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58 results for “eggplant”

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zenodo36/100

Eggplant Flowers

I had never grown one before and really like that way these look and produce massive amounts of eggplants. The heat was harsh this summer and it made it and is going for producing more. I leve things to go to seed and use those seeds. And the birds love to eat the bugs and worms so I leave the green waste and innoculate it with shiitake, lion's mane and our local heat tolerant pink oysters. Source: Objaverse 1.0 / Sketchfab

opencc-by-sa-2.5Nov 2021View details →
zenodo36/100

MAGOS Glove Two Fingers EggPlant Pick and Place

<div> <div>Welcome to the Two_fingers_EggPlant_PickAndPlace dataset, a unique data collection showcasing human pick-and-place actions using a Magos Glove for the delicate object (in this case a vegetable - Eggplant). This dataset is designed to facilitate research in robotics and machine learning, particularly in human-robot interaction and manipulation, and to show how human manipulation knowledge can be transferred to intelligent gripper solutions.</div> </div>

opencc-by-4.0Nov 2024View details →
zenodo36/100

Supplementary data and material, Global strategy for the conservation and use of eggplants.

<p>Supplementary data and material from</p> <p>Solberg, S., van Zonneveld, M., Rakha, M. T. , Taher, D. I. , Prohens, J., Jarret, R. van Dooijeweert, W., and Peter Giovannini. 2022. Global strategy for the conservation and use of eggplants. Global Crop Diversity Trust. Bonn, Germany.</p>

opencc-by-4.0May 2022View details →
dryad36/100

Landscape genomics reveals genetic signals of environmental adaptation of African wild eggplant

<p><span>Crop wild relatives possess desirable traits that confer resilience to various environmental stresses. We applied landscape genomics, that associates environment with genomic variation to understand the genetic basis of their adaptation. <br></span></p> <p> </p> <p><span>In this study, we applied landscape genomics to examine the differences in allele frequency of 15,416 Single Nucleotide Polymorphisms (SNPs) among 153 accessions of wild eggplant relatives from Africa, the principal hotspot of these wild relatives. Further, we explored the correlation between the genetic variations and the bio-climatic and soil conditions at their collection sites.</span></p> <p> </p> <p><span><span>Our results showed that the environment has a greater impact on the genetic variation in the eggplant wild relative populations compared to the geographical distances between collection sites while controlling for population structure. These findings indicate the relevance of the environment in shaping genetic variation in eggplant relatives over time. We detected also candidate SNPs associated with ten environmental factors. Some of these SNPs signal genes involved in pathways that help with adaptation to environmental stresses such as drought, heat, cold, salinity, pests, and diseases. </span><br></span></p>

opencc-zeroSep 2023View details →
dryad36/100

Data for: Effect of cover cropping and biosolarization on eggplant growth, soil pests, and soil nitrogen

Open the record for dataset details and reuse information.

publicDec 2025View details →
dryad36/100

Landscape genomics reveals genetic signals of environmental adaptation of African wild eggplant

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publicSep 2023View details →
zenodo32/100

Fig. 4 in Solanum insanum L. (subgenus Leptostemonum Bitter, Solanaceae), the neglected wild progenitor of eggplant (S. melongena L.): a review of taxonomy, characteristics and uses aimed at its enhancement for improved eggplant breeding

Fig. 4 Intermediate fruit morphology of an interspecific hybrid (INS1.2 X MEL 5.5) as compared to the parental lines S. insanum (INS1) and S. melongena (MEL5)

opennotspecifiedNov 2016View details →
zenodo32/100

Fig. 2 in Solanum insanum L. (subgenus Leptostemonum Bitter, Solanaceae), the neglected wild progenitor of eggplant (S. melongena L.): a review of taxonomy, characteristics and uses aimed at its enhancement for improved eggplant breeding

Fig. 2 Morphology of Solanum insanum. A Flower from wild c population in Sri Lanka (abandoned field in Anradhapura district, North Central province). B Flower from Sri Lankan accession INS2 cultivated in Spain. C Flower from accession INS3 of unknown origin cultivated in Spain. D Longitudinal section of the flower (X10) of accession INS2. E Fruit without prickly calyx (cultivated Sri Lankan accession in Spain) (accession INS2). F The fruit with prickly calyx (Sri Lankan accession INS1 cultivated in Spain). G The fruit without prickly calyx from a wild population in Sri Lanka (forest boundary in Matale district, Central province). H Longitudinal section of a fruit of accession INS1. I Microscopic view of seeds. J Stem with sharp and slightly curved prickles of accession INS1. K Prostrate form of plant from a home garden. L Adaxial surface of leaf with dark purple prickles (K, L both Anradhapura district, North Central province, Sri Lanka). (Color figure online)

opennotspecifiedNov 2016View details →
zenodo32/100

Fig. 3 in Solanum insanum L. (subgenus Leptostemonum Bitter, Solanaceae), the neglected wild progenitor of eggplant (S. melongena L.): a review of taxonomy, characteristics and uses aimed at its enhancement for improved eggplant breeding

Fig. 3 Geographical distribution of Solanum insanum L. Apparent large gaps in the distribution of this very common species are due to a variety of factors. Among them are (1) our not having seen many local herbaria in India or Myanmar, (2) the lack of specificity in localities in many early collections from India (see Endersby 2008), and (3) possible collecting deficit, especially in Myanmar and Sumatra

opennotspecifiedNov 2016View details →
zenodo32/100

Fig. 1 in Solanum insanum L. (subgenus Leptostemonum Bitter, Solanaceae), the neglected wild progenitor of eggplant (S. melongena L.): a review of taxonomy, characteristics and uses aimed at its enhancement for improved eggplant breeding

Fig. 1 Morphology of Solanum insanum. A Branch with prickles and mature leaves. B Hermaphroditic flower. C Mature fruit with prickly calyx. Drawn in the field from a weedy plant in Anradhapura district, North Central province, Sri Lanka. Illustration by I. Peabotuwage

opennotspecifiedNov 2016View details →
dryad32/100

Data from: Field performance of Bt eggplants (Solanum melongena L.) in the Philippines: Cry1Ac expression and control of the eggplant fruit and shoot borer (Leucinodes orbonalis Guenée)

Plants expressing Cry proteins from the bacterium, Bacillus thuringiensis (Bt), have become a major tactic for controlling insect pests in maize and cotton globally. However, there are few Bt vegetable crops. Eggplant (Solanum melongena) is a popular vegetable grown throughout Asia that is heavily treated with insecticides to control the eggplant fruit and shoot borer, Leucinodes orbonalis (EFSB). Herein we provide the first publicly available data on field performance in Asia of eggplant engineered to produce the Cry1Ac protein. Replicated field trials with five Bt eggplant open-pollinated (OP) lines from transformation event EE-1 and their non-Bt comparators were conducted over three cropping seasons in the Philippines from 2010–2012. Field trials documented levels of Cry1Ac protein expressed in plants and evaluated their efficacy against the primary target pest, EFSB. Cry1Ac concentrations ranged from 0.75–24.7 ppm dry weight with the highest in the terminal leaves (or shoots) and the lowest in the roots. Cry1Ac levels significantly increased from the vegetative to the reproductive stage. Bt eggplant lines demonstrated excellent control of EFSB. Pairwise analysis of means detected highly significant differences between Bt eggplant lines and their non-Bt comparators for all field efficacy parameters tested. Bt eggplant lines demonstrated high levels of control of EFSB shoot damage (98.6–100%) and fruit damage (98.1–99.7%) and reduced EFSB larval infestation (95.8–99.3%) under the most severe pest pressure during trial 2. Moths that emerged from larvae collected from Bt plants in the field and reared in their Bt eggplant hosts did not produce viable eggs or offspring. These results demonstrate that Bt eggplant lines containing Cry1Ac event EE-1 provide outstanding control of EFSB and can dramatically reduce the need for conventional insecticides.

opencc-zeroDec 2015View details →
zenodo32/100

FIGURE 3. a–g in Alternaria guilanica sp. nov., a new fungal pathogen causing leaf spot and blight on eggplant in Iran

FIGURE 3. a–g. Symptoms formed on eggplant leaves 7–10 days after inoculation in greenhouse conditions (a, b: strain IRAN 4220C; c–e: strain IRAN 4222C; f, g: strain IRAN 4221C) h. Control treatment.

opennotspecifiedSep 2021View details →
zenodo32/100

FIGURE 1 in Alternaria guilanica sp. nov., a new fungal pathogen causing leaf spot and blight on eggplant in Iran

FIGURE 1. Phylogenetic tree generated from Bayesian Inference (BI) based on the combined dataset of ITS-rDNA, GAPDH, RPB2, TEF1-α and Alt a 1 for 44 Alternaria strains. The Bayesian posterior probabilities (&gt;0.75) and RAxML Maximum likelihood and Maximum parsimony bootstrap values (&gt;50%) are given at the nodes (PP/ML/MP). The tree was rooted to A. gypsophilae CBS 107.41 and A. vaccariae CBS 116533 (Alternaria sect. Gypsophilae) and the newly identified strains are in bold.

opennotspecifiedSep 2021View details →
dryad32/100

Data from: Assessing potential impact of Bt eggplants on non-target arthropods in the Philippines

Open the record for dataset details and reuse information.

publicOct 2017View details →
dryad32/100

Data from: Field performance of Bt eggplants (Solanum melongena L.) in the Philippines: Cry1Ac expression and control of the eggplant fruit and shoot borer (Leucinodes orbonalis Guenée)

Open the record for dataset details and reuse information.

publicJun 2017View details →
dryad32/100

Data from: Bt eggplant (Solanum melongena L.) in Bangladesh: Fruit production and control of eggplant fruit and shoot borer (Leucinodes orbonalis Guenee), effects on non-target arthropods and economic returns

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publicNov 2019View details →
dryad28/100

Data from: Genetic diversity and population structure of wild/weedy eggplant (Solanum insanum L., Solanaceae) in southern India: implications for conservation

[No abstract entered]

opencc-zeroDec 2014View details →
zenodo28/100

Fig. 1 in Crop diversification for sustainable insect pest management in eggplant (Solanales: Solanaceae)

Fig. 1. Total ion current (TIC) mode chromatographic plot of coriander leaf volatiles sampled and analyzed by the thermal desorption (TD) technique.

opencc-by-4.0Mar 2015View details →
zenodo28/100

Figure 3 from: Knapp S, Vorontsova M (2012) A new species of Solanum (Solanaceae) from South Africa related to the cultivated eggplant. PhytoKeys 8: 1-11. https://doi.org/10.3897/phytokeys.8.2462

Figure 3 - Distribution of Solanum umtuma (black circles) and its putative sister species Solanum linnaeanum (white circles) in southern Africa (specimen details for Solanum linnaeanum can be found on the Solanaceae Source website, http://www.solanaceaesource.org).

opencc-by-4.0Dec 2011View details →
zenodo28/100

Figure 1 from: Knapp S, Vorontsova M (2012) A new species of Solanum (Solanaceae) from South Africa related to the cultivated eggplant. PhytoKeys 8: 1-11. https://doi.org/10.3897/phytokeys.8.2462

Figure 1 - Solanum umtuma. A Habit with pronounced secondary leaf lobes and sparse prickles B Habit with few secondary leaf lobes and dense prickles C Calyx of a long-styled flower at anthesis D Fruiting branch E Porrect stellate trichome from the adaxial surface of a leaf. Scale bar: A, B, C = 3 cm; C = 1.5 cm; E = 0.5 mm. A, E from Gerrard 295; B-D from Arnold 35934. Drawn by Lucy T. Smith.

opencc-by-4.0Dec 2011View details →

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International Brain Laboratory public data

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