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1.
We compared root proliferation in fertilized microsites among seven cultivars of five commonly planted cool-desert perennial grass species that differ in productivity and competitive ability. In a greenhouse experiment on nutrient-limited plants, one soil microsite in each pot received distilled water (control) and a second microsite received a rich, complete nutrient solution (fertilized). Roots in and adjacent to the microsites were mapped on Mylar windows for 22 days after the injections to determine the magnitude and timing of response in root length relative growth rates (RGRs). Because we provided adequate water, used a high level of fertilization in the treatment microsites, and conducted the experiments during rapid vegetative growth, the results provide a measure of the relative capacities and maximal rates of the grasses responses to enriched microsites. Root samples were harvested from control and fertilized microsites at the end of the experiment to determine the morphological basis of the proliferation response. In all seven grasses fine roots proliferated in the fertilized microsites faster than in the control microsites. The grasses did not differ in the timing of their response which showed a peak 7–8 days after injection. Although one species, Pseudoroegneria spicata cv. Goldar, had higher maximum root length RGR and higher RGR ratio (RGR in fertilized to RGR in control microsites) 7–8 days after injection, the seven grasses did not differ significantly in the magnitude of root length RGR response to fertilizer integrated over the 22 day experiment. The grasses also did not differ significantly in root morphological changes in fertilized mocrosites. Compared to roots in control microsites, roots in fertilized microsites had greater specific root length, length of secondary roots per length of main axis, number of lateral and sublateral roots per length of main axis, and mean lateral root length. Root proliferation was mainly the result of increased lateral branching and lateral root growth in all seven grasses. The consistency of root proliferation responses among these seven cultivars suggests that differences in the capacity for, maximum rate, or morphological basis of root proliferation are not directly related to ecological characteristics such as productivity and competitive ability. Other aspects of root response to nutrient enrichment, such as differential responses as a function of microsite nutrient concentration, plant phenology, plant nutrient status, or specific nutrient element(s), may still be important, but further experiments are required to determine whether different responses to enriched soil microsites among species correspond with know species differences in ecological characteristics.  相似文献   

2.
  • Accumulation of NaCl in soil causes osmotic stress in plants, and sodium (Na+) and chloride (Cl?) cause ion toxicity, but also reduce the potassium (K+) uptake by plant roots and stimulate the K+ efflux through the cell membrane. Thus, decreased K+/Na+ ratio in plant tissue lead us to hypothesise that elevated levels of K+ in nutrient medium enhance this ratio in plant tissue and cytosol to improve enzyme activation, osmoregulation and charge balance.
  • In this study, wheat was cultivated at different concentrations of K+ (2.2, 4.4 or 8.8 mm ) with or without salinity (1, 60 or 120 mm NaCl) and the effects on growth, root and shoot Na+ and K+ distribution and grain yield were determined. Also, the cytosolic Na+ concentration was investigated, as well as photosynthesis rate and water potential.
  • Salinity reduced fresh weight of both shoots and roots and dry weight of roots. The grain yield was significantly reduced under Na+ stress and improved with elevated K+ fertilisation. Elevated K+ level during cultivation prevented the accumulation of Na+ into the cytosol of both shoot and root protoplasts. Wheat growth at vegetative stage was transiently reduced at the highest K+ concentration, perhaps due to plants' efforts to overcome a high solute concentration in the plant tissue, nevertheless grain yield was increased at both K+ levels.
  • In conclusion, a moderately elevated K+ application to wheat seedlings reduces tissue as well as cytosolic Na+ concentration and enhances wheat growth and grain yield by mitigating the deleterious effects of Na+ toxicity.
  相似文献   

3.
The root morphology of ten temperate pasture species (four annual grasses, four perennial grasses and two annual dicots) was compared and their responses to P and N deficiency were characterised. Root morphologies differed markedly; some species had relatively fine and extensive root systems (Vulpia spp., Holcus lanatus L. and Lolium rigidum Gaudin), whilst others had relatively thick and small root systems (Trifolium subterraneum L. and Phalaris aquatica L.). Most species increased the proportion of dry matter allocated to the root system at low P and N, compared with that at optimal nutrient supply. Most species also decreased root diameter and increased specific root length in response to P deficiency. Only some of the species responded to N deficiency in this way. Root morphology was important for the acquisition of P, a nutrient for which supply to the plant depends on root exploration of soil and on diffusion to the root surface. Species with fine, extensive root systems had low external P requirements for maximum growth and those with thick, small root systems generally had high external P requirements. These intrinsic root characteristics were more important determinants of P requirement than changes in root morphology in response to P deficiency. Species with different N requirements could not be distinguished clearly by their root morphological attributes or their response to N deficiency, presumably because mass flow is relatively more important for N supply to roots in soil.Section editor: H. Lambers  相似文献   

4.
The distribution of fine roots and external ectomycorrhizal mycelium of three species of trees was determined down to a soil depth of 55 cm to estimate the relative nutrient uptake capacity of the trees from different soil layers. In addition, a root bioassay was performed to estimate the nutrient uptake capacity of Rb+ and NH4+ by these fine roots under standardized conditions in the laboratory. The study was performed in monocultures of oak (Quercus robur L.), European beech (Fagus sylvatica L.) and Norway spruce [Picea abies (L.) Karst.] on sandy soil in a tree species trial in Denmark. The distribution of spruce roots was found to be more concentrated to the top layer (0–11 cm) than that of oak and beech roots, and the amount of external ectomycorrhizal mycelia was correlated to the distribution of the roots. The uptake rate of [86Rb+] by oak roots declined with soil depth, while that of beech or spruce roots was not influenced by soil depth. In modelling the nutrient sustainability of forest soils, the utilization of nutrient resources in deep soil layers has been found to be a key factor. The present study shows that the more shallow-rooted spruce can have a similar capacity to take up nutrients from deeper soil layers than the more deeply rooted oak. The distribution of roots and mycelia may therefore not be a reliable parameter for describing nutrient uptake capacity by tree roots at different soil depths.  相似文献   

5.
The uptake of nutrients from deep soil layers has been shown to be important for the long-term nutrient sustainability of forest soils. When modelling nutrient uptake in forest ecosystems, the nutrient uptake capacity of trees is usually defined by the root distribution. However, this leads to the assumption that roots at different soil depths have the same capacity to take up nutrients. To investigate if roots located at different soil depths differ in their nutrient uptake capacity, here defined as the nutrient uptake rate under standardized conditions, a bioassay was performed on excised roots (<1 mm) of eight oak trees (Quercus robur L.). The results showed that the root uptake rate of 86Rb+ (used as an analogue for K+) declined with increasing soil depth, and the same trend was found for . The root uptake rate of , on the other hand, did not decrease with soil depth. These different physiological responses in relation to soil depth indicate differences in the oak roots, and suggest that fine roots in shallow soil layers may be specialized in taking up nutrients such as K+ and which have a high availability in these layers, while oak roots in deep soil layers are specialized in taking up other resources, such as P, which may have a high availability in deep soil layers. Regardless of the cause of the difference in uptake trends for the various nutrients, these differences have consequences for the modelling of the soil nutrient pool beneath oak trees and raise the question of whether roots can be treated uniformly, as has previously been done in forest ecosystem models. Responsible Editor: Herbert Johannes Kronzucker.  相似文献   

6.
Potassium (K+) deficiency is an important abiotic stress which has severe influence on the growth and development of sweet potato. To investigate the difference on root morphology, ultrastructure and antioxidant enzyme system at early growth stage, two representative sweet potato cultivars (Ipomoea batatas [L.] Lam.) with different K+ deficiency tolerance capacities were hydroponically cultivated under normal K+ (control) and K+ deficiency (?K) treatments. The results showed that after 14 days of treatment, the root length, surface area, volume, and average diameter of Ningzishu 1 (sensitive to K+ deficiency) were significantly decreased under ?K treatment, by comparison, those corresponding decreases of Xushu 32 (tolerant to K+ deficiency) were lower and not significant (except for root length). In addition, the proportion of fine roots (diameter <0.5 mm) and thick root (d > 1.0 mm) of Xushu 32 seedlings increased significantly under condition of K+ deficiency. Through transmission electron microscopy observations, it can be found that Xushu 32 seedlings showed a more complete root cellular structure and slighter oxidative damage than Ningzishu 1 under ?K treatment. Moreover, the hydrogen peroxide content and malondialdehyde content in the root of Xushu 32 seedlings was significantly lower than that of Ningzishu 1, and the variations of superoxide dismutase, peroxidase, and catalase activities were pronouncedly less than those of Ningzishu 1. These differences between the two cultivars indicated that the stronger root morphology and nutrients absorption ability, and the better root cellular structure and physiological role of Xushu 32 seedlings could alleviate the damage of K+ deficiency stress. Thus, it might be a potential mechanism for cultivar tolerance to low K+ in sweet potato.  相似文献   

7.
Effect of paclobutrazol (PBZ) treatment on salinity tolerance of wheat (Triticum aestivum) was investigated on a salt-tolerant (Karchia-65) and salt-sensitive (Ghods) cultivars. Salinity significantly reduced the investigated growth parameters such as plant height, length and area of sixth leaf, root length, fresh and dry weight of shoot, roots and sixth leaf, water content (WC) of plant and seeds weight in the both cultivars. The negative effect of salinity in Ghods cultivar was more than Karchia cultivar. However, PBZ treatment reduced the growth in both cultivars, the differences in plant growth among various levels of NaCl decreased in PBZ-treated plants. Salt stress resulted in high accumulation of Na+ in the sixth leaf and roots in both cultivars, particularly in Ghods cultivar. Against Karchia cultivar, salt stress decreased the storage of K+, P and N in sixth leaf and roots in Ghods cultivar. In the both cultivars, PBZ treatment enhanced the K+, P and N contents in sixth leaf and roots by increasing salinity. Although PBZ treatment decreased the growth of plants, it improved the weight of seeds against stress damage. PBZ treatment reduced the accumulation of harmful Na+ ion in plant tissues while increased the K+, P and N contents. These observations suggest that PBZ treatment may increase tolerance by diminishing ionic imbalance caused by salt stress.  相似文献   

8.
Aluminum toxicity is an important stress factor in acid soils. Growth, respiration and permeability properties of root cells were studied in five cultivars of Lotus corniculatus subjected to aluminum (Al) or low pH stress. The cultivars showed significant differences in root elongation under stress conditions, which correlated with changes in membrane potential (EM) of root cortical cells. A pH drop from 5.5 to 4.0 resulted in significant membrane depolarization and root growth inhibition. The strongest inhibition was observed in cv. São Gabriel (33.6%) and least in cv. UFRGS (25.8%). Application of an extremely high Al concentration (2 mM) stopped the root growth in cv. INIA Draco, while inhibition in cv. UFRGS reached only 75%.The EM values of cortical cells of Lotus roots varied between −115 and −144 mV. Treatment with 250 μM of AlCl3 (pH 4) resulted in rapid membrane depolarization. The extent of the membrane depolarization ranged between 51 mV (cv. UFGRS) and 16 mV (cv. INIA Draco). The membrane depolarization was followed by a loss of K+ from Al-treated roots (2 mM Al) and resulted in a decrease of the diffusion potential (ED). The total amount of K+ in Al-treated roots dropped from 31.4 to 16.8 μmol g−1 FW in sensitive cv. INIA Draco, or from 26.1 to 22.7 μmol g−1 FW in tolerant cv. UFGRS. The rate of root respiration under control conditions as well as under Al treatment was higher in cv. INIA Draco than in cv. UFRGS. Al-induced inhibition of root respiration was 21–34% of the control.  相似文献   

9.
Twenty winter cultivars of Triticum aestivum L. (wheat) were grown in solution culture with and without aluminum (Al) (74 μM, 2.0 mg L-1) for 14 days. Exposure to Al increased root growth of the most tolerant cultivar, while both root and shoot growth were depressed in all other cultivars. On the basis of a root tolerance index (RTI = weight of roots grown with Al/weight of roots grown without Al), cultivar tolerance to Al ranged 9-fold, from 0.13 ± 0.01 to 1.16 ± 0.10. Symptoms of Al toxicity were most evident on roots. Aluminum-affected roots were relatively short and thick and had numerous undeveloped laterals. Leaves of some cultivars showed chlorosis resembling iron deficiency, and others showed purple stems typical of phosphate deficiency. Plants of all cultivars grown with and without Al depressed the pH of nutrient solutions, presumably until NH4+ was depleted, at which point the pH increased. Cultivar tolerance, expressed both as the root tolerance index and a shoot tolerance index, was negatively correlated with the negative log of the mean hydrogen ion (H+) concentration, the minimum pH, and the slope of the pH decline, each calculated from pH data collected during the first 9 days of the experimental period before any sharp rises in pH occurred. These results are consistent with the hypothesis that the Al tolerance of a given cultivar is a function of its ability to resist acidification of the nutrient solution and hence to limit the solubility and toxicity of Al.  相似文献   

10.
Summary Barley roots grown on a nutrient solution containing 1 mM Na+ but no K+ are capable of a considerable Na+ transport via the symplasm of the root and the xylem vessels. K+ added to the medium surrounding the root cortex severely inhibits this transport after a lag period at a high rate constant (Fig. 3).It is likely that the fluxes of Na+ are changed drastically during this transition from low to high K+ status. Although originally limited to steady state fluxes, the extended method of efflux analysis for excised roots (Pitman, 1971) has been applied to the non-steady fluxes which occur upon the addition of K+ to the roots. It is shown that besides other changes the efflux of 22Na+ through the cortex of barley roots is stimulated instantaneously (Fig. 5) by the addition of K+ and presumably by an influx of K+ ions. From this a transient, K+-stimulated Na+ efflux at the plasmalemma of the cortical cells can be estimated. It amounts to 10.9 moles/g fw · h compared to the control efflux of 3.3 moles/g fw · h without K+.The stimulated efflux is attributed to a Na+ efflux pump at the plasmalemma and is thus related to the K-Na-selectivity of barley plants. The inhibition of the Na+ transport by K+ is probably a consequence of this increased efflux of Na+ from the symplasm through the root cortex.  相似文献   

11.
Properties of potassium uptake by seedling roots of grape cultivars   总被引:1,自引:0,他引:1  
Uptake rates of (86Rb)K+ by seedling roots of six cultivars were measured and compared with K+ content of the root, K+ leakage, H+ efflux, and K+-ATPase activity of a partially purified plasmalemma fraction.Different cultivars showed significantly different rates of (86Rb)K+ uptake. The uptake rates of the first (0–5 min) period did not correlate with K+ content of the seedling roots.The rates of uptake in the 10 to 30 min period, supposed to be active, were negatively correlated with K+ content of the root. Roots consistently leaked K+ during the first 5 min. This leakage was positively correlated with the endogenous K+ content of the tissue.H+ efflux was significantly different among the cultivars and correlated with the K+-ATPase activity of a microsomal fraction partially purified on discontinuous (18/34%) sucrose gradient. The relationships among transport parameters are discussed.Part of the present research was carried out at the Department of Agricultural Biotechnology of University of Padova, Italy.Part of the present research was carried out at the Department of Agricultural Biotechnology of University of Padova, Italy.  相似文献   

12.
Accumulation of cations in roots and shoots and influx of K+(86Rb+) and Ca2+(45Ca2+) into the roots were investigated in spring wheat (Triticum aestivum L. cv. Svenno). Plants were sampled at four main developmental stages: tillering, shooting, heading and grain filling. The effects of switches between a high and a low supply of nutrients were characterized. Growth of the shoots and roots was affected by the switches. A high supply of nutrients at the seedling stage and towards tillering supported a high growth rate, while a further high supply of nutrients increased vegetative growth and delayed grain filling. An early high supply of nutrients followed by a low supply at shooting, heading and grain filling accelerated root growth and growth of the main culm. Switches of the mineral supply gave only small changes in concentration of Mg in the plants. Generally, the K+(86Rb+) influx into the roots decreased during ontogenesis, while Ca2+(45Ca2+) influx increased more or less independent of the switches between nutrients levels.  相似文献   

13.
Computer simulation of root nutrient uptake has become a very powerfull tool in the analysis of plant and soil characteristics. One of the shortcomings of earlier numerical models is the lack of a proper accounting for age-dependent root parameters. In this article we present an algorithm that not only allows for time-and/or space-varying root growth rates, convective moisture uptake, root density, initial distribution of nutrient, effective diffusion coefficients, and buffer power; but also accounts for time-varying root efflux, root absorption power and maximum nutrient influxive rate.Several elementary numerical examples of NH 4 + , NO 3 , P and K uptake for roots with temporally varying characteristics are presented.Contribution from the Purdue Agric. Exp. Stn., W. Lafayette, IN. Journal Paper No. 9476.  相似文献   

14.
Close coupling between extrusion of H+ and uptake of K+ by barley roots   总被引:1,自引:0,他引:1  
Rudolf Behl  Klaus Raschke 《Planta》1987,172(4):531-538
Extrusion of H+ by intact barley (Hordeum vulgare L.) roots was automatically titrated. Simultaneously, uptake of K+ into the roots, transport of K+ through the roots, and (as a residual term) accumulation of K+ within the root tissue were determined. When no monovalent cation was present in the medium the steady rate of H+ release was close to zero. Addition of K+ stimulated H+ extrusion within less than 1 min. The stimulation of H+ release was apparently limited only by the movement of K+ through the apoplast of the roots. The steady rate of H+ extrusion depended on the availability of external K+ and saturated at a K+ concentration of about 100 mol· dm-3. Half-maximum rates of net K+ uptake and H+ extrusion were reached at a K+ concentration of about 10 mol·dm-3. With (slowly absorbable) sulfate as the only anion present, the stoichoimetry between H+ release and net K+ uptake was one. In conclusion, the uptake of K+ across the plasmalemma of the cells of the root cortex is electrically coupled to H+ extrusion.  相似文献   

15.
 在自动控制的遮雨棚中,用盆栽法研究了不同水分条件下春小麦(Triticum aestivum)根系耗碳过程及与籽粒产量的关系。设高(W)、中(M)、低(S)3个水分处理,试验品种为`陇春8139-2'(L)和`定西24'(D)。在开花期及之前,根系的日生物量碳、日呼吸耗碳和日分泌耗碳量占根系日总耗碳量的比例平均为26%、58%和16%。在成熟期,W、M处理的根日生物量碳的下降(负值)在两品种之间没有显著差异,而在S处理中,D品种根生物量碳日下降幅度显著高于L品种,日呼吸耗碳量和日分泌耗碳量也最低,致使其根日生物量碳下降超过根总耗碳量的100倍,而根日呼吸耗碳量和日分泌耗碳量分别是根日总耗碳量的7.89倍和3.75倍,与其它处理/品种形成了鲜明对比。以根系日呼吸和日分泌耗碳之和占日光合固碳量的百分比来看,L品种在W、M和S处理中分别为53%、52%和83%,D品种分别为58%、49%和55%。两个品种根系碳消耗比例最低的是M处理,S处理的D品种远低于L品种。两品种产量水平接近,湿润条件下,L品种产量略高于D品种。籽粒产量与平均产量之比(Y/Ym)L品种在3个处理中分别为1.34, 1.14和0.53;D品种分别为1.04, 1.06和0.90。干旱条件下D品种保持了良好的产量稳定性。对D品种而言,中、重度干旱条件下光合固碳的相对稳定和根系耗碳量的降低是植物既能提高水分利用效率又能保持较高籽粒产量的主要原因。  相似文献   

16.
Salinity tolerance of sugar beet (Beta vulgaris L.) cultivars in terms of growth, proline and soluble sugars concentrations, and Na+/K+ and Na+/Ca2+ ratios were analyzed in this study. Three-week-old seedlings of three sugar beet cultivars, ‘Gantang7’, ‘SD13829’, and ‘ST21916’, differing in salinity tolerance, were treated with 0, 50, 100, and 200 mM NaCl. Plant shoots and roots were harvested at 7 days after treatment and subjected to analysis. Low concentration of NaCl (50 mM) enhanced fresh and dry weights of shoot and root in ‘Gantang7’, whereas high one (200 mM) reduced growth in all cultivars and the less reduction was observed in ‘ST21916’. Shoot proline was strongly induced by salinity stress in both ‘Gantang7’ and ‘SD13829’, while it remained unchanged in ‘ST21916’. The addition of 50 mM NaCl significantly increased shoot soluble sugars concentrations in ‘Gantang7’ while it had no significant effects in the other two cultivars. ‘Gantang7’ also showed a higher level of root soluble sugars concentration as compared to the other two cultivars. At 50 mM NaCl, the lower shoot Na+ concentration, and the higher shoot K+ and root Ca2+ concentration in ‘Gantang7’ resulted in the lower shoot Na+/K+ and root Na+/Ca2+ ratio. However, ‘SD13829’ maintained a lower Na+/K+ ratio in both shoot and root when subjected to 200 mM NaCl treatment. According to comprehensive evaluation on salinity tolerance, it is clear that ‘Gantang7’ is more tolerant to salinity than the other two cultivars. Therefore, it is suggested that ‘Gantang7’ should be more suitable for cultivating in the arid and semi-arid irrigated regions.  相似文献   

17.
Control of rhizosphere pH and exclusion of Al by the plasma membrane have been hypothesized as possible mechanisms for Al tolerance. To test primarily the rhizosphere pH hypothesis, wheat cultivars (Triticum aestivum L. `Atlas 66' and `Scout'), which differ in Al tolerance, were grown in either complete nutrient solution, or 0.6 millimolar CaSO4, with and without Al at pH 4.50. A microelectrode system was used to simultaneously measure rhizosphere pH, K+, and H+ fluxes, and membrane potentials (Em) along the root at various distances from the root apex. In complete nutrient solution, the rhizosphere pH associated with mature root cells (measured 10-40 millimeters from the root apex) of Al-tolerant `Atlas 66' was slightly higher than that of the bulk solution, whereas roots of Al-sensitive `Scout' caused a very small decrease in the rhizosphere pH. In CaSO4 solution, no significant differences in rhizosphere pH were found between wheat cultivars, while differential Al tolerance was still observed, indicating that the rhizosphere pH associated with mature root tissue is not directly involved in the mechanism(s) of differential Al tolerance. In Al-tolerant `Atlas 66', growth in a CaSO4 solution with 5 micromolar Al (pH 4.50) had little effect on net K+ influx, H+ efflux, and root-cell membrane potential measured in cells of mature root tissue (from 10-40 mm back from apex). However, in Al-sensitive `Scout', Al treatment caused a dramatic inhibition of K+ influx and both a moderate reduction of H+ efflux and depolarization of the membrane potential. These results demonstrate that increased Al tolerance in wheat is associated with the increased ability of the tolerant plant to maintain normal ion fluxes and membrane potentials across the plasmalemma of root cells in the presence of Al.  相似文献   

18.
The influx of Rb+ into the roots of two barley varieties (Hordeum vulgare L. cv. Salve and cv. Ingrid) from a K+-free 86Rb-labelled nutrient solution with 2.0 mM Rb+, was checked at intervals from day 6 to day 18. The control plants were continuously grown in complete nutrient solution containing 5.0 mM K+, while two other groups of plants were grown in K+-free nutrient solution starting on day 6 and between day 6 and day 9, respectively. The pattern of Rb+ influx was similar for both varieties, although their efficiencies in absorbing Rb+ were different. The relationship between Rb+ influx and K+ concentration of the root could be interpreted in terms of negative feedback through allosteric control of uptake across the plasmalemma of the root cells. Hill plots were bimodal, but in the opposite direction. The Hill coefficients, reflecting the minimum number of interacting allosteric binding sites for K+ (Rb+), were low (≤–3.0). It is discussed whether the threshold value, that is the breaking point in the Hill plot, is indicative of a changed efficiency of transporting units for K+ (Rb+) transport to the xylem. Moreover, feedback regulation might be involved in transport of K+ between root and shoot. The variation in K+ concentrations in the roots and shoots of control plants were cyclic but in phase opposition despite an exponential growth. The average K+ concentration varied only slightly with age.  相似文献   

19.
In each wheat type, cultivars have different propensities to accumulate Cd in their grains, likely depending on Cd uptake by roots and/or Cd distribution in the plant. This study investigates the processes in the root–soil interface and their role in high or low grain Cd accumulation. Twenty-four cultivars of spring bread, winter bread, durum, and spelt wheat with different grain Cd accumulation levels were investigated regarding removal of Cd from soil, pH, Cd and organic acids in root exudates, and cation-exchange capacity of roots (rootCEC). In addition, we investigated 109Cd uptake from a nutrient solution resembling soil solution. The removal of Cd from the rhizosphere soil increased, likely due to increased rootCEC with increased grain Cd accumulation propensity, except in spring bread wheat. The 109Cd uptake from solution did not differ between high and low grain Cd accumulators. If the soil Cd concentration was elevated, rootCEC increased, as did pH, and succinic acid levels in the exudates, while lactic and citric acid levels in root exudates decreased. This work indicates that high grain Cd accumulators take up more Cd from soil than do low accumulators. But not by a different capacity to take up Cd from soil solution. The higher rootCEC in high accumulating cultivars may influence the release of Cd from the soil particles.  相似文献   

20.
Seedlings of eleven varieties of barley (Hordeum vulgare L.) showed differences in utilization of K+ from a full nutrient solution containing 3.0 mM K+. The K+ content of both roots and shoots was proportional to the fresh weights and dry weights after a week in the nutrient solution. The K+ use-efficiency ratio, which indicates the efficiency of nutrient utilization (mg dry weight produced per mg K+ absorbed), differed significantly among the varieties. There was no correlation between influx of Rb+ and the content of K+. It is suggested that there are wide varietal differences in such genetically-determined properties as ion influx and efflux and net ion transport to the shoot. Further-more, the influx of Rb+ was closely linked to transpiration, probably due to a variety-specific non-metabolic part of Rb+ influx. Varietal differences in influx of Rb+ were more pronounced in high-K+ roots than in low-K+ roots with maximum rate of Rb+ uptake, but the rank of varieties was the same in each case. – Criteria for the selection of K+ use-efficient varieties of barley are discussed.  相似文献   

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