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The Robert H. Smith Institute of
Plant Sciences and Genetics
in Agriculture
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Neomi Maimon 
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Tel: 972-8-9489333
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Prof. Naomi Ori
Tel: 972-8-948-9605
E-mail: naomi.ori@mail.huji.ac.il

 

Publications

2014
Zamir, D. . A Wake-Up Call With Coffee. Science 2014, 345, 1124. Publisher's Version
Carmel, N. ; Tel-Or, E. ; Chen, Y. ; Pick, U. . Iron Uptake Mechanism In The Chrysophyte Microalga Dinobryon. Journal of Plant Physiology 2014, 171, 993-997. Publisher's VersionAbstract
The mechanism of iron uptake in the chrysophyte microalga Dinobryon was studied. Previous studies have shown that iron is the dominant limiting elements for growth of Dinobryon in the Eshkol reservoir in northern Israel, which control its burst of bloom. It is demonstrated that Dinobryon has a light-stimulated ferrireductase activity, which is sensitive to the photosynthetic electron transport inhibitor DCMU and to the uncoupler CCCP. Iron uptake is also light-dependent, is inhibited by DCMU and by CCCP and also by the ferrous iron chelator BPDS. These results suggest that ferric iron reduction by ferrireductase is involved in iron uptake in Dinobryon and that photosynthesis provides the major reducing power to energize iron acquisition. Iron deprivation does not enhance but rather inhibits iron uptake contrary to observations in other algae. © 2014 Elsevier GmbH.
Teitel, M. ; Garcia-Teruel, M. ; Alon, H. ; Gantz, S. ; Tanny, J. ; Esquira, I. ; Sofer, M. ; Levi, A. ; Schwartz, A. ; Antler, A. . The Effect Of Screenhouse Height On Air Temperature. Acta Horticulturae 2014, 1037, 517-524. Publisher's VersionAbstract
The use of screenhouses in protected cultivation is nowadays a common practice in many countries. When fine mesh screens are used in the screenhouse construction, the resistance of the screens to airflow is high and ventilation rate is strongly reduced in comparison to the open field. Thus, growers tend to move to higher screenhouses since they assume that in such structures accumulation of warm and humid air near the plants is diminished. The goal of this research was to investigate, in insect-proof screenhouses, the effect of screenhouse height on air temperature. Experiments were conducted in two flat top screenhouses each of an area of 745 m2; one with a roof height of 4 m (LSH) and the other with a roof height of 6 m (HSH) with 16 m of separation between them. The houses were covered with a '50-mesh' screen which is commonly used with tomato cultivation in Israel. The daily courses of air temperature were very similar in the two houses. The average air temperature in the HSH was nearly at all times higher than in the LSH. The largest differences in temperature between the houses, of about 1°C, were observed during day; slightly lower differences were observed during night. The most significant difference between the two houses was related to the vertical gradients of temperature. The results show that the microclimate in the vertical direction appears to be more homogenous in the HSH than in the LSH.
Sperling, O. ; Lazarovitch, N. ; Schwartz, A. ; Shapira, O. . Effects Of High Salinity Irrigation On Growth, Gas-Exchange, And Photoprotection In Date Palms (Phoenix Dactylifera L., Cv. Medjool). Environmental and Experimental Botany 2014, 99, 100-109. Publisher's VersionAbstract
Date palms are widely cultivated in arid Mediterranean regions and require large quantities of water to produce commercial fruit yields. In these regions the plantations are commonly irrigated with low-quality water, which results in reduced growth and yields. To study the effect of using saline water for irrigation, date palm seedlings (cv. Medjool) were subjected to long-term irrigation treatments with water containing between 2 and 105mM NaCl. The effect of saline irrigation was determined according to leaf gas exchange, chlorophyll a fluorescence, growth parameters and the distribution of key minerals in different plant organs. High salinity decreased plant growth and increased Na+ accumulation in the roots and lower stem. However, Na+ ions were mostly excluded from the sensitive photosynthetic tissues of the leaf. Thus, the reduction in the CO2 assimilation rate was primarily attributed to a reduced stomatal conductance. Consistent with this finding, the photosynthetic response to variable intercellular CO2 concentrations (A/Ci curves) revealed no permanent damage to the photosynthetic apparatus and implicated developed photoprotective mechanisms. Independent of salinity treatment, 80% of the energy absorbed by the leaf was directed to non-photochemical quenching, as presented in electron-equivalent units. Functioning at full capacity, the non-photochemical mechanism could not compensate for all the excess irradiance. Thus, of the remaining absorbed energy, a significant portion was directed to photochemical O2 related processes, rather than CO2 prevented photoinhibition. The exclusion of toxic ions and O2-dependent energy dissipation maintained photosynthetic efficiency and supported survival under salt stress. © 2013 Elsevier B.V.
Sperling, O. ; Shapira, O. ; Tripler, E. ; Schwartz, A. ; Lazarovitch, N. . A Model For Computing Date Palm Water Requirements As Affected By Salinity. Irrigation Science 2014, 32, 341-350. Publisher's VersionAbstract
Irrigation of crops in arid regions with marginal water is expanding. Due to economic and environmental issues arising from use of low-quality water, irrigation should follow the actual crop water demands. However, direct measurements of transpiration are scant, and indirect methods are commonly applied; e.g., the Penman-Monteith (PM) equation that integrates physiological and meteorological parameters. In this study, the effects of environmental conditions on canopy resistance and water loss were experimentally characterized, and a model to calculate palm tree evapotranspiration ETc was developed. A novel addition was to integrate water salinity into the model, thus accounting for irrigation water quality as an additional factor. Palm tree ETc was affected by irrigation water salinity, and maximum values were reduced by 25 % in plants irrigated with 4 dS m-1 and by 50 % in the trees irrigated with 8 dS m-1. Results relating the responses of stomata to the environment exhibited an exponential relation between increased light intensities and stomatal conductance, a surprising positive response of stomata to high vapor pressure deficits and a decrease in conductance as water salinity increased. These findings were integrated into a modified 'Jarvis-PM' canopy conductance model using only meteorological and water quality inputs. The new approach produced weekly irrigation recommendations based on field water salinity (2.8 dS m-1) and climatic forecasts that led to a 20 % decrease in irrigation water use when compared with current irrigation recommendations. © 2014 Springer-Verlag Berlin Heidelberg.
Erel, R. ; Ben-Gal, A. ; Dag, A. ; Schwartz, A. ; Yermiyahu, U. . Sodium Replacement Of Potassium In Physiological Processes Of Olive Trees (Var. Barnea) As Affected By Drought. Tree Physiology 2014, 34, 1102-1117. Publisher's VersionAbstract
Potassium (K) is a macro-nutrient understood to play a role in the physiological performance of plants under drought. In some plant species, sodium (Na) can partially substitute K. Although a beneficial role of Na is well established, information regarding its nutritional role in trees is scant and its function under conditions of drought is not fully understood. The objective of the present study was to evaluate the role of K and its possible replacement by Na in olive's (Olea europaea L.) response to drought. Young and bearing olive trees were grown in soilless culture and exposed to gradual drought. In the presence of Na, trees were tolerant of extremely low K concentrations. Depletion of K and Na resulted in ∼50% reduction in CO2 assimilation rate when compared with sufficiently fertilized control plants. Sodium was able to replace K and recover the assimilation rate to nearly optimum level. The inhibitory effect of K deficiency on photosynthesis was more pronounced under high stomatal conductance. Potassium was not found to facilitate drought tolerance mechanisms in olives. Moreover, stomatal control machinery was not significantly impaired by K deficiency, regardless of water availability. Under drought, leaf water potential was affected by K and Na. High environmental K and Na increased leaf starch content and affected the soluble carbohydrate profile in a similar manner. These results identify olive as a species capable of partly replacing K by Na. The nutritional effect of K and Na was shown to be independent of plant water status. The beneficial effect of Na on photosynthesis and carbohydrates under insufficient K indicates a positive role of Na in metabolism and photosynthetic reactions. © The Author 2014. Published by Oxford University Press. All rights reserved.
Netzer, Y. ; Shenker, M. ; Schwartz, A. . Effects Of Irrigation Using Treated Wastewater On Table Grape Vineyards: Dynamics Of Sodium Accumulation In Soil And Plant. Irrigation Science 2014, 32, 283-294. Publisher's VersionAbstract
The effect of using treated wastewater for irrigation of table grapes (Vitis vinifera cv. Superior Seedless) was studied for six seasons. The experimental vineyard was grown on clay loam soil in a semi-arid area. Treated wastewater (5.83 meq L-1 Na+) with (TWW + F) and without (TWW) fertilizer, and fresh water with fertilizer (FW + F, 2.97 meq L-1 Na+), were each applied at three irrigation levels (80, 60 and 40 % of crop evapotranspiration before harvest). Root zone (0-60 cm soil depth) soil saturated paste extract Na+ concentrations and sodium adsorption ratio (SAR) values fluctuated over the years, but generally decreased in the order TWW > TWW + F > FW + F for each irrigation level. Both Na+ concentrations and SAR values developed faster and to a greater extent at higher irrigation. Adding fertilizer to TWW decreased Na+ and SAR only at the high irrigation level. Na+ concentrations in the trunk wood, bark and xylem sap of the TWW and TWW + F irrigated vines were significantly higher than those in the FW + F-irrigated vines. Leaf petiole Na+ content increased with time and its maximum value in TWW and TWW + F irrigated vines exceeded 6,500 mg kg-1, threefold higher than in FW + F irrigated vines. We conclude that in clay soils under relatively high irrigation, Na+ may pose a greater potential risk to plants and soil rather than Cl- or salinity per se. However, significant effects on yield were not recorded during this six-year study probably due to the high salinity tolerance of the 'Paulsen' rootstock used in the experiment. © 2014 Springer-Verlag Berlin Heidelberg.
Ma, X. ; Shatil-Cohen, A. ; Ben-Dor, S. ; Wigoda, N. ; Perera, I. Y. ; Im, Y. J. ; Diminshtein, S. ; Yu, L. ; Boss, W. F. ; Moshelion, M. ; et al. Do Phosphoinositides Regulate Membrane Water Permeability Of Tobacco Protoplasts By Enhancing The Aquaporin Pathway?. Planta 2014, 241, 741-755. Publisher's VersionAbstract
Main conclusion: Enhancing the membrane content of PtdInsP2, the already-recognized protein-regulating lipid, increased the osmotic water permeability of tobacco protoplasts, apparently by increasing the abundance of active aquaporins in their membranes. While phosphoinositides are implicated in cell volume changes and are known to regulate some ion channels, their modulation of aquaporins activity has not yet been reported for any organism. To examine this, we compared the osmotic water permeability (Pf) of protoplasts isolated from tobacco (Nicotiana tabacum) cultured cells (NT1) with different (genetically lowered or elevated relative to controls) levels of inositol trisphosphate (InsP3) and phosphatidyl inositol [4,5] bisphosphate (PtdInsP2). To achieve this, the cells were transformed with, respectively, the human InsP3 5-phosphatase (‘Ptase cells’) or human phosphatidylinositol (4) phosphate 5-kinase (‘PIPK cells’). The mean Pf of the PIPK cells was several-fold higher relative to that of controls and Ptase cells. Three results favor aquaporins over the membrane matrix as underlying this excessive Pf: (1) transient expression of the maize aquaporin ZmPIP2;4 in the PIPK cells increased Pf by 12–30 μm s−1, while in the controls only by 3–4 μm s−1. (2) Cytosol acidification—known to inhibit aquaporins—lowered the Pf in the PIPK cells down to control levels. (3) The transcript of at least one aquaporin was elevated in the PIPK cells. Together, the three results demonstrate the differences between the PIPK cells and their controls, and suggest a hitherto unobserved regulation of aquaporins by phosphoinositides, which could occur through direct interaction or indirect phosphoinositides-dependent cellular effects. © 2014, Springer-Verlag Berlin Heidelberg.
Wigoda, N. ; Moshelion, M. ; Moran, N. . Is The Leaf Bundle Sheath A "Smart Flux Valve" For K+ Nutrition?. Journal of Plant Physiology 2014, 171, 715-722. Publisher's VersionAbstract
Evidence has started to accumulate that the bundle sheath regulates the passage of water, minerals and metabolites between the mesophyll and the conducting vessels of xylem and phloem within the leaf veins which it envelops. Although potassium (K+) nutrition has been studied for several decades, and much is known about the uptake and recirculation of K+ within the plant, the potential regulatory role of bundle sheath with regard to K+ fluxes has just begun to be addressed. Here we have collected some facts and ideas about these processes. © 2014 Elsevier GmbH.
Shatil-Cohen, A. ; Sibony, H. ; Draye, X. ; Chaumont, F. ; Moran, N. ; Moshelion, M. . Measuring The Osmotic Water Permeability Coefficient (Pf) Of Spherical Cells: Isolated Plant Protoplasts As An Example. Journal of Visualized Experiments 2014. Publisher's VersionAbstract
Studying AQP regulation mechanisms is crucial for the understanding of water relations at both the cellular and the whole plant levels. Presented here is a simple and very efficient method for the determination of the osmotic water permeability coefficient (Pf) in plant protoplasts, applicable in principle also to other spherical cells such as frog oocytes The first step of the assay is the isolation of protoplasts from the plant tissue of interest by enzymatic digestion into a chamber with an appropriate isotonic solution The second step consists of an osmotic challenge assay: protoplasts immobilized on the bottom of the chamber are submitted to a constant perfusion starting with an isotonic solution and followed by a hypotonic solution. The cell swelling is video recorded. In the third step, the images are processed offline to yield volume changes, and the time course of the volume changes is correlated with the time course of the change in osmolarity of the chamber perfusion medium, using a curve fitting procedure written in Matlab (the ‘PfFit’), to yield Pf. © JoVE 2006-2014. All Rights Reserved.
Yang, T. ; Zhang, S. ; Hu, Y. ; Wu, F. ; Hu, Q. ; Chen, G. ; Cai, J. ; Wu, T. ; Moran, N. ; Yu, L. ; et al. The Role Of A Potassium Transporter Oshak5 In Potassium Acquisition And Transport From Roots To Shoots In Rice At Low Potassium Supply Levels. Plant Physiology 2014, 166, 945-959. Publisher's VersionAbstract
In plants, K transporter (KT)/high affinity K transporter (HAK)/K uptake permease (KUP) is the largest potassium (K) transporter family; however, few of the members have had their physiological functions characterized in planta. Here, we studied OsHAK5 of the KT/HAK/KUP family in rice (Oryza sativa). We determined its cellular and tissue localization and analyzed its functions in rice using both OsHAK5 knockout mutants and overexpression lines in three genetic backgrounds. A b-glucuronidase reporter driven by the OsHAK5 native promoter indicated OsHAK5 expression in various tissue organs from root to seed, abundantly in root epidermis and stele, the vascular tissues, and mesophyll cells. Net K influx rate in roots and K transport from roots to aerial parts were severely impaired by OsHAK5 knockout but increased by OsHAK5 overexpression in 0.1 and 0.3 mM K external solution. The contribution of OsHAK5 to K mobilization within the rice plant was confirmed further by the change of K concentration in the xylem sap and K distribution in the transgenic lines when K was removed completely from the external solution. Overexpression of OsHAK5 increased the K-sodium concentration ratio in the shoots and salt stress tolerance (shoot growth), while knockout of OsHAK5 decreased the K-sodium concentration ratio in the shoots, resulting in sensitivity to salt stress. Taken together, these results demonstrate that OsHAK5 plays a major role in K acquisition by roots faced with low external K and in K upward transport from roots to shoots in K-deficient rice plants. © 2014 American Society of Plant Biologists. All Rights Reserved.
Ladizinsky, G. . Origin And Domestication Of The Southwest Asian Grain Legumes; 2014; pp. 374-389. Publisher's Version
Sade, N. ; Shatil-Cohen, A. ; Attia, Z. ; Maurel, C. ; Boursiac, Y. ; Kelly, G. ; Granot, D. ; Yaaran, A. ; Lerner, S. ; Moshelion, M. . The Role Of Plasma Membrane Aquaporins In Regulating The Bundle Sheath-Mesophyll Continuum And Leaf Hydraulics. Plant Physiol 2014, 166, 1609-20.Abstract
Our understanding of the cellular role of aquaporins (AQPs) in the regulation of whole-plant hydraulics, in general, and extravascular, radial hydraulic conductance in leaves (K(leaf)), in particular, is still fairly limited. We hypothesized that the AQPs of the vascular bundle sheath (BS) cells regulate K(leaf). To examine this hypothesis, AQP genes were silenced using artificial microRNAs that were expressed constitutively or specifically targeted to the BS. MicroRNA sequences were designed to target all five AQP genes from the PLASMA MEMBRANE-INTRINSIC PROTEIN1 (PIP1) subfamily. Our results show that the constitutively silenced PIP1 (35S promoter) plants had decreased PIP1 transcript and protein levels and decreased mesophyll and BS osmotic water permeability (P(f)), mesophyll conductance of CO2, photosynthesis, K(leaf), transpiration, and shoot biomass. Plants in which the PIP1 subfamily was silenced only in the BS (SCARECROW:microRNA plants) exhibited decreased mesophyll and BS Pf and decreased K(leaf) but no decreases in the rest of the parameters listed above, with the net result of increased shoot biomass. We excluded the possibility of SCARECROW promoter activity in the mesophyll. Hence, the fact that SCARECROW:microRNA mesophyll exhibited reduced P(f), but not reduced mesophyll conductance of CO2, suggests that the BS-mesophyll hydraulic continuum acts as a feed-forward control signal. The role of AQPs in the hierarchy of the hydraulic signal pathway controlling leaf water status under normal and limited-water conditions is discussed.