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104 results for “Phaseolus”
Phaseolus polystachios (Fabaceae) - inflorescence - frontal view of flower
Image of Phaseolus polystachios (Fabaceae) - inflorescence - frontal view of flower
Phaseolus polystachios (Fabaceae) - inflorescence - lateral view of flower
Image of Phaseolus polystachios (Fabaceae) - inflorescence - lateral view of flower
Phaseolus polystachios (Fabaceae) - inflorescence - whole - unspecified
Image of Phaseolus polystachios (Fabaceae) - inflorescence - whole - unspecified
Phaseolus polystachios (Fabaceae) - inflorescence - ventral view of flower + perianth
Image of Phaseolus polystachios (Fabaceae) - inflorescence - ventral view of flower + perianth
Phaseolus polystachios (Fabaceae) - leaf - basal or on lower stem
Image of Phaseolus polystachios (Fabaceae) - leaf - basal or on lower stem
Phaseolus polystachios (Fabaceae) - inflorescence - whole - unspecified
Image of Phaseolus polystachios (Fabaceae) - inflorescence - whole - unspecified
Phaseolus polystachios (Fabaceae) - inflorescence - whole - unspecified
Image of Phaseolus polystachios (Fabaceae) - inflorescence - whole - unspecified
Phaseolus polystachios (Fabaceae) - inflorescence - frontal view of flower
Image of Phaseolus polystachios (Fabaceae) - inflorescence - frontal view of flower
Phaseolus polystachios (Fabaceae) - fruit - lateral or general close-up
Image of Phaseolus polystachios (Fabaceae) - fruit - lateral or general close-up
Data for: Morphological and molecular characterization of variation in common bean (Phaseolus vulgaris L.) germplasm from Azad Jammu and Kashmir, Pakistan
<p><em>Phaseolus vulgaris</em>, an essential food and source of protein, is cultivated across the world. This study was carried out to investigate the diversity and population structure of 34 P. vulgaris landrace accessions collected from the Azad Jammu and Kashmir (AJ&K) regions of Pakistan. The samples were analyzed both morphologically and using genetic variation identified through RNA sequencing. Our results indicated that most genetic variation occurs among local accessions, with little genetic variation occurring between geographical regions. In addition, the accessions fell into two major genetic groups. Morphological analysis revealed that these two genetic groups differ in a number of quantitative traits, including seed length, seed width, and seed weight. One accession, DUD-11, appears to be a mixture of the two major groups genetically as well as morphologically. Among the other accessions, DUD-8, RWK-2, and NGD-1 depicted particularly high seed weight along with higher seed length, seed width, and seed yield per plant. We suggest focusing on these accessions in future breeding programs. More generally, our results provide baseline data that will be useful for crop improvement and effective cultivation practices in Pakistan.</p>
Cultivating Flavor: Unveiling the Impact of Lactobacillus Delbrueckii Subsp. Bulgaricus and Bean Sprouts (Phaseolus Vulgarison) on Fermentation Arabica and Robusta Coffee
<p>This material has presented on 2nd International Conference on Advance Research in Agriculture and Food 2023 in October 25, 2023.</p>
FIGURE 2 in A new species of Phaseolus (Leguminosae, Papilionoideae) sister to Phaseolus vulgaris, the common bean
FIGURE 2. Illustration of Phaseolus debouckii from Debouck 2881, 2889, and A. Delgado Salinas 2103. A. Vine. B. Flower showing corolla and extended bracteoles, eight-veined. C. Standard. D. Keel petals. E. Wing petal. F. Gynoecium. G. Style (distal portion), showing pollen brush, and stigma (introrse). H. Vexillary stamen with appendage near the base. I. Staminal tube with 9 stamens distally coiled. J. Calyx with bracteoles. K. Pods with elastically dehiscent valves. L. Seed. Illustration by Albino Luna
FIGURE 1 in A new species of Phaseolus (Leguminosae, Papilionoideae) sister to Phaseolus vulgaris, the common bean
FIGURE 1. Distribution, habitat and flower and fruit of Phaseolus debouckii. A. Distribution map of P. debouckii in Ecuador and Peru based on MEXU herbarium specimens and CIAT seed collections; coloured dots correspond to the georeferenced herbarium and seed collections used in this study. B. Habitat, dry forest in Cajamarca, Peru. C. Flower D. Pods. E. Plants on shrubs with dehiscent pods. Map by Carlos Gómez Hinostrosa; C. photo by Ramón Pelagio Flores; B, D, E photos by Daniel G. Debouck.
FIGURE 3 in A new species of Phaseolus (Leguminosae, Papilionoideae) sister to Phaseolus vulgaris, the common bean
FIGURE 3. SEM images of Phaseolus debouckii. A. Bracteoles B. Detail of bracteole surface showing glandular trichomes. C. Style (distal portion) showing pollen brush (arrow) and introrse stigma. D. Stigma with surrounding cilia and pollen grains. E. Pollen triporate. F. Detail of ovary covered with dense straight and minute glandular trichomes. Scale bars at bottom of images. SEM photos by Berenit Mendoza Garfias.
Demography of Tetranychus urticae (Acari: Tetranychidae) on Phaseolus vulgaris (Fabales: Fabaceae) under Different Nitrogen Fertilization Regimes with Estimations of Confidence Intervals
<p>The life table raw data and output files:</p> <p>In order to study the effect of nitrogen fertilization on the population growth rate of two-spotted spider mite, <em>Tetranychus urticae</em> Koch (Acari: Tetranychidae), life table data on common bean were collected. Bean plants were treated with four nitrogen levels (0, 75, 150, and 225 kg N ha<sup>-1</sup>). Data were analyzed based on the age-stage, two-sex life table program.</p>
Fig. 3 in Diurnal accumulation of K -dependent L-asparaginase in leaf of common bean (Phaseolus vulgaris L.)
Fig. 3. Two-dimensional gel electrophoresis and immunoblotting of asparaginase in developing leaves. Arrows indicate the polypeptide precursor and α-subunit. The experimental pI of the α subunit was measured as 4.87.
Fig. 2 in Diurnal accumulation of K -dependent L-asparaginase in leaf of common bean (Phaseolus vulgaris L.)
Fig. 2. Diurnal accumulation of asparaginase and related metabolites in developing leaves. (A) Immunoblot and corresponding SDS-PAGE. The top band corresponds to the polypeptide precursor and lower band to the α-subunit. Position of molecular wt markers is indicated on the left; (B) asparaginase activity. Average ± s.d.; n = 3. (C) Concentration of asparagine (Asn), aspartate (Asp) and NH+ in leaf tissue. Average ± s.d.; n = 3.
Fig. 4 in Diurnal accumulation of K -dependent L-asparaginase in leaf of common bean (Phaseolus vulgaris L.)
Fig. 4. Analysis of circadian regulation of asparaginase protein. Plants were exposed to a 16 h light and 8 h dark cycle followed by exposure to continuous light. Leaves were sampled at the indicated times and asparaginase detected by immunoblotting.
Fig. 1 in Diurnal accumulation of K -dependent L-asparaginase in leaf of common bean (Phaseolus vulgaris L.)
Fig. 1. RNA-Seq expression profile of PvASPG1 and PvASPG2. Expression value is given as Z-score (Severin et al., 2010). Samples are grouped by tissue. Data are from O'Rourke et al. (2014) (see Supplementary Table S1).
Fig. 5 in Unique localization of jasmonic acid-related compounds in developing Phaseolus vulgaris L. (common bean) seeds revealed through desorption electrospray ionization-mass spectrometry imaging
Fig. 5. DESI-MS/MSI of OPDA and OPC-8 in the developing Phaseolus vulgaris seeds. (a) Optical image of the seed section for OPDA analysis. (b) MS/MS spectrum of precursor ion at m/z 291.1966 ± 1 Da obtained at the target enhanced mode for m/z 165.1. (c) Ion image at m/z 165.1300. (d) Optical image of the seed section for OPC-8:0 analysis. (e) MS/MS spectrum of precursor ion at m/z 293.2122 ± 1 Da obtained at the target enhanced mode for m/z 225.1. Ion images at m/z (f) 223.1400 and (g) 231.2142. Scale bar = 2 mm. Compound names are defined in Table 1.
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