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FIGURE 2. Astrothelium rogitamae A in Two new species of Astrothelium (Trypetheliaceae) with amyloid ascospores inhabiting the canopy of Quercus humboldtii trees in Colombia
FIGURE 2. Astrothelium rogitamae A. Thallus with perithecia; B. Perithecium enlarged showing pigmented ostiolar area. C. Ascospore. D. Ascospore showing IKI + blue reaction. Scale = 1 mm in A–B, 10 µm in C–D.
FIGURE 6. Maximum likelihood tree from a in Morphology and phylogeny of a new species, Pseudocercospora haldinae (Mycosphaerellaceae) on Haldina cordifolia from India
FIGURE 6. Maximum likelihood tree from a concatenated dataset including ribosomal gene regions nuLSU and ITS. Numbers on the branches are percent bootstrap values for MEGA5-maximum likelihood (ML), MEGA5-maximum parsimony (MP) and Bayesian posterior probabilities (PP) indicated in order ML/MP/PP. New sequence data of P. haldinae is represented in red.
FIGURE 3. Phylogenetic tree inferred from maximum likelihood methods using 70 in Tigridiopalma longmenensis (Melastomataceae), a new species from Guangdong, China
FIGURE 3. Phylogenetic tree inferred from maximum likelihood methods using 70 protein-coding genes from the complete chloroplast genome sequences of Tigridiopalma longmenensis and other 15 species of Melastomataceae. The numbers beside the node indicate the bootstrap percentages (%) after 5000 replications of bootstrap sampling.
FIGURE 3. Sideroxylon cochranei. A in Sideroxylon cochranei (Sapotoideae, Sapotaceae): a new cloud forest tree species from the Sierra de Manantlán and Cuale in western México
FIGURE 3. Sideroxylon cochranei. A. Immature fruits, from El Fresnal. Sierra de Manantlán, Cuevas-G. et al. 7694. B. Mature fruits from Sierra de Cuale, Santana-M. et al. 11384. Photographs by R. Cuevas-G.
FIGURE 2. Sideroxylon cochranei. A. Fruiting branch. B. Floriferous branch. C in Sideroxylon cochranei (Sapotoideae, Sapotaceae): a new cloud forest tree species from the Sierra de Manantlán and Cuale in western México
FIGURE 2. Sideroxylon cochranei. A. Fruiting branch. B. Floriferous branch. C. The entire flower (left) and gynoecium showing the open corolla and staminodes (right). D. Fruit. E. Seed. Illustration by Enrique V. Sánchez R.
FIGURE 1 in Sideroxylon cochranei (Sapotoideae, Sapotaceae): a new cloud forest tree species from the Sierra de Manantlán and Cuale in western México
FIGURE 1. Distribution of Sideroxylon cochranei and other geographically close species of Sideroxylon in the state of Jalisco, Mexico.
FIGURE 2. Memecylon pachaimalayanum—a. Tree, b. Twig, c in Memecylon pachaimalayanum (Melastomataceae)-a new species from the Eastern Ghats of Tamil Nadu in India
FIGURE 2. Memecylon pachaimalayanum—a. Tree, b. Twig, c. Floral buds in axillary fascicle, d. Axillary fascicles in full blossom, e. Immature fruits, f. Mature fruit, g. A portion of cleared leaf, showing narrowly filiform, unbranched, often mixed with spheroidal sclereids. Photographs: C. Rajasekar and R. Rajesh.
FIGURE. Growth patterns of tree species and texture of their branches. A. Small tree erect lax canopy in Ch. orbiculata. B. Small tree with little branched stem in Ch. tocantinensis. C. Small tree with very branched stem in Ch. trichortyrsus. D. Stems with bark cerous in Ch. claussenii. E. Stems with bark longitudinally fissured in Ch. celiae. in Taxonomic review of Chamaecrista sect. Absus subsect. Absus ser. Paniculatae (Benth.) H.S. Irwin & Barneby (Leguminosae, Caesalpinioideae)
FIGURE. Growth patterns of tree species and texture of their branches. A. Small tree erect lax canopy in Ch. orbiculata. B. Small tree with little branched stem in Ch. tocantinensis. C. Small tree with very branched stem in Ch. trichortyrsus. D. Stems with bark cerous in Ch. claussenii. E. Stems with bark longitudinally fissured in Ch. celiae.
Figure 1. Best selected tree from a maximum likelihood reconstruction for the cytochrome c oxidase subunit I in Integrating DNA and morphological taxonomy to describe diversity in poorly studied microscopic animals: new species of the genus Abrochtha Bryce, 1910 (Rotifera: Bdelloidea: Philodinavidae)
Figure 1. Best selected tree from a maximum likelihood reconstruction for the cytochrome c oxidase subunit I data set under the general time reversible model with gamma distribution, displaying all compatible groupings and with average branch lengths proportional to numbers of substitutions per site, indicated by the scale bar. Bootstrap support values above 80% are shown below each branch; posterior probabilities above 0.8 from 36 000 sampled trees from the Bayesian analysis are shown above each branch. Support values for within-species relationships are not shown. Filled circles indicate clades (and singlets) identified by the 4¥ rule; open diamonds indicate clades (and singlets) identified by the generalized mixed yule coalescent model. Names refer to the species and the clonal populations.
FIGURE 1. Sphaeropteris guangxiensis Y.F in Sphaeropteris guangxiensis Y. F. Gu & Y. H. Yan (Cyatheaceae), a new species of tree fern from Southern China
FIGURE 1. Sphaeropteris guangxiensis Y.F. Gu & Y.H. Yan.—A. One pinna.—B. Pinnule segments.—C. Spores.
FIGURE 2. Sphaeropteris guanxiensis.—A & B. Habit.—C in Sphaeropteris guangxiensis Y. F. Gu & Y. H. Yan (Cyatheaceae), a new species of tree fern from Southern China
FIGURE 2. Sphaeropteris guanxiensis.—A & B. Habit.—C. Petioles and scales on the trunk.—D & E. Petiole crosscutting and the annular vascular bundles (photographed by Jun-Jie Luo).—F, G & H. Spore morphology.
FIGURE 3. Nuclear 16S rDNA Maximum-likelihood tree for 25 in Caltsacoryne setouchiensis (Hydrozoa, Anthoathecata) a new genus and species of hydrozoan jellyfish from Japan
FIGURE 3. Nuclear 16S rDNA Maximum-likelihood tree for 25 anthoathcata taxa based on the General Time Reversible model: Scale bar indicates branch length in substitutions per site. Nodal support values are presented as the ML bootstrap value; only values>50% are shown.
FIGURE 27. Majority-rule consensus tree from Bayesian analysis using 16S in Revision of the French Terebellidae sensu stricto (Annelida, Terebelliformia), with descriptions of nine new species
FIGURE 27. Majority-rule consensus tree from Bayesian analysis using 16S. Asterisk indicates posterior probability> 80%. Text in red refers to specimens sequenced during this study.
Data from: Changes in beta diversity and species functional traits differ between saplings and mature trees in an old growth forest
<p class="MsoCommentText">1. Invasion by generalist tree species can cause biotic homogenization and such community impoverishment is likely more important in rare forest types. We quantified changes in tree diversity within Carolinian (range in Central Hardwoods), northern (range reached Northern hardwood-conifer/Boreal-spruce-fir) and central species (range in Central Hardwood region and Northern hardwood-conifer) in an old forest in southern Canada at points surveyed 24 years apart.</p> <p class="MsoCommentText">2. We asked: How did mature tree and sapling composition and abundance change for the 3 species' groups? Did those changes lead to biotic homogenization? Can species' changes be explained by community traits? We tested for differences in temporal and spatial tree <span>β</span>-diversity, as well as forest composition and structure, using univariate/multivariate analyses and a community trait-based approach to identify drivers-of-change.</p> <p class="MsoCommentText">3. Major increases occurred in abundance for mature <i>Acer rubrum</i> (northern), while others decreased (<i>Fraxinus americana</i>, <i>Populus grandidentata</i>); declines were found in <i>A. saccharinum </i>(central) and <i>Cornus florida</i> (Carolinian). Species composition of saplings, but not mature trees, changed due to replacement; no evidence for biotic homogenization existed in either cohort. As a group, northern mature tree species increased significantly, while central species declined; saplings of Carolinian species declined. </p> <p class="MsoCommentText">4. Shade-tolerance in mature trees increased, reflecting successional changes, while drought-tolerance decreased perhaps due to changing temperatures, altered precipitation or ground water levels. Saplings showed declines in all traits, probably because of compositional change. </p> <p class="MsoCommentText">5. Our results demonstrated that saplings can more closely reflect change in forest dynamics than mature trees, especially over short time periods. Based on sapling trends, this remnant could ultimately transition to a mesophytic hardwood stand dominated by <i>A. rubrum</i> and other shade-tolerant species, creating a more homogeneous forest. </p> <p class="MsoCommentText">6. While encouraging regeneration for Carolinian and central tree species could ensure high levels of diversity are conserved in the future, it is important that this is balanced with the primary management goal of maintaining the older-growth characteristics of the forest.</p>
FIGURE 3. Neighbor-joining tree for Cytochrome C Oxidase Subunit I in Two new species and three new provincial records of Neoperla (Plecoptera: Perlidae) from Nanling Mountains, China
FIGURE 3. Neighbor-joining tree for Cytochrome C Oxidase Subunit I (COI) sequences (659 bp) from Neoperla annulatispina Mo, Li & Wang, sp. nov. and N. nigromarginata Li & Zhang, 2014, modeled by Kimura-2-parameter (K2P).
FIGURE 2. Phylogenetic tree concluded using Cyt b in A new species of Acanthodactylus Fitzinger, 1834 (Sauria: Lacertidae) from the Zagros Mountains, Iran
FIGURE 2. Phylogenetic tree concluded using Cyt b gene for Acanthodactylus species. The topologies of BI and ML trees are the same, therefore only the ML tree is shown. Numbers on branches indicate posterior probabilities (above) and bootstrap supports (below). Only values greater than 0.9 (for the former) and 90 (for the latter) are shown.
FIGURE. Bayesian tree of New Zealand spider orchids (Corybas) based on DNA sequence data from ITS, trnL-trnF and psbJ-petA. Major clades are indicated by open bars and capital letters, members of the C. trilobus aggregate are shaded, and posterior probabilities/ bootstrap percentages (≥50) indicated by numbers near each node. NI: North Island, SI: South Island, MCQI: Macquarie Island, CHI: Chatham Island in Five new species of Corybas (Diurideae, Orchidaceae) endemic to New Zealand and phylogeny of the Nematoceras clade
FIGURE. Bayesian tree of New Zealand spider orchids (Corybas) based on DNA sequence data from ITS, trnL-trnF and psbJ-petA. Major clades are indicated by open bars and capital letters, members of the C. trilobus aggregate are shaded, and posterior probabilities/ bootstrap percentages (≥50) indicated by numbers near each node. NI: North Island, SI: South Island, MCQI: Macquarie Island, CHI: Chatham Island
FIGURE 5 in Description of a new and critically endangered species of Atheris (Serpentes: Viperidae) from the Southern Highlands of Tanzania, with an overview of the country's tree viper fauna
FIGURE 5. Map of the Atheris species occurring in Tanzania (the occurrence of A. nitschei within Tanzania borders still need confirmation).
FIGURE 1 in Description of a new and critically endangered species of Atheris (Serpentes: Viperidae) from the Southern Highlands of Tanzania, with an overview of the country's tree viper fauna
FIGURE 1. Comparison of general shape, size and body proportion between A. matildae holotype (left) and a fully grown specimen of A. ceratophora from Udzungwa (MTSN 7506, SVL=54.2) (right) and an illustration of lateral head scalation.
FIGURE 2. Gymnaceria cupuassu n. gen. et n in A new eriophyoid mite genus and species, Gymnaceria cupuassu (Acari: Eriophyidae), described from the cupuaçu tree in Brazil
FIGURE 2. Gymnaceria cupuassu n. gen. et n. sp. L. Lateral habitus, female; OL. Opisthosoma lateral, female; E. Ven t ral view of empodium, Leg I, female; IGF. Internal genitalia, female; GM. External genitalia, male; L1. Leg I, antiaxial view, female; L2. Leg II, antiaxial view, female.
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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.