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1,102 results for “plant diversity”
Figure 1 from: Chen W-H, Jin X-H, Shui Y-M (2018) Rediscovery and amended descriptions of Begonia kingdon-wardii (Begoniaceae) from North Myanmar. In: Jin X-H, Shui Y-M, Tan Y-H, Kang M (Eds) Plant diversity in Southeast Asia. PhytoKeys 94: 59-64. https://doi.org/10.3897/phytokeys.94.21753
Figure 1 Holotype of Begonia kingdon-wardii Tebbitt (A) and the annotation on the holotype specimens (B).
Figure 3 from: Chen W-H, Radbouchoom S, Nguyen HQ, Nguyen HT, Nguyen KS, Shui Y-M (2018) Seven new species of Begonia (Begoniaceae) in Northern Vietnam and Southern China. In: Jin X-H, Shui Y-M, Tan Y-H, Kang M (Eds) Plant diversity in Southeast Asia. PhytoKeys 94: 65-85. https://doi.org/10.3897/phytokeys.94.23248
Figure 3 Begonia bambusetorum H.Q. Nguyen, Y.M. Shui & W.H. Chen A Habitat B Plant C View of adaxial leaf D View of abaxial leaf E Close-up of adaxial leaf F Close up of abaxial leaf G Stipule and petiole H Staminate flower, face view, side view and dorsal view I Pistillate flower, face view and side view J Fruits K Serial cross sections of ovary. (A–D photographs by Y.M. Shui; E–K by S. Radbouchoom).
Figure 3 from: Chen WH, Nguyen QH, Chen RZ, Nguyen TH, Nguyen VT, Nguyen SK, Möller M, Middleton DJ, Shui Y-M (2018) Two new species of Oreocharis (Gesneriaceae) from Fan Si Pan, the highest mountain in Vietnam. In: Jin X-H, Shui Y-M, Tan Y-H, Kang M (Eds) Plant diversity in Southeast Asia. PhytoKeys 94: 95-106. https://doi.org/10.3897/phytokeys.94.21329
Figure 3 Oreocharis grandiflora W.H.Chen, Q.H.Nguyen & Y.M.Shui, sp. nov. (all drawings based on the holotype Y.M. Shui et al. B2013-550 in KUN, drawn by Y.F. Shui) A Habit B Opened corolla showing corolla lobes and two pairs of stamens C pistil at stigma receptivity and calyx.
Figure 1a from: Eisenhauer N (2018) Aboveground-belowground interactions drive the relationship between plant diversity and ecosystem function. Research Ideas and Outcomes 4: e23688. https://doi.org/10.3897/rio.4.e23688
Figure 1a - Importance of the duration of the experiment for its outcome. <br> The effect of plant diversity on plant productivity and on the performance of decomposers increases over time. Regression between the R² of the relationship between plant diversity and plant productivity and the R² of the relationship between plant diversity and decomposer biomass/density. Data from the Jena Experiment from different years [plant productivity in 2003 – 2009; microbial biomass in 2003 – 2009 (white circles); meso- (gray circles) and macroinvertebrate densities (black circles) in 2004, 2006 and 2008].
Figure 3 from: Eisenhauer N (2018) Aboveground-belowground interactions drive the relationship between plant diversity and ecosystem function. Research Ideas and Outcomes 4: e23688. https://doi.org/10.3897/rio.4.e23688
Figure 3 - Plant diversity effects on soil microbes more pronounced at elevated [CO2]. Microbial biomass (µg Cmic g-1 soil dry mass) and basal respiration (BR; µl O2 h-1 g-1 soil dry mass) as affected by plant species richness (SR) and CO2 concentrations. Dashed lines indicate ambient CO2 levels, solid lines elevated CO2 levels (+180 ppm). SR x CO2 for Cmic: p=0.007; SR x CO2 for BR: p=0.03). Data from August 2010. Means with SE. Redrawn after Eisenhauer et al. (2013).
Figure 4 from: Eisenhauer N (2018) Aboveground-belowground interactions drive the relationship between plant diversity and ecosystem function. Research Ideas and Outcomes 4: e23688. https://doi.org/10.3897/rio.4.e23688
Figure 4 - Conceptual figure showing how global change drivers like temperature increase and drought may increase plant diversity–ecosystem function relationships.
Figure 2 from: Eisenhauer N (2018) Aboveground-belowground interactions drive the relationship between plant diversity and ecosystem function. Research Ideas and Outcomes 4: e23688. https://doi.org/10.3897/rio.4.e23688
Figure 2 - Conceptual scheme of how aboveground–belowground interactions may influence the positive relationship between plant diversity and ecosystem functioning. The left part of the scheme illustrates how lower quantity and quality of plant inputs to the soil in species-poor plant communities (being low in resource use complementarity) may induce negative soil feedback effects. The right part of the scheme shows that higher quantity and quality of plant inputs in species-rich plant communities (being high in resource use complementarity) may cause the dominance of positive soil feedback effects. Mutualists will decrease (Wurst et al. 2008, Latz et al. 2012) and/or superimpose (Eisenhauer et al. 2012a) detrimental effects of antagonists on plants. The four proposed projects complement each other to explore the underlying mechanisms of this scheme across different experimental contexts.
Figure 1b from: Eisenhauer N (2018) Aboveground-belowground interactions drive the relationship between plant diversity and ecosystem function. Research Ideas and Outcomes 4: e23688. https://doi.org/10.3897/rio.4.e23688
Figure 1b - Importance of the duration of the experiment for its outcome. <br> Long-term plant diversity studies on soil biota are rare. Relationship between sampling time since the establishment of the biodiversity experiment, number of studies investigating soil biota and percentage of significant plant diversity effects on soil biota (Eisenhauer et al. 2012a). Size of the bubbles and respective numbers indicate percentage of significant plant diversity effects (regression between number of studies and time: R²=0.56, p=0.033, between time and significant plant diversity effects: R²=0.66, p=0.014, n=20 studies).
Supplementary material 2 from: Li X, Wang H, Li D-Z, Yu W-B (2019) Taxonomic and nomenclatural notes on Pedicularis (Orobanchaceae): I. One new species from northwest Yunnan, China. In: Cai J, Yu W-B, Zhang T, Li D-Z (Eds) Revealing of the plant diversity in China's biodiversity hotspots. PhytoKeys 130: 205-215. https://doi.org/10.3897/phytokeys.130.35258
: Data type: DNA matrix
Supplementary material 1 from: Li X, Wang H, Li D-Z, Yu W-B (2019) Taxonomic and nomenclatural notes on Pedicularis (Orobanchaceae): I. One new species from northwest Yunnan, China. In: Cai J, Yu W-B, Zhang T, Li D-Z (Eds) Revealing of the plant diversity in China's biodiversity hotspots. PhytoKeys 130: 205-215. https://doi.org/10.3897/phytokeys.130.35258
: Data type: Specimen photos.
Supplementary material 1 from: Liu H-M, Shen J-Y, Liang Z-L, Peng F, Wang W-Z, Yang Z-W, Wang S, Parris B, Schneider H (2019) Two out of one: revising the diversity of the epiphytic fern genus Scleroglossum (Polypodiaceae, Grammitidoideae) in southern China. In: Cai J, Yu W-B, Zhang T, Li D-Z (Eds) Revealing of the plant diversity in China's biodiversity hotspots. PhytoKeys 130: 115-133. https://doi.org/10.3897/phytokeys.130.33979
: Data type: Collection data
Figure 1 from: Cai J, Yu W-B, Zhang T, Wang H, Li D-Z (2019) China's biodiversity hotspots revisited: A treasure chest for plants. In: Cai J, Yu W-B, Zhang T, Li D-Z (Eds) Revealing of the plant diversity in China's biodiversity hotspots. PhytoKeys 130: 1-24. https://doi.org/10.3897/phytokeys.130.38417
Figure 1 Chart of new species reported to occur in China's biodiversity hotspots, based on data from IPNI, 1 Jan. 2013- 31 Dec. 2018
Figure 3 from: Li X, Wang H, Li D-Z, Yu W-B (2019) Taxonomic and nomenclatural notes on Pedicularis (Orobanchaceae): I. One new species from northwest Yunnan, China. In: Cai J, Yu W-B, Zhang T, Li D-Z (Eds) Revealing of the plant diversity in China's biodiversity hotspots. PhytoKeys 130: 205-215. https://doi.org/10.3897/phytokeys.130.35258
Figure 3 The holotype of Pedicularis multicaulis W.B.Yu, H.Wang & D.Z.Li (W.-B. Yu, X.-L. Yang & H. Tang 2014096, HITBC, accession no. 169315).
Figure 4 from: Wu Z-K, Zhao F-W, Chen J-H, Huang Y (2019) Primula dongchuanensis (Primulaceae), a new species from northern Yunnan, China. In: Cai J, Yu W-B, Zhang T, Li D-Z (Eds) Revealing of the plant diversity in China's biodiversity hotspots. PhytoKeys 130: 171-181. https://doi.org/10.3897/phytokeys.130.35047
Figure 4 Maximum likelihood tree of new Primula species and other Primula species based on nuclear ITS, chloroplast matK and trnH-psbA combined sequenced data, constructed by IQ-TREE under the GTR+G model, clade supports were reported as Shimodaira-Hasegawa approximate Likelihood Ratio Test (SH-alRT)/Ultrafast Bootstrap Approximation (UFBoot), each estimated by 10000 replicates, and only support value more than 50% were reported.
Figure 3 from: Wu Z-K, Zhao F-W, Chen J-H, Huang Y (2019) Primula dongchuanensis (Primulaceae), a new species from northern Yunnan, China. In: Cai J, Yu W-B, Zhang T, Li D-Z (Eds) Revealing of the plant diversity in China's biodiversity hotspots. PhytoKeys 130: 171-181. https://doi.org/10.3897/phytokeys.130.35047
Figure 3 P. dongchuanensis and four of its close species AP. dongchuanensisBP. aurantiacaCP. cockburnianaDP. chungensisEP. pulverulenta.
Figure 2 from: Wu Z-K, Zhao F-W, Chen J-H, Huang Y (2019) Primula dongchuanensis (Primulaceae), a new species from northern Yunnan, China. In: Cai J, Yu W-B, Zhang T, Li D-Z (Eds) Revealing of the plant diversity in China's biodiversity hotspots. PhytoKeys 130: 171-181. https://doi.org/10.3897/phytokeys.130.35047
Figure 2 Primula dongchuanensis sp. nov. A, B Habit in early flowering C, D Habit in late flowering E specimen of late flowering F dissected corolla showing the anthers and stigma, pin flower (left) and thrum flower (right).
Figure 1 from: Cao H-F, Ya J-D, Zhang Q-R, Hu X-J, Zhang Z-R, Liu X-H, Zhang Y-C, Zhang A-T, Yu W-B (2019) Gentianella macrosperma, a new species of Gentianella (Gentianaceae) from Xinjiang, China. In: Cai J, Yu W-B, Zhang T, Li D-Z (Eds) Revealing of the plant diversity in China's biodiversity hotspots. PhytoKeys 130: 59-73. https://doi.org/10.3897/phytokeys.130.35476
Figure 1 The major-rule consensus tree of ML analysis based on the total dataset, including ITS and matK. ML bootstrap values and BI posterior probabilities are shown on branches.
Figure 2 from: Li X, Wang H, Li D-Z, Yu W-B (2019) Taxonomic and nomenclatural notes on Pedicularis (Orobanchaceae): I. One new species from northwest Yunnan, China. In: Cai J, Yu W-B, Zhang T, Li D-Z (Eds) Revealing of the plant diversity in China's biodiversity hotspots. PhytoKeys 130: 205-215. https://doi.org/10.3897/phytokeys.130.35258
Figure 2 Field photos and pollen of Pedicularis multicaulis W.B.Yu, H.Wang & D.Z.Li A–C overview of habitat and plants D inflorescence E flowers F infructescence G equatorial view of pollen H polar view of pollen I exine ornamentation.
Figure 3 from: Cao H-F, Ya J-D, Zhang Q-R, Hu X-J, Zhang Z-R, Liu X-H, Zhang Y-C, Zhang A-T, Yu W-B (2019) Gentianella macrosperma, a new species of Gentianella (Gentianaceae) from Xinjiang, China. In: Cai J, Yu W-B, Zhang T, Li D-Z (Eds) Revealing of the plant diversity in China's biodiversity hotspots. PhytoKeys 130: 59-73. https://doi.org/10.3897/phytokeys.130.35476
Figure 3 Gentianella macrosperma, sp. nov. A plant in nature habitat B flowers and inflorescence C flowers, showing pedicels and upper leaves D–E front view and side view of corolla, showing nectaries located close to the throat of the corolla tube F middle cauline leaf, abaxial view, showing veins G plants specimen (from KUN1443554) H opened corolla (5-merous) showing ovary I calyx J seed, front view (left and middle) and side view (right) (from S.L. Chen Tianyi281 (PE00029471)). I, H from the paratype J.D. Ya, Q.R. Zhang & X.J. Hu 17CS16327 (KUN1443565). Scale bars: 5 cm (A, G); 2 cm (B); 2 mm (C–E, I, H); 1 mm (J).
Figure 2 from: Cao H-F, Ya J-D, Zhang Q-R, Hu X-J, Zhang Z-R, Liu X-H, Zhang Y-C, Zhang A-T, Yu W-B (2019) Gentianella macrosperma, a new species of Gentianella (Gentianaceae) from Xinjiang, China. In: Cai J, Yu W-B, Zhang T, Li D-Z (Eds) Revealing of the plant diversity in China's biodiversity hotspots. PhytoKeys 130: 59-73. https://doi.org/10.3897/phytokeys.130.35476
Figure 2 Gentianella macrosperma, sp. nov. A plant B flower, top views C–D show opened corollas, 4- and 5-merous, respectively E flower, showing the length of calyx and corolla subequal F calyx. showing 4-merous G calyx, showing 5-merous H capsule I seeds. Drawn by R.M. Zhang. H and I from the isotype S.L. Chen Tianyi281 (PE00029471), others from the paratype J.D. Ya, Q.R. Zhang & X.J. Hu 17CS16327 (KUN1443565). Scale bars: 2 cm (A); 5 mm (B); 2 mm (C–H); 0.5 mm (I).
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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)
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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.