrastructure , Plant Stems/ultrastructure , Seedlings/ultrastructure , Water/physiology , Amaranthaceae/physiology , Desiccation/methods , Humans , Light , Microscopy, Polarization , Microtomy , Plant Leaves/physiology , Plant Roots/physiology , Plant Stems/physiology , Seedlings/physiology
17.
BMC Plant Biol ; 21(1): 243, 2021 May 28.
Article in English | MEDLINE | ID: mdl-34049485

ABSTRACT

BACKGROUND: Branch angle is a pivotal component of tea plant architecture. Tea plant architecture not only affects tea quality and yield but also influences the efficiency of automatic tea plant pruning. However, the molecular mechanism controlling the branch angle, which is an important aspect of plant architecture, is poorly understood in tea plants. RESULTS: In the present study, three CsLAZY genes were identified from tea plant genome data through sequence homology analysis. Phylogenetic tree displayed that the CsLAZY genes had high sequence similarity with LAZY genes from other plant species, especially those in woody plants. The expression patterns of the three CsLAZYs were surveyed in eight tissues. We further verified the expression levels of the key CsLAZY1 transcript in different tissues among eight tea cultivars and found that CsLAZY1 was highly expressed in stem. Subcellular localization analysis showed that the CsLAZY1 protein was localized in the plasma membrane. CsLAZY1 was transferred into Arabidopsis thaliana to investigate its potential role in regulating shoot development. Remarkably, the CsLAZY1 overexpressed plants responded more effectively than the wild-type plants to a gravity inversion treatment under light and dark conditions. The results indicate that CsLAZY1 plays an important role in regulating shoot gravitropism in tea plants. CONCLUSIONS: The results provide important evidence for understanding the functions of CsLAZY1 in regulating shoot gravitropism and influencing the stem branch angle in tea plants. This report identifies CsLAZY1 as a promising gene resource for the improvement of tea plant architecture.


Subject(s)
Camellia sinensis/genetics , Genome, Plant/genetics , Gravitropism/genetics , Arabidopsis/genetics , Arabidopsis/physiology , Camellia sinensis/physiology , Phylogeny , Plant Shoots/genetics , Plant Shoots/physiology , Plant Stems/genetics , Plant Stems/physiology , Tea
18.
Science ; 372(6540)2021 04 23.
Article in English | MEDLINE | ID: mdl-33888615

ABSTRACT

Plants constantly experience fluctuating internal and external mechanical cues, ranging from nanoscale deformation of wall components, cell growth variability, nutating stems, and fluttering leaves to stem flexion under tree weight and wind drag. Developing plants use such fluctuations to monitor and channel their own shape and growth through a form of proprioception. Fluctuations in mechanical cues may also be actively enhanced, producing oscillating behaviors in tissues. For example, proprioception through leaf nastic movements may promote organ flattening. We propose that fluctuation-enhanced proprioception allows plant organs to sense their own shapes and behave like active materials with adaptable outputs to face variable environments, whether internal or external. Because certain shapes are more amenable to fluctuations, proprioception may also help plant shapes to reach self-organized criticality to support such adaptability.


Subject(s)
Plant Development , Plant Physiological Phenomena , Plants/anatomy & histology , Arabidopsis/anatomy & histology , Arabidopsis/growth & development , Arabidopsis/physiology , Cues , Cytoskeleton/ultrastructure , Morphogenesis , Movement , Plant Epidermis/cytology , Plant Epidermis/ultrastructure , Plant Leaves/anatomy & histology , Plant Leaves/growth & development , Plant Leaves/physiology , Plant Stems/anatomy & histology , Plant Stems/growth & development , Plant Stems/physiology , Stress, Mechanical , Tropism
19.
Plant Physiol ; 186(4): 1919-1931, 2021 08 03.
Article in English | MEDLINE | ID: mdl-33905519

ABSTRACT

Xylella fastidiosa (Xf) is the xylem-dwelling bacterial agent associated with Pierce's disease (PD), which leads to significant declines in productivity in agriculturally important species like grapevine (Vitis vinifera). Xf spreads through the xylem network by digesting the pit membranes (PMs) between adjacent vessels, thereby potentially changing the hydraulic properties of the stem. However, the effects of Xf on water transport vary depending on the plant host and the infection stage, presenting diverse outcomes. Here, we investigated the effects of polygalacturonase, an enzyme known to be secreted by Xf when it produces biofilm on the PM surface, on stem hydraulic conductivity, and PM integrity. Experiments were performed on six grapevine genotypes with varying levels of PD resistance, with the expectation that PM resistance to degradation by polygalacturonase may play a role in PD resistance. Our objective was to study a single component of this pathosystem in isolation to better understand the mechanisms behind reported changes in hydraulics, thereby excluding the biological response of the plant to the presence of Xf in the vascular system. PM damage only occurred in stems perfused with polygalacturonase. Although the damaged PM area was small (2%-9% of the total pit aperture area), membrane digestion led to significant changes in the median air-seeding thresholds, and most importantly, shifted frequency distribution. Finally, enzyme perfusion also resulted in a universal reduction in stem hydraulic conductivity, suggesting the development of tyloses may not be the only contributing factor to reduced hydraulic conductivity in infected grapevine.


Subject(s)
Insect Proteins/metabolism , Plant Diseases , Polygalacturonase/metabolism , Vitis/physiology , Xylella/physiology , Xylem/physiology , Disease Resistance , Membranes/physiology , Plant Stems/physiology , Xylella/enzymology
20.
BMC Plant Biol ; 21(1): 199, 2021 Apr 26.
Article in English | MEDLINE | ID: mdl-33902454

ABSTRACT

BACKGROUND: Electrical impedance tomography (EIT) has rarely been applied in plant science, particularly to study plant resistance to abiotic and biotic stresses. In this study, we evaluated the freezing resistance of floribunda roses (Rosa Floribunda) during frost dehardening using the EIT technique to identify a new method for rapid and non-destructive measurement of plant freezing resistance. RESULTS: The current was the excitation source, the boundary voltage value was measured, and then the boundary voltage reconstructed value was formed. Using an imaging algorithm, the two-dimensional (2D) distribution of impedance or impedance variation was reconstructed. The EIT reconstructed values decreased obviously with the decline in freezing temperatures. The EIT reconstructed values of stems had the best fit to the logistic equation, and subsequently, the semi-lethal temperatures were calculated. The freezing resistance results evaluated using EIT reconstructed values were linearly correlated with the results of the traditional electrolyte leakage (EL) method (r = 0.93, P < 0.01). CONCLUSIONS: In conclusion, after freezing tests, the reconstructed values of EIT images could be used to quantitatively evaluate the freezing resistance of floribunda rose stems. The present study provides a reference for the further application of the EIT technique for non-destructive and rapid detection of plant freezing resistance.


Subject(s)
Freezing , Horticulture/methods , Rosa/physiology , Tomography, X-Ray Computed/methods , Electric Impedance , Horticulture/instrumentation , Plant Stems/physiology , Tomography, X-Ray Computed/instrumentation , Weather
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