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Figure 3 in The first cave associated genus of Berothidae (Insecta: Neuroptera), and a new interpretation of the subfamily Cyrenoberothinae
Figure 3. Distribution of Cyrenoberothinae (Neuroptera: Berothidae). A, world map showing the distribution of all genera included here in Cyrenoberothinae. B, map of South America showing the records of Speleoberotha. C, maps showing in detail the three Brazilian states where Speleoberotha were collected: Ceará, Minas Gerais and Pernambuco.
Figure 11 in The first cave associated genus of Berothidae (Insecta: Neuroptera), and a new interpretation of the subfamily Cyrenoberothinae
Figure 11. Female genitalia of Speleoberotha mineira sp. nov. (Berothidae: Cyrenoberothinae). A, lateral view. B, ventral view. C, spermatheca, lateral view. D, spermatheca, ventral view. Abbreviations: bc, bursa copulatrix; d.s., distal portion of spermatheca; ect, ectoproct; m.s., median portion of spermatheca; p.s. proximal portion of spermatheca; S7, seventh sternite; T7–T9, seventh–ninth tergites.
Figure 2 in The first cave associated genus of Berothidae (Insecta: Neuroptera), and a new interpretation of the subfamily Cyrenoberothinae
Figure 2. Speleoberotha palomae sp. nov. (Berothidae: Cyrenoberothinae). A, B, female abdomen with pollen in its gut. C, vegetation near the collection locality of Speleoberotha palomae sp. nov. paratype in Pernambuco State, Brazil.
Figure 7 in The first cave associated genus of Berothidae (Insecta: Neuroptera), and a new interpretation of the subfamily Cyrenoberothinae
Figure 7. Female genitalia of Speleoberotha palomae sp. nov. (Berothidae: Cyrenoberothinae). A, B, lateral views. C, D, ventral view. E, spermatheca, lateral view. F, spermatheca, ventral view. Abbreviations: bc, bursa copulatrix; d.s., distal portion of spermatheca; ect, ectoproct; gph9, gonapophyses 9; m.s., median portion of spermatheca; p.s., proximal portion of spermatheca; S7, seventh sternite; sp, spermatheca; T7–T9, seventh–ninth tergites.
Figure 8 in The first cave associated genus of Berothidae (Insecta: Neuroptera), and a new interpretation of the subfamily Cyrenoberothinae
Figure 8. Speleoberotha mineira sp. nov. (Berothidae: Cyrenoberothinae). A, lateral habitus. B, head, lateral view. C, head and thorax, dorsal view. D, wings. Abbreviations: A1, A2, anal veins; CuA, cubitus anterior; CuP, cubitus posterior; MA, media anterior; MP, media posterior; RA, radius anterior; RP, radius posterior; Sc, subcostal; 1r-m, first radial–medial crossvein.
FIGURE 5 in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE 5. Cladosporium brigadeirensis (VIC 44238, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–K. Macronematous conidiophores. E. Mult-branched conidiophore. I. Conidiogenous cell details. J. Terminal and intercalary conidiogenous cells. K. Secondary ramoconidia prolongation. L. Micronematous conidiophores. M. Microcyclic conidiogenesis. Scale bars: E = 50 µM; F–M = 20 µM.
FIGURE 7 in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE 7. Cladosporium pseudotenuissimum (VIC 44422, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–J. Macronematous conidiophores and conidia. E, F. Micronematous conidiophores at arrows. K. Conidiogenous cel with conidia. L. Bubble-like swelling details. M. Microcyclic conidiogenesis (black arrow) and Ramoconidia (red arrow). Scale bars: E = 50 µM; F–M = 20 µM.
FIGURE 6 in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE 6. Cladosporium chusqueae (VIC 44239, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–K. Macronematous conidiophores and conidia. G. Terminal conidiophore. H. Short peg-like prolongation. I. Bent conidiophore; J–K. Conidiophore branched near the base at a 90º angle. L. Micronematous conidiophores. M. Microcyclic conidiogenesis. Scale bars: E = 50 µM; F–M = 20 µM.
FIGURE. Cladosporium benschii (VIC 44412, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–J. Non-geniculate macronematous conidiophores and conidia. K. Conidiogenous cells with slightly protuberant loci. L. Micronematous conidiophores. M. Microcyclic conidiogenesis. Scale bars: E–M = 20 µM. in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE. Cladosporium benschii (VIC 44412, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–J. Non-geniculate macronematous conidiophores and conidia. K. Conidiogenous cells with slightly protuberant loci. L. Micronematous conidiophores. M. Microcyclic conidiogenesis. Scale bars: E–M = 20 µM.
FIGURE. Cladosporium bambusicola (VIC 44237, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–F. Conidiophore and bigger conidia. G–H. Conidiophores and smaller conidia. I. Stromatic hyphal aggregation. J–K. Micronematous conidiophores. L. Ramoconidia and conidia. M. Microcyclic conidiogenesis. Scale bars: E = 50 µM; F–M = 20 µM. in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE. Cladosporium bambusicola (VIC 44237, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–F. Conidiophore and bigger conidia. G–H. Conidiophores and smaller conidia. I. Stromatic hyphal aggregation. J–K. Micronematous conidiophores. L. Ramoconidia and conidia. M. Microcyclic conidiogenesis. Scale bars: E = 50 µM; F–M = 20 µM.
FIGURE. Multilocus phylogenetic tree inferred from Bayesian analysis based on the combined TEF1-α and ACT sequences. Bayesian posterior probabilities are indicated next to the nodes. The tree was rooted with Cladosporium herbarum CBS 121621. The species in this study are indicated in bold. Types of species are indicated after the culture collection number (T = ex-type, ex-epitype, ex-neotype, or reference strain). in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE. Multilocus phylogenetic tree inferred from Bayesian analysis based on the combined TEF1-α and ACT sequences. Bayesian posterior probabilities are indicated next to the nodes. The tree was rooted with Cladosporium herbarum CBS 121621. The species in this study are indicated in bold. Types of species are indicated after the culture collection number (T = ex-type, ex-epitype, ex-neotype, or reference strain).
FIGURE. (Continued) Multilocus phylogenetic tree inferred from Bayesian analysis based on the combined TEF1-α and ACT sequences. Bayesian posterior probabilities are indicated next to the nodes. The tree was rooted with Cladosporium herbarum CBS 121621. The species in this study are indicated in bold. Types of species are indicated after the culture collection number (T = ex-type, ex-epitype, exneotype, or reference strain). in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE. (Continued) Multilocus phylogenetic tree inferred from Bayesian analysis based on the combined TEF1-α and ACT sequences. Bayesian posterior probabilities are indicated next to the nodes. The tree was rooted with Cladosporium herbarum CBS 121621. The species in this study are indicated in bold. Types of species are indicated after the culture collection number (T = ex-type, ex-epitype, exneotype, or reference strain).
FIGURE. Cladosporium aulonemiae (VIC 44413, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–G. Macronematous conidiophores and numerous conidia; H–I. Formation of loci in close succession; I. Spread polysaccharide-like material; J. Micronematous conidiophores; K. Ramoconidia and conidia; L. Microcyclic conidiogenesis; M. Stromatic hyphal aggregation. Scale bars: E–M = 20 µM. in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE. Cladosporium aulonemiae (VIC 44413, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–G. Macronematous conidiophores and numerous conidia; H–I. Formation of loci in close succession; I. Spread polysaccharide-like material; J. Micronematous conidiophores; K. Ramoconidia and conidia; L. Microcyclic conidiogenesis; M. Stromatic hyphal aggregation. Scale bars: E–M = 20 µM.
A new gene set identifies senescent cells and predicts senescence-associated pathways across tissues
<p>Although cellular senescence drives multiple age-related co-morbidities through the senescence-associated secretory phenotype (SASP), <em>in vivo</em> senescent cell identification remains challenging. Here, we generated a gene set (SenMayo) and validated its enrichment in bone biopsies from two aged human cohorts. We further demonstrated reductions in SenMayo in bone following genetic clearance of senescent cells in mice and in adipose tissue from humans following pharmacological senescent cell clearance. We next used SenMayo to identify senescent hematopoietic or mesenchymal cells at the single cell level from human and murine bone marrow/bone scRNA-seq data. Thus, SenMayo identifies senescent cells across tissues and species with high fidelity. Using this senescence panel, we were able to characterize senescent cells at the single-cell level and identify key intercellular signaling pathways. SenMayo also represents a potentially clinically applicable panel for monitoring senescent cell burden with aging and other conditions as well as in studies of senolytic drugs.</p>
FIGURE 5 in A new report on the deep-sea sponge-associated Spongicoloides weijiaensis Xu Zhou & Wang, 2017 (Decapoda: Spongicolidae) from the Southwest Indian Ocean Ridge
FIGURE 5. The map shows the type locality of all known species of Spongicoloides spp. The red colour star indicates the new location of S. weijiaensis from the SWIOR
FIGURE 1 in A new report on the deep-sea sponge-associated Spongicoloides weijiaensis Xu Zhou & Wang, 2017 (Decapoda: Spongicolidae) from the Southwest Indian Ocean Ridge
FIGURE 1. Spongicoloides weijiaensis Xu, Zhou & Wang, 2017. Female (NCPOR/HYD-IO/0018) whole specimen, 35.1 mm., the Southwest Indian Ridge.
FIGURE 6 in A new report on the deep-sea sponge-associated Spongicoloides weijiaensis Xu Zhou & Wang, 2017 (Decapoda: Spongicolidae) from the Southwest Indian Ocean Ridge
FIGURE 6. Phylogenetic trees of spongicolids based on the ML topology inferred from the gene fragments of mitochondrial COI. Bootstrap values of the ML analyses were placed at nodes, with dashes (–) indicating values below 50. Scale bars represent the number of substitutions per site.
FIGURE 3 in A new report on the deep-sea sponge-associated Spongicoloides weijiaensis Xu Zhou & Wang, 2017 (Decapoda: Spongicolidae) from the Southwest Indian Ocean Ridge
FIGURE 3. Spongicoloides weijiaensis Xu, Zhou & Wang, 2017. Female (NCPOR/HYD-IO/0018): A & B, mandible dorsal & ventral view C, maxillule D, maxilla E, first maxillipeds F, second maxillipeds G, antenna H, antennules.
FIGURE 2 in A new report on the deep-sea sponge-associated Spongicoloides weijiaensis Xu Zhou & Wang, 2017 (Decapoda: Spongicolidae) from the Southwest Indian Ocean Ridge
FIGURE 2. Spongicoloides weijiaensis Xu, Zhou & Wang, 2017. Female (NCPOR/HYD-IO/0018): A, carapace, lateral view, B, details of first to the sixth pleonal, C, telson and uropods, dorsal view D, fifth and sixth pleonal somite, telson, and uropods, dorsal view E, thoracic sternites, ventral view F, fifth and sixth pleonal somites, right lateral view.
FIGURE 3. Dendrogram generated from PATN analyses using Czekanowski metric association measures the dataset comprising eight samples and 133 in Stolonochloa, a new Australian genus segregated from Panicum (Poaceae: Panicoideae: Paniceae: Boivinellinae) based on phenetic analysis of morphological data
FIGURE 3. Dendrogram generated from PATN analyses using Czekanowski metric association measures the dataset comprising eight samples and 133 morphological characters. Classification strategy set at flexible UPGMA agglomerative hierarchical fusion technique with Beta = -0.10.
ScienceDex guides
Understand access before you commit
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.