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The influence of three nitrogen salts: NH4NO3, KNO3 and NH4Cl on wheat in vitro cultures was investigated. Both NO 3 and NH 4 + ions were indispensable for proliferation of embryogenic calli and development of wheat somatic embryos. It is possible to obtain wheat somatic embryos when the medium is enriched with NH4NO3 only as a source of inorganic nitrogen. The results of the statistical analysis showed that the level of NH4NO3 and KNO3 in the medium had a great influence on the efficiency of somatic embryogenesis. We observed tendency that calli on media containing 50 mM NH4NO3 and 0 to 20 mM KNO3 turned out to be more embryogenic than on control MS medium. High concentrations of KNO3- 100 mM inhibited somatic embryogenesis, while 100 mM NH4NO3 did not. The level of total N did not have significant influence on wheat somatic embryogenesis. Ratio NO 3 :NH 4 + also turned out to be not substantial. We observed that mutual connection of concentration levels between NH4NO3 and KNO3 and between NH4Cl and KNO3 was more important. The efficiency of somatic embriogenesis obtained in the experiment with NH4Cl and KNO3 was significantly lower than in experiment with NH4NO3 and KNO3.  相似文献   

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The kinetics of NH4 + and NO3 uptake in young Douglas fir trees (Pseudotsuga menziesii [Mirb.] Franco) were studied in solutions, containing either one or both N species. Using solutions containing a single N species, the Vmax of NH4 + uptake was higher than that of NO3 uptake. The Km of NH4 + uptake and Km of NO3 uptake differed not significantly. When both NH4 + and NO3 were present, the Vmax for NH4 + uptake became slightly higher, and the Km for NH4 + uptake remained in the same order. Under these conditions the NO3 uptake was almost totally inhibited over the whole range of concentrations used (10–1000 μM total N). This inhibition by NH4 + occurred during the first two hours after addition. ei]{gnA C}{fnBorstlap}  相似文献   

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Panigatti  M. C.  Maine  M. A. 《Hydrobiologia》2003,492(1-3):151-157
Water – Salvinia herzogii – sediment systems were exposed to different phosphorus and nitrogen combinations in outdoor experiments. The aim was to estimate the amounts of P immobilized in macrophytes and sediments, as well as to elucidate whether or not the presence of N affects the retention of P. The following components were added: o-P, o-P + NH4 +, o-P + NO3 + NH4 +, o-P + NO3 . The concentration of nutrients was periodically determined throughout the experiment (28 days). The concentrations of P and N in plant tissues and sediments were determined at the beginning and the end of the experiment. Sequential extractions of P-fractions in sediment were performed using the EDTA method (Golterman, 1996). The removal efficiency of P in water was 95–99%. The removal of NH4 + (97–98%) was more effective than that of NO3 (44–86%). The presence of nitrogen species increased the removal velocity of o-P from water, NH4 + was the most effective species. Sediments not only had higher P removal rates than macrophytes but, in the control treatment without macrophytes, they reached the values obtained by macrophytes plus sediments in the other treatments. The adsorption of P takes place at the surface layer of the sediment (1 cm). Most of the P incorporated into the sediment during the experiment was sorbed by the fraction Fe(OOH)P. The addition of nutrients to water modified the leaves/lacinias weight ratio.  相似文献   

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Phragmites australis and Glyceria maxima are fast-growing littoral grasses often competing for similar wetland habitats. Eutrophication affects their competitiveness, but the outcome is not generally predictable due to the complexity of interrelated factors. We hypotheses that pore water N:P and NH4 +:NO3 ? modify their growth and metabolic responses to the trophic status of the habitat. The hypothesis was tested under standardized conditions of long-term sand cultures. Application of N?+?P up to extreme levels in combination with N:P?<?10 and NH4 +:NO3 ??<?1 triggered positive growth response in both species. In contrast, similar N levels applied in N:P?>?90 and NH4 +:NO3 ??=?4 caused lower productivity, changes in resource allocation, morphology and metabolic relations (e.g. high shoot density, low shoot diameters and heights, reduced root and rhizome growth). Observed signs of stress resembled the factors associated with the reed retreat at the die-back sites. Unbalanced N levels obviously alter plant susceptibility to stresses (altering, e.g. ventilation efficiency, plant anchorage or below-ground storage capacity). The positive effect of sufficient P supply was pronounced in Glyceria. It might therefore favour Glyceria in competition with Phragmites at highly fertile habitats rich in P.  相似文献   

8.
Molecular dynamics simulations were used to investigate the cluster-size, tube-size and metal–tube interaction effects on the melting of Pd clusters encapsulated inside carbon nanotubes (CNTs). The second moment approximation to the tight-binding potential was used to model Pd–Pd metal–metal interaction and the Tersoff potential was used for C–C interactions. Pd–C interaction was modelled by the typical weak van der Waals Lennard-Jones (VDW-LJ) potential to understand the cluster-size and tube-size effects on the thermal behaviour of supported Pd clusters. Linear decrease in cluster melting point with the inverse in cluster diameter is predicted for the CNT containing Pd clusters, well known as Pawlow's law. It is also found that the melting temperature of the supported Pd cluster is much lower than that of free one, and the rearrangement and transformation of the cluster at higher temperatures before melting are responsible for this lowering. In this case, the downward shift is independent of the CNT diameter for the same Pd cluster. In addition, the Pd–C interaction was redefined to assess the metal–tube interaction effect on the thermal evolution of the CNT-containing Pd clusters by fitting to first-principle calculations. Using the fitted strong density functional theory-Morse Pd–C potential, deformation for the CNT and structural transformation from the icosahedral to the stacked for the Pd cluster inside the CNT are found, which is not shown by using the VDW-LJ potential.  相似文献   

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Supplying both N forms (NH4 ++NO3 ) to the maize (Zea mays L.) plant can optimize productivity by enhancing reproductive development. However, the physiological factors responsible for this enhancement have not been elucidated, and may include the supply of cytokinin, a growth-regulating substance. Therefore, field and gravel hydroponic studies were conducted to examine the effect of N form (NH4 ++NO3 versus predominantly NO3 ) and exogenous cytokinin treatment (six foliar applications of 22 μM 6-benzylaminopurine (BAP) during vegetative growth versus untreated) on productivity and yield of maize. For untreated plants, NH4 ++NO3 nutrition increased grain yield by 11% and whole shoot N content by 6% compared with predominantly NO3 . Cytokinin application to NO3 -grown field plants increased grain yield to that of NH4 ++NO3 -grown plants, which was the result of enhanced dry matter partitioning to the grain and decreased kernel abortion. Likewise, hydroponically grown maize supplied with NH4 ++NO3 doubled anthesis earshoot weight, and enhanced the partitioning of dry matter to the shoot. NH4 ++NO3 nutrition also increased earshoot N content by 200%, and whole shoot N accumulation by 25%. During vegetative growth, NH4 ++NO3 plants had higher concentrations of endogenous cytokinins zeatin and zeatin riboside in root tips than NO3 -grown plants. Based on these data, we suggest that the enhanced earshoot and grain production of plants supplied with NH4 ++NO3 may be partly associated with an increased endogenous cytokinin supply.  相似文献   

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Labeled nitrogen (15?N) was applied to a soil-based substrate in order to study the uptake of N by Glomus intraradices extraradical mycelium (ERM) from different mineral N (NO 3 ? vs. NH 4 + ) sources and the subsequent transfer to cowpea plants. Fungal compartments (FCs) were placed within the plant growth substrate to simulate soil patches containing root-inaccessible, but mycorrhiza-accessible, N. The fungus was able to take up both N-forms, NO 3 ? and NH 4 + . However, the amount of N transferred from the FC to the plant was higher when NO 3 ? was applied to the FC. In contrast, analysis of ERM harvested from the FC showed a higher 15?N enrichment when the FC was supplied with 15NH 4 + compared with 15NO 3 ? . The 15?N shoot/root ratio of plants supplied with 15NO 3 ? was much higher than that of plants supplied with 15NH 4 + , indicative of a faster transfer of 15NO 3 ? from the root to the shoot and a higher accumulation of 15NH 4 + in the root and/or intraradical mycelium. It is concluded that hyphae of the arbuscular mycorrhizal fungus may absorb NH 4 + preferentially over NO 3 ? but that export of N from the hyphae to the root and shoot may be greater following NO 3 ? uptake. The need for NH 4 + to be assimilated into organically bound N prior to transport into the plant is discussed.  相似文献   

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Stimulus–secretion coupling is a complex set of intracellular reactions initiated by an external stimulus that result in the release of hormones and neurotransmitters. Under physiological conditions this signaling process takes a few milliseconds, and to minimize delays cells have developed a formidable integrated network, in which the relevant molecules are tightly packed on the nanometer scale. Active zones, the sites of release, are composed of several different proteins including voltage-gated Ca2 + (CaV) channels. It is well acknowledged that hormone and neurotransmitter release is initiated by the activation of these channels located close to docked vesicles, though the mechanisms that enrich channels at release sites are largely unknown. Interestingly, Rab3 binding proteins (RIMs), a diverse multidomain family of proteins that operate as effectors of the small G protein Rab3 involved in secretory vesicle trafficking, have recently identified as binding partners of CaV channels, placing both proteins in the center of an interaction network in the molecular anatomy of the active zones that influence different aspects of secretion. Here, we review recent evidences providing support for the notion that RIMs directly bind to the pore-forming and auxiliary β subunits of CaV channels and with RIM-binding protein, another interactor of the channels. Through these interactions, RIMs regulate the biophysical properties of the channels and their anchoring relative to active zones, significantly influencing hormone and neurotransmitter release.  相似文献   

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Following thymic output, αβ+CD4+ T cells become activated in the periphery when they encounter peptide–major histocompatibility complex. A combination of cytokine and co-stimulatory signals instructs the differentiation of T cells into various lineages and subsequent expansion and contraction during an appropriate and protective immune response. Our understanding of the events leading to T-cell lineage commitment has been dominated by a single fate model describing the commitment of T cells to one of several helper (TH), follicular helper (TFH) or regulatory (TREG) phenotypes. Although a single lineage-committed and dedicated T cell may best execute a single function, the view of a single fate for T cells has recently been challenged. A relatively new paradigm in αβ+CD4+ T-cell biology indicates that T cells are much more flexible than previously appreciated, with the ability to change between helper phenotypes, between helper and follicular helper, or, most extremely, between helper and regulatory functions. In this review, we comprehensively summarize the recent literature identifying when TH or TREG cell plasticity occurs, provide potential mechanisms of plasticity and ask if T-cell plasticity is beneficial or detrimental to immunity.  相似文献   

13.
To study the long-term fate of deposited ammonium (NH4 +) in a Scots pine forest stand under high nitrogen (N) deposition in the Netherlands we re-sampled the plots of a 15N tracer experiment with high (i.e. ambient) and lowered N deposition in this stand 8 years after application of the tracer. The results were compared with results obtained 7 years earlier. In the 7 years between the samplings the 15N deltas of needles, twigs and upper organic soil layer had converged to similar values still above the natural 15N abundance, suggesting equilibration as a result of intensive cycling of N among these pools. Bark and wood had lower deltas than needles and twigs, but if the label found was attributed to tissue synthesized since the start of the labeling only, bark values were similar to needles and twigs, whereas wood values were higher indicating retranslocation of N into older wood. Mineral soil lost all 15N label it had accumulated after 1 year indicating that this label had not been strongly bound. The first year the low N treatment had retained more of the labeled NH4 + deposition than the high N treatment, but in the seven subsequent years relatively more label was retained in the latter. This better retention after 7 years was ascribed to a larger fraction of label taken up by the vegetation in the high N treatment. This shows that the vegetation can affect the label dynamics despite the fact that only a relatively small amount of label was present in the aboveground vegetation.  相似文献   

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The results of the experiments discussed here present changes in the chemical composition of xylem sap of tomato seedlings cultivated in hydroponics on media containing 5 mmol HCO3 and an N-source given as NO3 , NH4 + or these two forms in different proportions. The occurrence of free NH4 + in the xylem sap of NH4 +-seedlings and in NO3 -seedlings indicates that the process of N-assimilation was not only confined to roots. The application of HCO3 to the medium effected a decrease in the concentration of NH4 + in the xylem sap of NH4 +-seedlings, having no effect on changes in the concentration of NO3 or NH4 + in NO3 -seedlings. Malate, citrate, fumarate, and succinate were identified in the xylem sap. The concentration of carboxylates in NO3 -seedlings exceeded by about 50% that recorded in NH4 +-seedlings. The highest concentration of malate constituting from 80% to 93.5% of this fraction, was determined in this group of compounds. The enrichment of the medium with HCO3 ions induced an increase in the content of carboxylates, chiefly of malate. In these experimental conditions an increase in the malate concentration in the xylem sap of NO3 and NH4 +-seedlings reached relative values of 100% and 36%, respectively. The total concentration of amides and amino acids was about 2.6 times higher in the xylem sap of NH4 +-seedlings than in NO3 -seedlings. Amide glutamine was the main component of this fraction in xylem sap and its total concentration was about 3.3 times higher in NH4 +-seedlings than that determined in NO3 -seedlings. Glutamine, glutamate, aspargine, and aspartate constituted from 69% to 77% of this fraction. The concentration of the remaining amino acids varied from 0.6% to 7%. The enrichment of the medium with HCO3  ions also effected an increase in the concentration of amides and amino acids in the xylem sap by about 17% and 56% in the case of NO3 and NH4 +-seedlings, respectively, in comparison with the respective controls (without HCO3 ). Abbreviations: DAG – days after germination; DIC – dissolved inorganic carbon; GOGAT – glutamine:2-oxoglutarate aminotransferase; GS – glutamine synthetase; PAR – photosynthetically active radiation; PEPc – phosphoenolpyruvate carboxylase  相似文献   

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Pang  Rui  Sun  Yue  Xu  Xingliang  Song  Minghua  Ouyang  Hua 《Plant and Soil》2018,433(1-2):339-352
Plant and Soil - In natural ecosystems, plants generally promote the acquisition of nitrogen (N) through the input of carbon (C) into the soil. The present study aimed to clarify how changes in C...  相似文献   

18.
Wang  Xinyu  Gao  Yingzhi  Zhang  Hualiang  Shao  Zeqiang  Sun  Baoru  Gao  Qiang 《Plant and Soil》2020,449(1-2):169-178
Plant and Soil - Plant growth is often limited by low soil phosphorus (P) availability, soil nitrogen (N) availability may affect plants’ responses to P supply. We studied the growth and...  相似文献   

19.
A comparative theoretical investigation into the change in strength of the trigger-bond upon formation of the Na+, Mg2+ and HF complexes involving the nitro group of RNO2 (R?=? –CH3, –NH2, –OCH3) or the C?=?C bond of (E)-O2N–CH?=?CH–NO2 was carried out using the B3LYP and MP2(full) methods with the 6-311++G**, 6-311++G(2df,2p) and aug-cc-pVTZ basis sets. Except for the Mg2+?π system with (E)-O2N–CH?=?CH–NO2 (i.e., C2H2N2O4?Mg2+), the strength of the trigger-bond X–NO2 (X?=?C, N or O) was enhanced upon complex formation. Furthermore, the increment of bond dissociation energy of the X–NO2 bond in the Na+ complex was far greater than that in the corresponding HF system. Thus, the explosive sensitivity in the former might be lower than that in the latter. For C2H2N2O4?Mg2+, the explosive sensitivity might also be reduced. Therefore, it is possible that introducing cations into the structure of explosives might be more efficacious at reducing explosive sensitivity than the formation of an intermolecular hydrogen-bonded complex. AIM, NBO and electron density shifts analyses showed that the electron density shifted toward the X–NO2 bond upon complex formation, leading to a strengthened X–NO2 bond and possibly reduced explosive sensitivity.
Figure
Introducing cations into explosives is more efficacious at reducing sensitivity than H-bond formation  相似文献   

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