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435 results for “Minnesota”
Figure 99 from: Houghton D (2012) Biological diversity of the Minnesota caddisflies (Insecta, Trichoptera). ZooKeys 189: 1-389. https://doi.org/10.3897/zookeys.189.2043
Figure 99 - Ochrotrichia tarsalis A total specimens collected and all known collecting localities (Figure 4) B monthly adult abundance (1980s to present) C habitat preference (1980s to present) (Table 1) D male genital capsule E male tergum X (dorsal view).
Figure 98 from: Houghton D (2012) Biological diversity of the Minnesota caddisflies (Insecta, Trichoptera). ZooKeys 189: 1-389. https://doi.org/10.3897/zookeys.189.2043
Figure 98 - Ochrotrichia spinosa A total specimens collected and all known collecting localities (Figure 4) B monthly adult abundance (1980s to present) C habitat preference (1980s to present) (Table 1) D male genital capsule E male genital capsule (ventral view).
Figure 287 from: Houghton D (2012) Biological diversity of the Minnesota caddisflies (Insecta, Trichoptera). ZooKeys 189: 1-389. https://doi.org/10.3897/zookeys.189.2043
Figure 287 - Neophylax concinnus A total specimens collected and all known collecting localities (Figure 4) B monthly adult abundance (1980s to present) C habitat preference (1980s to present) (Table 1) D male genital capsule (ventral view).
Figure 47 from: Houghton D (2012) Biological diversity of the Minnesota caddisflies (Insecta, Trichoptera). ZooKeys 189: 1-389. https://doi.org/10.3897/zookeys.189.2043
Figure 47 - Hydropsyche bidens A total specimens collected and all known collecting localities (Figure 4) B monthly adult abundance (1980s to present) C habitat preference (1980s to present) (Table 1) D male genital capsule E phallus F apical tip of phallus (dorsal view).
Seasonal NDVI data for a biodiversity and consumer removal experiment at the University of Minnesota's Cedar Creek Ecosystem Science Reserve (2009 - 2016)
<p><span><span><span><span><span><span><span><span><span><span><span>Plant biodiversity and consumers (herbivores, pathogens, and mutualists) are important mediators of energy and carbon fluxes in grassland ecosystems. Although the role of consumers and plant diversity in controlling peak-season biomass production has been characterized, knowledge of their roles in within-season variation of energy and carbon flux remains poorly understood. Here we measure variation in consumer and plant diversity control of plant biomass production throughout the growing season and their impact on plant biomass phenology (timing of maximum biomass). To do this, we analyzed 5 years of biweekly, non-destructive biomass measures in an experiment manipulating plant species richness and three consumer groups (foliar fungi, soil fungi, arthropods, or all groups via pesticides). We found that plant biomass differences between high diversity plots and monocultures were greatest early in the growing season, whereas the foliar fungicide and insecticide treatments increased biomass most late in the season. The impact of foliar fungi and arthropods on biomass production also varied with plant diversity, with the greatest effects of foliar fungicide in high diversity plots whereas insecticide impacts were greatest in monocultures. Finally, more diverse plots and plots containing foliar fungi reached maximum biomass earlier than monocultures and plots treated with foliar fungicide. Taken together, these results highlight the significant and interactive roles that biodiversity and consumers play in dynamically regulating the production of plant biomass through the growing season, controlling the flow of energy and carbon to support the microbial and animal communities that rely on grassland productivity.</span></span></span></span></span></span></span></span></span></span></span></p>
Figure 1 in Millipeds from the eastern Dakotas and western Minnesota, USA, with an account of Pseudopolydesmus serratus (Say, 1821) (Polydesmida: Polydesmidae); first published records from six states and the District of Columbia
Figure 1. Occurrences of indigenous, non-parajulid diplopods in the eastern Dakotas and western Minnesota. Square, Narceus americanus; Triangles, Abacion texense; Diamonds, Underwoodia iuloides; Dots, Pleuroloma flavipes; Stars, Pseudopolydesmus serratus. MAN, Manitoba, Canada; MN, Minnesota; ND, North Dakota; SD, South Dakota.
Predictive ability of perennial ryegrass spaced-plant nurseries for turfgrass and seed production swards in Minnesota
<p>Turf-type perennial ryegrass (<i>Lolium perenne</i> L.) success depends both on adequate turfgrass quality and economic seed yield. In most breeding programs, spaced plants are the initial unit of selection in which observations of related individuals dictate selections of superior germplasm for further testing. As such, spaced plants must be predictive of both seed production and turfgrass growing environments. This study investigated the effectiveness of both standard (3 plants m<sup>-2</sup>) and competitive (23 plants m<sup>-2</sup>) spaced-plant nurseries as selection environments with respect to two sward environments as well as employed a novel image analysis technique for several key traits. Seed production, turfgrass, and the two spaced-plant growing environments were tested at two locations in Minnesota. Turfgrass quality traits were measured in 2017 and 2018 and seed production traits were measured in 2018. Automated image analysis was able to predict the traditional visual scoring values at both locations for crown rust severity (r<sub>p</sub> > 0.79, P < 0.001), winter injury (r<sub>p</sub> > 0.89, P < 0.001), and texture (r<sub>p</sub> > 0.88, P < 0.001). Increasing competition in between spaced plants altered plant phenotype and improved accuracy for vegetative biomass, crown rust severity, seed yield, and at one location, turfgrass quality. There was no benefit of increasing competition for several traits such as genetic color, fertile tillers, and spikelet number. While the competitive design was not useful for all traits, from a feasibility standpoint the competitive design took up less space and often made measurements and observations much easier for bunch-type grasses.</p>
Figure 286 from: Houghton D (2012) Biological diversity of the Minnesota caddisflies (Insecta, Trichoptera). ZooKeys 189: 1-389. https://doi.org/10.3897/zookeys.189.2043
Figure 286 - Agarodes distinctus A total specimens collected and all known collecting localities (Figure 4) B monthly adult abundance (1980s to present) C habitat preference (1980s to present) (Table 1) D male genital capsule E phallus.
Figure 282 from: Houghton D (2012) Biological diversity of the Minnesota caddisflies (Insecta, Trichoptera). ZooKeys 189: 1-389. https://doi.org/10.3897/zookeys.189.2043
Figure 282 - Psychomyia flavida A total specimens collected and all known collecting localities (Figure 4) B monthly adult abundance (1980s to present) C habitat preference (1980s to present) (Table 1) D male genital capsule E phallus F female genital capsule (ventral view).
Figure 281 from: Houghton D (2012) Biological diversity of the Minnesota caddisflies (Insecta, Trichoptera). ZooKeys 189: 1-389. https://doi.org/10.3897/zookeys.189.2043
Figure 281 - Lype diversa A total specimens collected and all known collecting localities (Figure 4) B monthly adult abundance (1980s to present) C habitat preference (1980s to present) (Table 1) D male genital capsule E phallus F female genital capsule (ventral view).
Figure 279 from: Houghton D (2012) Biological diversity of the Minnesota caddisflies (Insecta, Trichoptera). ZooKeys 189: 1-389. https://doi.org/10.3897/zookeys.189.2043
Figure 279 - Polycentropus remotus A total specimens collected and all known collecting localities (Figure 4) B monthly adult abundance (1980s to present) C habitat preference (1980s to present) (Table 1) D male genital capsule E phallus.
Figure 278 from: Houghton D (2012) Biological diversity of the Minnesota caddisflies (Insecta, Trichoptera). ZooKeys 189: 1-389. https://doi.org/10.3897/zookeys.189.2043
Figure 278 - Polycentropus picicornis A total specimens collected and all known collecting localities (Figure 4) B monthly adult abundance (1980s to present) C habitat preference (1980s to present) (Table 1) D male genital capsule E phallus.
Figure 275 from: Houghton D (2012) Biological diversity of the Minnesota caddisflies (Insecta, Trichoptera). ZooKeys 189: 1-389. https://doi.org/10.3897/zookeys.189.2043
Figure 275 - Polycentropus melanae A total specimens collected and all known collecting localities (Figure 4) B monthly adult abundance (1980s to present) C habitat preference (1980s to present) (Table 1) D male genital capsule E phallus.
Figure 274 from: Houghton D (2012) Biological diversity of the Minnesota caddisflies (Insecta, Trichoptera). ZooKeys 189: 1-389. https://doi.org/10.3897/zookeys.189.2043
Figure 274 - Polycentropus interruptus A total specimens collected and all known collecting localities (Figure 4) B monthly adult abundance (1980s to present) C habitat preference (1980s to present) (Table 1) D male genital capsule E phallus.
Figure 280 from: Houghton D (2012) Biological diversity of the Minnesota caddisflies (Insecta, Trichoptera). ZooKeys 189: 1-389. https://doi.org/10.3897/zookeys.189.2043
Figure 280 - Polycentropus weedi A total specimens collected and all known collecting localities (Figure 4) B monthly adult abundance (1980s to present) C habitat preference (1980s to present) (Table 1) D male genital capsule E phallus.
Figure 27 from: Houghton D (2012) Biological diversity of the Minnesota caddisflies (Insecta, Trichoptera). ZooKeys 189: 1-389. https://doi.org/10.3897/zookeys.189.2043
Figure 27 - Protoptila erotica A total specimens collected and all known collecting localities (Figure 4) B monthly adult abundance (1980s to present) C habitat preference (1980s to present) (Table 1) D male genital capsule E phallus.
Figure 268 from: Houghton D (2012) Biological diversity of the Minnesota caddisflies (Insecta, Trichoptera). ZooKeys 189: 1-389. https://doi.org/10.3897/zookeys.189.2043
Figure 268 - Polycentropus clinei A total specimens collected and all known collecting localities (Figure 4) B monthly adult abundance (1980s to present) C habitat preference (1980s to present) (Table 1) D male genital capsule E phallus.
Figure 266 from: Houghton D (2012) Biological diversity of the Minnesota caddisflies (Insecta, Trichoptera). ZooKeys 189: 1-389. https://doi.org/10.3897/zookeys.189.2043
Figure 266 - Polycentropus centralis A total specimens collected and all known collecting localities (Figure 4) B monthly adult abundance (1980s to present) C habitat preference (1980s to present) (Table 1) D male genital capsule E phallus.
Figure 28 from: Houghton D (2012) Biological diversity of the Minnesota caddisflies (Insecta, Trichoptera). ZooKeys 189: 1-389. https://doi.org/10.3897/zookeys.189.2043
Figure 28 - Protopila maculata A total specimens collected and all known collecting localities (Figure 4) B monthly adult abundance (1980s to present) C habitat preference (1980s to present) (Table 1) D male genital capsule E phallus.
Figure 264 from: Houghton D (2012) Biological diversity of the Minnesota caddisflies (Insecta, Trichoptera). ZooKeys 189: 1-389. https://doi.org/10.3897/zookeys.189.2043
Figure 264 - Polycentropus albipunctus A total specimens collected and all known collecting localities (Figure 4) B monthly adult abundance (1980s to present) C habitat preference (1980s to present) (Table 1) D male genital capsule E phallus.
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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.
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.