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13,113 results for “Resistivity”
Fig. 3 in A rapid screening method for resistance to Anthonomus eugenii (Coleoptera: Curculionidae) in Capsicum (Solanaceae) spp. plants
Fig. 3. Mortality (%) of Anthonomus eugenii adults per micro-cage during 21 consecutive d afer infestation (DAI) in pepper leaves from wild and landrace populations and commercial cultivars. Bars are average percentage mortality. Comparisons made with Mann-Whitney test (P ≤ 0.05). Different letters in the columns indicate significant differences. Error bars indicate the standard error.
Fig. 1 in Feeding behavior of Aphis glycines (Hemiptera: Aphididae) on soybeans exhibiting antibiosis, antixenosis, and tolerance resistance
Fig. 1. Mean number of potential drops by Aphis glycines on soybean genotypes for a 15 h (900 min) period.
Fig. 2 in Use of chemical inducers as a resistance trigger in Brachiaria grasses and sugarcane
Fig. 2. Mean (± SE) of dry matter in Brachiaria shoots in relation to cultivar (A), inducer (B), and the interaction between cultivar and inducer in Brachiaria roots (C), in sugarcane shoots in relation to the interaction between cultivar and inducer (D), and in sugarcane roots in relation to cultivar (E) and inducer (F). Bars with the same lowercase letter comparing cultivars and bars with uppercase letters comparing inducers do not differ by the Scott Knott test (P <0.05).
Fig. 1 in Use of chemical inducers as a resistance trigger in Brachiaria grasses and sugarcane
Fig. 1. Mean (± SE) of total phenolic compounds in Brachiaria shoots in relation to cultivar (A), inducer (B), and the interaction between cultivar and inducer in roots (C), in sugarcane shoots in relation to cultivar (D), and inducer (E), and in sugarcane roots in relation to cultivar (F) and inducer (G). Bars with the same lowercase letter comparing cultivars and bars with uppercase letters comparing inducers do not differ by the Scott Knott test (P <0.05).
Fig. 2 in Feeding behavior of Aphis glycines (Hemiptera: Aphididae) on soybeans exhibiting antibiosis, antixenosis, and tolerance resistance
Fig. 2. Mean duration of sieve element phase by Aphis glycines on soybean genotypes for a 15 h (900 min) period.
Fig. 1 in Resistance in rice to Tibraca limbativentris (Hemiptera: Pentatomidae) influenced by plant silicon content
Fig. 1. Percentage of damaged stems (PDS) in 3 rice cultivars treated with different sources of silicon. Urutaí, Goiás, Brazil. 2016. Means followed by the same capital letter (inducers) and lower case letters (cultivars) in the columns do not differ statistically from each other according to the Tukey test at 0.05% probability.
Fig. 4 in Acaricide efficacy and resistance in South Carolina tomato populations of twospotted spider mite
Fig. 4. LC50 values (± 95% confidence interval) for 7 AIs screened against a known-susceptible lab colony and 3 field-collected populations of Tetranychus urticae. When present, the dashed line indicates the amount of AI in the maximum labelled field rate. This value also is indicated in each graph by "FR=". The resistance ratio of each AI × population is written above each data point.
Fig. 1 in Acaricide efficacy and resistance in South Carolina tomato populations of twospotted spider mite
Fig. 1. Mean (± SE) spider mite (Tetranychus urticae) counts per tomato leaflet in a 2015 and 2016 acaricide efficacy trial conducted in South Carolina, USA. Arrows indicate dates of acaricide applications. Treatments with the same letter within a date are not statistically different (lsmeans P> 0.05). "ns" indicates that the overall model was not significant. The dotted line represents the action threshold for spider mites in tomato (2 per leaflet).
Fig. 2 in Acaricide efficacy and resistance in South Carolina tomato populations of twospotted spider mite
Fig. 2. Mean (± SE) cumulative mite d of Tetranychus urticae in a 2015 and 2016 acaricide efficacy trial conducted in South Carolina, USA. Arrows indicate dates of acaricide applications. Treatments with the same letter within a date are not statistically different (lsmeans P> 0.05). "ns" indicates that the overall model was not significant.
Fig. 1 in Comparison of Bemisia tabaci infestation, virus infection, and yield in conventional and transgenic Bean golden mosaic virus-resistant common bean elite lines
Fig. 1. Symptoms of virus infection on common bean plants under field situation: (A) Bean golden mosaic virus; (B) Cowpea mild mottle virus on old transgenic plants and (C) young transgenic plant; (D) symptoms of mixed infection caused by Bean golden mosaic virus and Cowpea mild mottle virus.
Figure 2 in Peptidoglycan from Immunobiotic Lactobacillus rhamnosus Improves Resistance of Infant Mice to Respiratory Syncytial Viral Infection and Secondary Pneumococcal Pneumonia
Figure 2. – Photography of a juvenile lemon shark identified as Negaprion acutidens with an estimated total length of 70 cm (Photo MI).
Figure 1 in Peptidoglycan from Immunobiotic Lactobacillus rhamnosus Improves Resistance of Infant Mice to Respiratory Syncytial Viral Infection and Secondary Pneumococcal Pneumonia
Figure 1. – The Chesterfield islands (A) lie in the Coral Sea with New Caledonia (NC) to the east and Australia (AUS) to the west. The atoll structure of the Chesterfield (B) includes a V shaped barrier reef in the South (C) where the juvenile lemon sharks were observed (arrow).
Fig. 2 in Resistance of four rose varieties to Tetranychus urticae (Acari: Tetranychidae) under greenhouse conditions
Fig. 2. Average (± SE) of the percentage of chlorophyll loss caused by the feeding of Tetranychus urticae. Varieties with different letters were significantly different (Tukey test, P <0.05).
Fig. 1 in Resistance of four rose varieties to Tetranychus urticae (Acari: Tetranychidae) under greenhouse conditions
Fig. 1. Box-plot comparing growth rate (r) of Tetranychus urticae on 4 rose varieties. Varieties with different letters were significantly different (Nemenyi test, P <0.05).
Fig. 1 in Identification of thrips species and resistance of Frankliniella occidentalis (Thysanoptera: Thripidae) to malathion, spinosad, and bifenthrin in blackberry crops
Fig. 1. Phylogenetic consensus tree resulting from Bayesian inference based on COI mitochondrial DNA partial sequences showing the relationship of 11 thrips samples collected from commercial blackberry plots in Michoacán and Jalisco, Mexico. The sample numbers correspond to Ziracuaretiro (24, 58, 8, 7, 6, 1, and 63), Tacámbaro (16), Los Reyes de Salgado (12 and 9), and Mazamitla (23). Reference sequences from the different Frankliniella occidentalis haplotypes were downloaded from GenBank.
Insights into Acinetobacter baumannii AMA205's Unprecedented Antibiotic Resistance
<p><span>The rise of antibiotic-resistant bacteria in clinical settings has become a significant global concern. Among these bacteria, <em>Acinetobacter baumannii</em> stands out due to its remarkable ability to acquire resistance genes and persist in hospital environments, leading to some of the most challenging infections. Horizontal gene transfer (HGT) plays a crucial role in the evolution of this pathogen. The <em>A. baumannii</em> AMA205 strain, belonging to sequence type ST79, was isolated from a COVID-19 patient in Argentina in 2021. This strain’s antimicrobial resistance profile is notable as it harbors multiple resistance genes, some of which had not been previously described in this species. The AmpC family β-lactamase <em>bla</em><sub>CMY-6</sub>, commonly found in Enterobacterales, had never been detected in <em>A. baumannii </em>before. Furthermore, this is the first ST79 strain known to carry the carbapenemase <em>bla</em><sub>NDM-1 </sub>gene. Other acquired resistance genes include the carbapenemase <em>bla</em><sub>OXA-23</sub>, further complicating treatment. Susceptibility testing revealed high resistance to most antibiotic families, including cefiderocol, with significant contributions from <em>bla</em><sub>CMY-6 </sub>and <em>bla</em><sub>NDM-1 </sub>genes to the cephalosporin and carbapenem resistance profiles. The <em>A. baumannii</em> AMA205 genome also contains genetic traits coding for 111 potential virulence factors, such as the iron-uptake system and biofilm-associated proteins. This study underscores <em>A. baumannii's </em>ability to acquire multiple resistance genes and highlights the need for alternative therapies and effective antimicrobial stewardship to control the spread of these highly resistant strains.</span></p>
Figure 4 in Introgression of bacterial leaf blight (BLB) resistant gene, Xa7 into MARDI elite variety, MR219 by marker assisted backcrossing (MABC) approach
Figure 4. PCR-based genetic polymorphism analysis of Xa7 gene closed linked, ID7 marker. Agarose gel profile of backcrossed progenies in 2% (w/v) of 1X TBE agarose gel. Lane L: 100bp DNA ladder. Lanes D and R represent IRBB7 and MR219 respectively. Line 1-22: (1) PB-2-91, (2) PB-2-107, (3) PB-2-156, (4) PB-2-224, (5) PB-2-234, (6) PB-2-238, (7) PB-2-258, (8) PB-2-29, (9) PB-2-77, (10) PB-2-226, (11) PC3-26-2, (12) PC-39-3, (13) PB-2-34, (14) PB-2-35, (15) PB-2-150, (16) PB-2-223, (17) PB-2-252, (18) PC-3-14-3, (19) PC-3-23-1, (20) PB-2-32, (21) PC3-5-2, (22) MR263.
Figure 3 in Introgression of bacterial leaf blight (BLB) resistant gene, Xa7 into MARDI elite variety, MR219 by marker assisted backcrossing (MABC) approach
Figure 3. Differential response of parents. (A) MR263, (B) CL2, (C) IRBB7 and (D) MR219, respectively after being inoculated with Xanthomonas oryzae pv. oryzae at 14 DAI.
Figure 2 in Introgression of bacterial leaf blight (BLB) resistant gene, Xa7 into MARDI elite variety, MR219 by marker assisted backcrossing (MABC) approach
Figure 2. Bacterial leaf blight disease progression recorded on four potential parents; IRBB7 (blue), MR219 (orange), CL2 (gray) and MR219 (yellow) from 3 to 30 days after inoculation.
Dataset of "Transient current responses of organic electrochemical transistors by vertical ionic diffusion and electrolyte resistance"
<p>This dataset supports the article </p> <p>"<span>Transient current responses of organic electrochemical transistors by vertical ionic diffusion and electrolyte resistance</span>"</p> <p> </p> <p>Raw data for the article "<span>Transient current responses of organic electrochemical transistors by vertical ionic diffusion and electrolyte resistance</span>". For further details see the readme.txt file.</p>
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
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.
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.