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59 results for “rootstocks”
Supporting data: HiFi chromosome-scale diploid assemblies of the grape rootstocks 110R, Kober 5BB, and 101-14 Mgt
<p>Repository for supporting data to the paper: HiFi chromosome-scale diploid assemblies of the grape rootstocks 110R, Kober 5BB, and 101-14 Mgt</p>
X-ray imaging of 30 year old wine grape wood reveals cumulative impacts of rootstocks on scion secondary growth and harvest index
<p><span></span></p> <p><span>Annual rings from vines in a 30 year old, California rootstock trial were measured to determine the effects of 15 different rootstocks on Chardonnay and Cabernet Sauvignon scions. Viticultural traits measuring vegetative growth, yield, berry quality, and nutrient uptake were measured at the beginning and end of the lifetime of the vineyard.</span></p> <p><span>X-ray Computed Tomography (CT) was used to measure ring widths in 103 vines. Ring width was modeled as a function of ring number using a negative exponential model. Early and late wood ring widths, cambium width, and scion trunk radius were correlated with 27 traits. </span></p> <p><span>Modeling of annual ring width shows that scions alter the width of the first rings but that rootstocks alter the decay thereafter, consistently shortening ring width throughout the lifetime of the vine. The ratio of yield to vegetative growth, juice pH, photosynthetic assimilation and transpiration rates, and stomatal conductance are correlated with scion trunk radius.</span></p> <p><span>Rootstocks modulate secondary growth over years, altering hydraulic conductance, physiology, and agronomic traits. Rootstocks act in similar but distinct ways from climate to modulate ring width, which borrowing techniques from dendrochronology, can be used to monitor both genetic and environmental effects in woody perennial crop species.</span></p>
Figure. 2 in First Report of the Peach Root-Knot Nematode, Meloidogyne floridensis Infecting Almond on Root-Knot Nematode Resistant´Hansen 536µ and´Brightµs Hybrid 5µ Rootstocks in California, USA
Figure. 2: Meloidogyne floridensis. (A–C) Anterior region of J2s; (D and E) Head region of males; (F–H) Posterior region of J2s; (I and J) Posterior region of males; (K) Lateral field of male; (L–N) Perineal patterns of females. Scale = 10 μm for A–J and 20 μm for L–N.
Figure. 1 in First Report of the Peach Root-Knot Nematode, Meloidogyne floridensis Infecting Almond on Root-Knot Nematode Resistant´Hansen 536µ and´Brightµs Hybrid 5µ Rootstocks in California, USA
Figure. 1: (A) Root galls on 'Hansen 536' rootstock of almond trees (Prunus dulcis) as scion; (B) Almond tree infected tree with Meloidogyne floridensis; (C) Almond tree, healthy.
Figure 4 in Dynamics of the impacts of Pratylenchus penetrans on Gisela® cherry rootstocks
Figure 4: Relationships between running average Pratylenchus penetrans population densities and trunk cross-sectional areas (TCSA) for three different cherry training systems on Gisela 3 (left), Gisela 5 (center), and Gisela 6 (right) rootstocks at the end of 2017 at the Summerland, British Columbia site. Training systems: KGB, Kym Greene Bush; TSA, Tall Spindle Axe; UFO, Upright Fruiting Offshoot.
Figure 3 in Dynamics of the impacts of Pratylenchus penetrans on Gisela® cherry rootstocks
Figure 3: Relationships between running average Pratylenchus penetrans population densities and trunk cross-sectional areas (TCSA) for three different cherry tree training systems on Gisela 3 rootstock from 2013 through 2016 at the Summerland, British Columbia site. Training systems: KGB, Kym Greene Bush; TSA, Tall Spindle Axe; UFO, Upright Fruiting Offshoots.
Figure 2 in Dynamics of the impacts of Pratylenchus penetrans on Gisela® cherry rootstocks
Figure 2: Temporal dynamics of the biomass of fine roots (<2 mm diameter) (g dry root/kg dry soil) under Gi.3, Gi.5, and Gi.6 trees during the course of the study, at the Summerland, British Columbia (BC, solid lines) and Kentville, Nova Scotia (NS, dashed lines) sites.
Figure 1 in Dynamics of the impacts of Pratylenchus penetrans on Gisela® cherry rootstocks
Figure 1: Population densities of Pratylenchus penetrans (per kg soil, roots inclusive) under Gi.3, Gi.5, and Gi.6 trees during the course of the study, at the Summerland, British Columbia (BC, solid lines) and Kentville, Nova Scotia (NS, dashed lines) sites. Error bars represent one standard deviation above the minimum value at each date.
Figure 5 in Optimizing in vitro factors for improvement of shoot proliferation of 'Flordaguard' peach rootstock
Figure 5. Shoots proliferation from node explant of 'Flordaguard' peach rootstock cultured in semi-solid MS-½N (without PGR). A. Mean number of shoots per explant; B. number of elongated shoots; C. and mean length of shoots obtained in half strength MS (½N) – double-phase under different concentrations of BAP (0.5–3.0 mg L-1) for 'Flordaguard' peach rootstock.
Figure 4 in Optimizing in vitro factors for improvement of shoot proliferation of 'Flordaguard' peach rootstock
Figure 4. Shoots proliferation from node explant of 'Flordaguard' peach rootstock cultured on full strength MS medium. A. Growth and development of isolated shoot with symptoms of hyperhydricity; B. Growth and development of multiple shoot with shoot-tip necrosis (STN).
Figure 3 in Optimizing in vitro factors for improvement of shoot proliferation of 'Flordaguard' peach rootstock
Figure 3. Shoot proliferation in 'Flordaguard' peach rootstock. A. Induction of multiple shoot in explants cultured in half strength MS (½N) containing 1.0 mg L-1 of GA and 1.0 g L-1 of activated charcoal (double-phase medium); B. Growth and development of isolated shoots after 20 3 days in double-phase medium.
X-ray imaging of 30 year old wine grape wood reveals cumulative impacts of rootstocks on scion secondary growth and harvest index
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Testing of different methods to induce lime stress responses in grapevine rootstocks - supplementary figures
<p>Defined experiments are necessary to clarify the response to nutrient deficiency. The study tested different options to induce lime stress in pot experiments to select the most appropriate method with grapevine roostocks.We tested soil substrates, an hydroponic culture and an inert sand substrate by adding KHCO3. Grapevine rootstocks Teleki 5C, Couderc 3309 and Fercal were used. The figures represent supplementary material of the obtained phenotype with the different rootstocks and testing conditions.</p>
On farm field experiments testing TOMRES rootstocks under water stress
<p>This experiment aims to test EDYPRO biostimulants on farm applicatioin. The commercial variety Elpida F1 was either treated with biostimulants or not and cultivated under 2 water/nutritional regimens (standard water/nutrient supply vs 20% irrigation reduction/no nutrient supply).</p>
Testing TOMRES rootstocks and their efficiency to utilize biologically fixed nitrogen coming from legumes green manure
<p>This experiment was established to test a promising TOMRES variety cultivated under organic and conventional crop system and test different rootstocks coming from the TOMRES collection. In the organic treatment, legumes were pre-cultivated before the tomato crop and were incorporated in soil as green manure. Worms were also applied in the crop to test their ability to increase yield and wue in tomato crop.</p>
On farm field experiments testing TOMRES rootstocks under water stress (Season 2019-2020)
<p>This experiment aims to test EDYPRO biostimulants on farm application. The commercial variety Elpida F1 was either treated with biostimulants or not and cultivated under 2 water/nutritional regimens (standard water/nutrient supply vs 20% irrigation reduction/no nutrient supply).</p>
On farm field experiments testing TOMRES rootstocks under water stress
<p>This experiment aims to test two of the most performing Tomres used as rootstocks in the commercial variety (Elpida F1) cultivated in the region. More specifically, 2 tomato Tomres lines (TOMRES- 149, Bil-6191 and TOMRES 162, M82) x 2 water/nutritional regimens (standard water/nutrient supply vs 20% irrigation reduction/no nutrient supply). Greenhouse will also have non grafted plants on Armstrong rootstock cultivated under standard water/nutrient supply and 20% irrigation reduction/no nutrient supply</p>
A tale of three vines: current and future threats to wild Eurasian grapevine by vineyards and invasive rootstocks
<p>This dataset has been used for the paper <em>A tale of three vines: current and future threats to wild Eurasian grapevine by vineyards and invasive rootstocks</em> by Petitpierre et al.</p> <p>It contains the species distribution of five <em>Vitis</em> species in North America and Europe (<em>Vitis acerifolia</em>, <em>Vitis aestivalis</em>, <em>Vitis rupestris</em>, <em>Vitis riparia </em>and <em>Vitis berlandieri</em>), so as the distribution of the Eurasian wild grapevine (<em>Vitis vinifera</em> ssp. <em>sylvestris</em>) and cultivated grapevine in Europe (<em>Vitis vinifera</em> ssp. <em>vinifera</em>). 40 bioclimatic variables are associated to these distributions. These variables were derived from the Climond dataset (Kriticos et al., 2012).</p> <p>Species distribution data were gathered using several databases and sources. The list of the different sources is cited in methods section of the related manuscript. The distribution of each <em>Vitis</em> taxa was rasterized at a resolution of 0.167° (coordinate reference system WGS84; EPSG:4326). X and Y coordinates correspond to the center of each cell. Environmental variables were extracted from the CliMond database (Kriticos et al., 2012) for each site. It consists of a set of 40 bioclimatic variables at a resolution of 0.167°, grouped into 4 categories: temperature, precipitation, moisture, and solar radiation. The description of these 40 variables can be found in the original CliMond publication (Kriticos et al., 2012).</p> <p> </p> <p>Each file contains the distribution of one Vitis taxa.</p> <p>v_ace.csv contains the distribution of Vitis acerifolia in North America.</p> <p>v_aes.csv contains the distribution of Vitis aestivalis in North America.</p> <p>v_ber.csv contains the distribution of Vitis berlandieri in North America.</p> <p>v_rip.csv contains the distribution of Vitis riparia in North America.</p> <p>v_rup.csv contains the distribution of Vitis rupestris in North America.</p> <p>v_root.csv contains the distribution of the American vitis taxa (Vitis acerifolia, Vitis aestivalis, Vitis berlandieri, Vitis riparia and Vitis rupestris) in Europe.</p> <p>v_vin.csv contains the distribution of the vineyards (i.e. Vitis vinifera ssp. vinifera, the cultivated grapevine) in Europe.</p> <p>v_syl.csv contains the distribution of the vineyards (i.e. Vitis vinifera ssp. sylvestris, the wild European grapevine) in Europe.</p> <p><strong>Reference</strong><br> Kriticos, D.J., Webber, B.L., Leriche, A., Ota, N., Macadam, I., Bathols, J., Scott, J.K., 2012. CliMond: Global high-resolution historical and future scenario climate surfaces for bioclimatic modelling. Methods Ecol. Evol. 3, 53–64. https://doi.org/10.1111/j.2041-210X.2011.00134.x</p> <p>GBIF data for Vitis vinifera ssp. vinifera. GBIF.org (11 November 2020) GBIF Occurrence Download https://doi.org/10.15468/dl.hacmjx<br> GBIF data for Vitis ssp. sylvestris. GBIF.org (11 November 2020) GBIF Occurrence Download https://doi.org/10.15468/dl.qu7txv<br> GBIF data for Vitis berlandieri. GBIF.org (11 November 2020) GBIF Occurrence Download https://doi.org/10.15468/dl.w6dt7r<br> GBIF data for Vitis riparia. GBIF.org (11 November 2020) GBIF Occurrence Download https://doi.org/10.15468/dl.aqh55u<br> GBIF data for Vitis acerifolia. GBIF.org (11 November 2020) GBIF Occurrence Download https://doi.org/10.15468/dl.csd7wc<br> GBIF data for Vitis aestivalis. GBIF.org (11 November 2020) GBIF Occurrence Download https://doi.org/10.15468/dl.f5jfzf<br> GBIF data for Vitis rupestris. GBIF.org (02 September 2020) GBIF Occurrence Download https://doi.org/10.15468/dl.gqjm7w</p> <p> </p>
Grapevine cv. tempranillo grafted onto 110R and SO4 rootstocks —gas exchange parameters
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FIGURE. Euphorbia neobosseri in cultivation in the National Tree Museum Gimborn, The Netherlands. A. succulent rootstock and stem base; B, D. details of inflorescences; C. branch habit. Credits: W.L.A. Hetterscheid (A–D). in Novelties in Malagasy Euphorbia (Euphorbiaceae)
FIGURE. Euphorbia neobosseri in cultivation in the National Tree Museum Gimborn, The Netherlands. A. succulent rootstock and stem base; B, D. details of inflorescences; C. branch habit. Credits: W.L.A. Hetterscheid (A–D).
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.