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250 results for “Salt Stress”

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zenodo44/100

Phenotypic diversity of root architecture and genotypic variation in durum wheat under salt stress

<p>Supplementary data consists of Principal Components values for traits detected under salt and control conditions (S1); Markers&#39; locations onto the durum wheat reference genome associated with QTL (S2); Markers associated with genes from NCBI database (S4); PCR results and alleles distribrution</p>

opencc-by-4.0Jan 2023View details →
zenodo40/100

Natural variation across Arabidopsis diversity panel in early responses to salt stress

<p>The data of Arabidopsis thaliana accessions which were grown according to&nbsp;the established&nbsp;protocol for studying salt stress in soil experiment (described in detail here dx.doi.org/10.17504/protocols.io.4xzgxp6), in the PSI facility, Czech Republic.&nbsp;</p>

opencc-by-4.0Apr 2020View details →
zenodo40/100

Spatially corrected dataset for natural variation across Arabidopsis diversity panel in early responses to salt stress

<p>The spatially corrected data of Arabidopsis thaliana accessions, which were grown according to&nbsp;the established&nbsp;protocol for studying salt stress in soil experiment (described in detail here dx.doi.org/10.17504/protocols.io.4xzgxp6), in the PSI facility, Czech Republic.</p> <p>The spatial correction was done using the asreml package. The data was subsequently used for the Genome-Wide Association Study.&nbsp;</p>

opencc-by-4.0Apr 2020View details →
zenodo40/100

Quantification of salt stress in wheat leaves by Raman spectroscopy and machine learning

<p>Train and test datasets used in the manusicript &quot;Quantification of salt stress in wheat leaves by Raman spectroscopy and machine learning&quot;. Trained models are included.</p>

opencc-by-4.0Jan 2022View details →
zenodo40/100

Manhattan and QQ plots of GWAS on salt stress responses in root system architecture parameters of wild tomato (S. pimpinellifolium)

<p>The population of +/2 200 accessions of wild tomato was screened with the protocol described&nbsp;<a href="https://www.protocols.io/view/studying-root-system-architecture-changes-in-tomat-2mqgc5w">here</a>&nbsp;with the only exception that the plants were transferred 4 days after germination (rather than 3 - described in the protocol). The images were analyzed using the&nbsp;<a href="https://smartroot.github.io/">SmartRoot</a>&nbsp;for days 0, 1, 2, 3, and 4 after transfer to treatment plates (0 or 100 mM NaCl, 1/4 MS, 0.5% sucrose, 0.1% MES, 1% Dashin agar). The data analysis was performed as described&nbsp;<a href="https://rpubs.com/mjulkowska/BIGpimp_RSA_salt">here</a>, while the pareto front calculations were done according to Chandrasekhar &amp; Julkowska paper (<a href="https://www.biorxiv.org/content/10.1101/2021.08.12.456185v1">preprint here</a>). The GWAS was performed using the ASReml script similar to&nbsp;<a href="https://onlinelibrary.wiley.com/doi/10.1111/tpj.15310">Awlia et al. (2021)</a>. The raw GWAS outputs can be found <a href="https://zenodo.org/badge/DOI/10.5281/zenodo.5856310.svg">here</a>. This dataset represents Manhattan plots and QQ plots made out of the data.&nbsp;</p>

opencc-by-4.0Apr 2022View details →
zenodo40/100

Characterization of the nuclear proteome of Chlamydomonas in response to salt stress

<p><strong>Supplementary Files and Figures for the manuscript </strong></p> <p><strong>&quot;Characterization of the nuclear proteome of Chlamydomonas in response to salt stressCharacterization of the nuclear proteome of Chlamydomonas in response to salt stress&quot;</strong></p>

opencc-by-4.0May 2022View details →
zenodo40/100

Figure 7 in Mitigation of the effects of salt stress in cowpea bean through the exogenous aplication of brassinosteroid

Figure 7. Effect of 24-epibrasinolide in the activity of the enzyme nitrate reductase of cowpea roots under salt stress. Capital letters indicate statistical differences between EBL treatments (p &lt;0.05) based on upon a Tukey's test; small letters indicate statistical differences between salt treatments (p &lt;0.05) based on upon a Tukey's test.

opencc-by-4.0Dec 2022View details →
zenodo40/100

Figure 6 in Mitigation of the effects of salt stress in cowpea bean through the exogenous aplication of brassinosteroid

Figure 6. Effect of 24-epibrasinolide in the activity of the enzyme nitrate reductase of cowpea leaves under salt stress. Capital letters indicate statistical differences between EBL treatments (p &lt;0.05) based on upon a Tukey's test; small letters indicate statistical differences between salt treatments (p &lt;0.05) based on upon a Tukey's test.

opencc-by-4.0Dec 2022View details →
zenodo40/100

Figure 3 in Mitigation of the effects of salt stress in cowpea bean through the exogenous aplication of brassinosteroid

Figure 3. Effect of 24-epibrasinolide in the stem diameter of cowpea plants under salt stress. Capital letters indicate statistical differences between EBL treatments (p &lt;0.05) based on upon a Tukey's test; small letters indicate statistical differences between salt treatments (p &lt;0.05) based on upon a Tukey's test.

opencc-by-4.0Dec 2022View details →
zenodo40/100

Figure 6 in Salicylic acid does not mitigate salt stress on the morphophysiology and production of hydroponic melon

Figure 6. Equatorial diameter - ED (A) and polar diameter - PD (B) of fruits of 'Gaúcho' melon cultivated in a hydroponic system with different levels of electrical conductivity of the nutrient solution - ECns and exogenous application of salicylic acid. ** represents significance at 0.01 probability level.

opencc-by-4.0Dec 2022View details →
zenodo40/100

Figure 5 in Salicylic acid does not mitigate salt stress on the morphophysiology and production of hydroponic melon

Figure 5. Fresh fruit weight - FFW (A) and soluble solids content - SS (B) of 'Gaúcho' melon fruits, as a function of the interaction between the levels of electrical conductivity of the nutrient solution - ECns and foliar application of salicylic acid. X and Y correspond to ECns and salicylic acid concentrations, respectively. * and ** represent significance at 0.05 and 0.01 probability levels, respectively.

opencc-by-4.0Dec 2022View details →
zenodo40/100

Figure 3 in Salicylic acid does not mitigate salt stress on the morphophysiology and production of hydroponic melon

Figure 3. Internal CO 2 concentration - Ci (A) and CO2 assimilation rate - A (B) of 'Gaúcho' melon, as a function of the interaction between the levels of electrical conductivity of the nutrient solution - ECns and foliar application of salicylic acid, 56 days after transplanting. X and Y correspond to ECns and salicylic acid concentrations, respectively. * and ** represent significance at 0.05 and 0.01 probability levels, respectively.

opencc-by-4.0Dec 2022View details →
zenodo40/100

Figure 4 in Salicylic acid does not mitigate salt stress on the morphophysiology and production of hydroponic melon

Figure 4. Intercellular electrolyte leakage - IEL (A), shoot dry biomass - SDB (B), and total dry biomass - TDB (C) of 'Gaúcho' melon as a function of the levels of electrical conductivity of the nutrient solution - ECns, 74 days after transplanting. X and Y correspond to ECns and salicylic acid concentrations, respectively. ** represent significance at 0.01 probability levels.

opencc-by-4.0Dec 2022View details →
zenodo40/100

Figure 1 in Salicylic acid does not mitigate salt stress on the morphophysiology and production of hydroponic melon

Figure 1. Air temperature (maximum and minimum) and mean relative air humidity inside the greenhouse during the experimental period.

opencc-by-4.0Dec 2022View details →
zenodo40/100

Figure 2 in Salicylic acid does not mitigate salt stress on the morphophysiology and production of hydroponic melon

Figure 2. Stomatal conductance - gs (A) and transpiration - E (B) of 'Gaúcho' melon, as a function of the interaction between the levels of electrical conductivity of the nutrient solution - ECns and foliar application of salicylic acid, 56 days after transplanting. X and Y correspond to ECns and salicylic acid concentrations, respectively. * and ** represent significance at 0.05 and 0.01 probability levels, respectively.

opencc-by-4.0Dec 2022View details →
zenodo40/100

Figure 1 in Methods of application of salicylic acid as attenuator of salt stress in cherry tomato

Figure 1. Air temperature (maximum and minimum) and mean relative air humidity observed in the internal area of the greenhouse during the experimental period.

opencc-by-4.0Dec 2022View details →
zenodo40/100

Figure 2 in Methods of application of salicylic acid as attenuator of salt stress in cherry tomato

Figure 2. Two-dimensional projection of the scores of the principal components for the factors salinity levels (S) and methods of application of salicylic acid (M) (A) and the variables analyzed (B) in the first two principal components (PC and PC ).

opencc-by-4.0Dec 2022View details →
zenodo40/100

Figure 6 in Ionic homeostasis, biochemical components and yield of Italian zucchini under nitrogen forms and salt stress

Figure 6. Shoot dry biomass (SDB) (A and B) and production (PP) (C) of Italian zucchini plants fertilized with different forms of nitrogen (♦ Nitrate and Ammonium) and irrigated with saline waters (B). Means followed by different letters indicate difference by Tukey test at 0.05 probability level. * = Significant at 0.05 probability level (p&lt;0.05).

opencc-by-4.0Dec 2022View details →
zenodo40/100

Figure 5 in Ionic homeostasis, biochemical components and yield of Italian zucchini under nitrogen forms and salt stress

Figure 5. Italian zucchini plants fertilized with different forms of nitrogen and irrigated with saline waters.

opencc-by-4.0Dec 2022View details →
zenodo40/100

Figure 2 in Ionic homeostasis, biochemical components and yield of Italian zucchini under nitrogen forms and salt stress

Figure 2. Accumulation of nitrogen (N) (A), phosphorus (P) (B), potassium (K) (C), calcium (Ca) (D) and magnesium (Mg) (E) in Italian zucchini plants irrigated with saline waters. * - Significant at 0.05 probability level (p&lt;0.05).

opencc-by-4.0Dec 2022View details →

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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.

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neuroscienceopenDocumentation, web resources, and API references are available online.
Last verified 2026-04-30Open record

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DANDI Archive for NWB datasets

DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.

dandi-nwb
electrophysiologyopenPublished Dandiset metadata and archive endpoints are available through the production DANDI API.
Last verified 2026-04-30Open record

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.

ibl
behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
Last verified 2026-04-29Open record

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.

openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record