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323 results for “berries”
Fig. 5 in Morphometric Analysis Of Trianchoratus Price & Berry, 1966 (Monogenea: Heteronchocleidinae) From Channa Spp. (Osteichthyes: Channidae) Of Peninsular Malaysia
Fig. 5. Fisher's linear discriminant analysis plots of the first three LD functions, which account for 65%, 21% and 14% of the total variation, respectively. Indicators: Trianchoratus malayensis (-); T. pahangensis (+); T. ophicephali (o); T. longianchoratus (l).
Fig. 8 in Morphometric Analysis Of Trianchoratus Price & Berry, 1966 (Monogenea: Heteronchocleidinae) From Channa Spp. (Osteichthyes: Channidae) Of Peninsular Malaysia
Fig. 8. PCA plot of Trianchoratus ophicephali with geographical origin of data indicated. The horizontal and vertical barplots indicate one-dimensional summary of the PC axes.
Data for: Predicting berry plant habitat under climate change in Bristol Bay, AK
<p>Aim: Climate change is altering suitable habitat distributions of many species in high latitudes. Fleshy fruit-producing plants (hereafter "berry plants"), important in arctic food webs and as subsistence resources for human communities, may be impacted, but their response to a warming and increasingly variable climate at a landscape scale has not yet been examined. Here, we identified influential environmental determinants of berry plant distribution and produced predictions on how climate change might shift these distributions.</p> <p>Location: Bristol Bay and Togiak NRCS Survey Areas, Alaska.</p> <p>Methods: We built species distribution models using the Random Forests algorithm to identify key characteristics and predict the spatial distribution of habitats suitable for five berry plant species: <em>Vaccinium uliginosum</em> L., <em>Empetrum nigrum</em> L., <em>Rubus chamaemorus</em> L., <em>Vaccinium vitis-idaea</em> L., and <em>Viburnum edule</em> (Michx.) Raf. Then, we used future climate projections (2081-2100; representative concentration pathways 4.5, 6.0, & 8.5) to predict shifts in species' suitable habitat distributions based on future climate conditions.</p> <p>Results: The predicted amount and spatial patterns of suitable habitat for the current time period were variable among species, consistent with species' diverse life history attributes and habitat preferences. Future climate models predicted both positive and negative changes to suitable habitat probability for all species; future binary classification maps predicted net declines in suitable habitat area for all species and climate scenarios tested. Models identified elevation, soil characteristics, and January and July temperatures as important drivers of suitable habitat distributions.</p> <p>Main conclusions: Our work contributes to understanding the response of important berry plant species to climate change at a landscape scale. Shifting and retracting distributions may alter where communities have access to harvesting areas, suggesting that access to these resources may become restricted in the future. Our prediction maps may help inform climate adaptation planning as communities anticipate shifting access to harvesting locations.</p>
Data of the paper "Combining Blue Light and Yellow Curcumin to Obtain a "Green" Tool for Berry Preservation against Bacterial Contamination: A Preliminary Investigation" by I Stura et al.
<p>This file contains the data of three experiments on berries' preservation by a coating of curcumin+beta-cyclodestrin.</p> <p>Microbiological data of the three experiments are summarized (number of colonies). The measures are given for each berry's type at T0, after 24 and 48 hours. We considered both smoothed berries and only washing water as starting samples.</p>
Figure 4 in Pathway Analysis: Likelihood of Coffee Berry Borer (Hypothenemus hampei Ferrari) Introduction into the Hawaiian Islands by Air Passenger Travel
Figure 4. Probability for the estimated annual passenger entries with CBB-infested materials: (a) to Hawaii from CBB-occurring countries; (b) between Hawaii island and Oahu; (c) between Oahu and Maui; (d) between Oahu and Kauai; (e) between Hawaii island and Maui; (f) between Maui and Kauai; (g) between Hawaii island and Kauai; (h) between Oahu and Lanai.
Figure 1 in Pathway Analysis: Likelihood of Coffee Berry Borer (Hypothenemus hampei Ferrari) Introduction into the Hawaiian Islands by Air Passenger Travel
Figure 1. World coffee production with CBB world distribution: a) 2019 coffee produc- tion (FAO 2020); b) CBB distribution by introduction year (Vega et al. 2015).
Figure 2 in Pathway Analysis: Likelihood of Coffee Berry Borer (Hypothenemus hampei Ferrari) Introduction into the Hawaiian Islands by Air Passenger Travel
Figure 2. Number of months per year with optimal temperature conditions for CBB growth. The optimal temperature conditions were determined by evaluating the area where daily minimum temperature was above 18°C and daily maximum temperature was below 30°C.
Figure 3 in Pathway Analysis: Likelihood of Coffee Berry Borer (Hypothenemus hampei Ferrari) Introduction into the Hawaiian Islands by Air Passenger Travel
Figure 3. Mean annual number of air passengers traveling between the Hawaiian Islands. Dispersal pathways are shown for those islands that are confirmed to have coffee berry borer. Thicker blue lines indicate higher numbers of passengers.
Figure 1 in Comparison of Sampling Intensity to Estimate Infestations of Coffee Berry Borer on Hawaii
Figure 1. Mean proportion of infested berries ± SEM estimated by counting berries using three sampling intensities. The data are averages from four farms on Hawaii island.
Data from: Topological transitions of the generalized Pancharatnam-Berry phase
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Data for: Predicting berry plant habitat under climate change in Bristol Bay, AK
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Sterculia cf kayae P.E. Berry. from Colombia collected by A. Camargo, E. Álvarez, F. Toro #64
<p><strong>File Name</strong>: <span>TOLI-23236-ZAR-05-50.jpg</span></p> <p><strong>CÓDIGO FOTO</strong>: <span>TOLI-23236-ZAR-05-50-</span></p> <p><strong>Fotografía</strong>: <span>SI</span></p> <p><strong>Nº TOLI</strong>: <span>TOLI-23236</span></p> <p><strong>PARCELA</strong>: <span>ZAR-05</span></p> <p><strong>CÓDIGO</strong>: <span>50</span></p> <p><strong>Nº COLECTA</strong>: <span>64</span></p> <p><strong>NUEVOS COLECTORES</strong>: <span>Alejandro Camargo, Felipe Toro & Esteban Alvarez</span></p> <p><strong>COLECTORES</strong>: <span>A. Camargo, E. Álvarez, F. Toro</span></p> <p><strong>Nº MUESTRAS MONTADAS</strong>: <span>2</span></p> <p><strong>Homologación</strong>: <span>No homologado</span></p> <p><strong>Nueva fecha del evento </strong>: <span>30/11/2018.</span></p> <p><strong>Fecha del evento</strong>: <span>15/10/2006.</span></p> <p><strong>Proyecto </strong>: <span>Recursos Botánicos Disponibles en Línea (BRAVO) para la flora Colombiana</span></p> <p><strong>Hábitat</strong>: <span>Bosque húmedo tropical (bh-T)</span></p> <p><strong>Comentario del evento</strong>: <span>Bosque de tierra firme</span></p> <p><strong>Continente</strong>: <span>SA</span></p> <p><strong>Pais</strong>: <span>Colombia</span></p> <p><strong>Estado/Provincia</strong>: <span>Amazonas</span></p> <p><strong>Municipio</strong>: <span>Leticia</span></p> <p><strong>Localidad</strong>: <span>Resguardo Indígena Ticuna-Huitoto Km 6-11.</span></p> <p><strong>Elevación minima en metros</strong>: <span>200</span></p> <p><strong>Elevación maxima en metros</strong>: <span>300</span></p> <p><strong>Latitud</strong>: <span>-4.004</span></p> <p><strong>Longitud original</strong>: <span>-69.896</span></p> <p><strong>datum geodésico</strong>: <span>WGS 84</span></p> <p><strong>Latitud decimal</strong>: <span>-4.004</span></p> <p><strong>Longitud decimal</strong>: <span>-69.896</span></p> <p><strong>Identificado por</strong>: <span>Diego Suescún</span></p> <p><strong>Fecha de identificación</strong>: <span>15/02/2019.</span></p> <p><strong>Nombre cientifico</strong>: <span>Sterculia cf kayae P.E. Berry.</span></p> <p><strong>Reino</strong>: <span>Plantae</span></p> <p><strong>Filo</strong>: <span>Magnoliophyta</span></p> <p><strong>Clase</strong>: <span>Equisetopsida</span></p> <p><strong>Orden</strong>: <span>Malvales</span></p> <p><strong>Familia nueva</strong>: <span>Malvaceae</span></p> <p><strong>Género nuevo</strong>: <span>Sterculia</span></p> <p><strong>especie nueva</strong>: <span>kayae</span></p> <p><strong>Autoría del nombre científico</strong>: <span>P.E. Berry.</span></p> <p><strong></strong>: <span>Malvaceae</span></p> <p><strong>genero herbario</strong>: <span>Sterculia</span></p> <p><strong>especie herbario</strong>: <span>kayae</span></p> <p><strong>Especie de herbario para TNRS</strong>: <span>Sterculia kayae</span></p> <p><strong>Especie corregida herbario y desde TNRS</strong>: <span>Sterculia kayae</span></p> <p><strong>Familia corregida desde TNRS</strong>: <span>Malvaceae</span></p> <p><strong></strong>: <span>2344</span></p>
Sterculia cf kayae P.E. Berry. from Colombia collected by F. Toro, E. Álvarez, A. Camargo #200
<p><strong>File Name</strong>: <span>TOLI-23233-ZAR-05-244.jpg</span></p> <p><strong>CÓDIGO FOTO</strong>: <span>TOLI-23233-ZAR-05-244-</span></p> <p><strong>Fotografía</strong>: <span>SI</span></p> <p><strong>Nº TOLI</strong>: <span>TOLI-23233</span></p> <p><strong>PARCELA</strong>: <span>ZAR-05</span></p> <p><strong>CÓDIGO</strong>: <span>244</span></p> <p><strong>Nº COLECTA</strong>: <span>200</span></p> <p><strong>NUEVOS COLECTORES</strong>: <span>Alejandro Camargo, Felipe Toro & Esteban Alvarez</span></p> <p><strong>COLECTORES</strong>: <span>F. Toro, E. Álvarez, A. Camargo</span></p> <p><strong>Nº MUESTRAS MONTADAS</strong>: <span>2</span></p> <p><strong>Homologación</strong>: <span>No homologado</span></p> <p><strong>Nueva fecha del evento </strong>: <span>30/11/2018.</span></p> <p><strong>Fecha del evento</strong>: <span>15/10/2006.</span></p> <p><strong>Proyecto </strong>: <span>Recursos Botánicos Disponibles en Línea (BRAVO) para la flora Colombiana</span></p> <p><strong>Hábitat</strong>: <span>Bosque húmedo tropical (bh-T)</span></p> <p><strong>Comentario del evento</strong>: <span>Bosque de tierra firme</span></p> <p><strong>Continente</strong>: <span>SA</span></p> <p><strong>Pais</strong>: <span>Colombia</span></p> <p><strong>Estado/Provincia</strong>: <span>Amazonas</span></p> <p><strong>Municipio</strong>: <span>Leticia</span></p> <p><strong>Localidad</strong>: <span>Resguardo Indígena Ticuna-Huitoto Km 6-11.</span></p> <p><strong>Elevación minima en metros</strong>: <span>200</span></p> <p><strong>Elevación maxima en metros</strong>: <span>300</span></p> <p><strong>Latitud</strong>: <span>-4.004</span></p> <p><strong>Longitud original</strong>: <span>-69.896</span></p> <p><strong>datum geodésico</strong>: <span>WGS 84</span></p> <p><strong>Latitud decimal</strong>: <span>-4.004</span></p> <p><strong>Longitud decimal</strong>: <span>-69.896</span></p> <p><strong>Identificado por</strong>: <span>Diego Suescún</span></p> <p><strong>Fecha de identificación</strong>: <span>01/02/2019.</span></p> <p><strong>Nombre cientifico</strong>: <span>Sterculia cf kayae P.E. Berry.</span></p> <p><strong>Reino</strong>: <span>Plantae</span></p> <p><strong>Filo</strong>: <span>Magnoliophyta</span></p> <p><strong>Clase</strong>: <span>Equisetopsida</span></p> <p><strong>Orden</strong>: <span>Malvales</span></p> <p><strong>Familia nueva</strong>: <span>Malvaceae</span></p> <p><strong>Género nuevo</strong>: <span>Sterculia</span></p> <p><strong>especie nueva</strong>: <span>kayae</span></p> <p><strong>Autoría del nombre científico</strong>: <span>P.E. Berry.</span></p> <p><strong></strong>: <span>Malvaceae</span></p> <p><strong>genero herbario</strong>: <span>Sterculia</span></p> <p><strong>especie herbario</strong>: <span>kayae</span></p> <p><strong>Especie de herbario para TNRS</strong>: <span>Sterculia kayae</span></p> <p><strong>Especie corregida herbario y desde TNRS</strong>: <span>Sterculia kayae</span></p> <p><strong>Familia corregida desde TNRS</strong>: <span>Malvaceae</span></p> <p><strong></strong>: <span>2341</span></p>
FIG. 1. — L in Être un ovin malade en Bas-Berry (fin XVIII - milieu XX siècle)
FIG. 1. — L'épizootie de fièvre aphteuse dans l'Indre, 1919-1921.
FIG. 4 in Être un ovin malade en Bas-Berry (fin XVIII - milieu XX siècle)
FIG. 4. — Ovin passant dans un bain d'eau de chaux (Bénion 1874: 483).
FIG. 2 in Être un ovin malade en Bas-Berry (fin XVIII - milieu XX siècle)
FIG. 2. — Évolution du nombre d'ovins dans l'Indre de 1852 à 2011.
FIG. 5 in Être un ovin malade en Bas-Berry (fin XVIII - milieu XX siècle)
FIG. 5. — Ovin saigné à la veine de la joue (Daubenton 1810: 413).
Dataset for the paper Exploring the Impact of Longitudinal Modulation on the Twisting Angle in Pancharatnam-Berry Phase-Based Waveguides
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Differentially expressed genes in berries and rachis of berry shrivel grape clusters used to prepare figures for a review
<p>Grapevine berry shrivel is a ripening disorder leading to significant economic losses in the worldwide wine and table grape industries. Sugar accumulation stops early after ripening onset accompanied with cell death in berreis and subtending pecicels and rachis finally resulting in berry shrinkage. To date, the triggers of BS remain unknown. The dataset supports figures prepared for an review which aims to summarize and critically discuss the current knowledge. Data are expressed as differentially expressed genes obtained from grape berries samples collected at six developmental stages (pre- until post-veraison) analysed with RNASeq and two pooled samples (pre- and BS symptomatic) from the rachis analyzed with a microarray study. Extracted information focus on primary metabolic processes including sugar transport and metabolism, organic acid metabolism, stress signaling and cell as well as cell wall organisation. Data are mean values of three biological represent and presented as log2 fold changes including statistical information. A meta-data sheet provides the most relevant information and references. </p>
Exploring Beneficial Properties of Haskap Berry Leaf Compounds for Gut Health Enhancement
<p>Data and the publication to which they are related</p>
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