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FIGURE 5 in Checklist of the Vascular Plants of Annobón (Equatorial Guinea)
FIGURE 5. Discoclaoxylon pubescens (Pax & K. Hoffm.) Exell (based on Velayos et al. 11648, MA). Endemic to Annobón.
FIGURE 6 in A catalogue of the vascular plants of the Caatinga Phytogeographical Domain: a synthesis of floristic and phytosociological surveys
FIGURE 6. Habit spectra reported in the 18 floristic papers in the Caatinga Phytogeographical Domain where general flora (woody + non woody plants) was sampled and habit data reported for each species.
FIGURE 1 in An inventory of vascular plants endemic to Italy
FIGURE 1. Map showing the twenty administrative Italian regions, Corsica, France (Co) and Malta (Ma). Valle d'Aosta, VDA; Piemonte, PIE; Lombardia, LOM; Trentino-Alto Adige, TAA; Veneto, VEN; Friuli-Venezia Giulia, FVG; Liguria, LIG; Emilia- Romagna, EMR; Tuscany, TOS; Marche, MAR; Umbria, UMB; Lazio, LAZ; Abruzzo, ABR; Molise, MOL; Puglia, PUG; Campania, CAM; Basilicata, BAS; Calabria, CAL; Sicily, SIC; Sardinia, SAR.
FIGURE 3 in A catalogue of the vascular plants of the Caatinga Phytogeographical Domain: a synthesis of floristic and phytosociological surveys
FIGURE 3. Histogram of the constancy of species throughout the Caatinga Phytogeographical Domain. Most species were recorded at only one site.
FIGURE 3 in An inventory of vascular plants endemic to Italy
FIGURE 3. UPGMA Cluster Analysis of Italian OGU (corresponding to the administrative regions). Valle d'Aosta, VDA; Piemonte, PIE; Lombardia, LOM; Trentino-Alto Adige, TAA; Veneto, VEN; Friuli-Venezia Giulia, FVG; Liguria, LIG; Emilia-Romagna, EMR; Tuscany, TOS; Marche, MAR; Umbria, UMB; Lazio, LAZ; Abruzzo, ABR; Molise, MOL; Puglia, PUG; Campania, CAM; Basilicata, BAS; Calabria, CAL; Sicily, SIC; Sardinia, SAR.
FIGURE 2 in A catalogue of the vascular plants of the Caatinga Phytogeographical Domain: a synthesis of floristic and phytosociological surveys
FIGURE 2. Surveys in the Caatinga Phytogeographical Domain used to build the catalogue, differentiated by environment types within the Domain. Dark gray areas are ecoregions in the Caatinga Domain (sensu Velloso et al. 2002) mainly in crystalline terrains. Light gray areas are ecoregions in the Caatinga Domain mainly in sedimentary terrains. The hatched area is the Chapada Diamantina ecoregions, where caatinga, cerrado, wet forests and rocky grasslands (campos rupestres) are intermixed in a mosaic (map prepared by M.F. Moro).
FIGURE 1 in A catalogue of the vascular plants of the Caatinga Phytogeographical Domain: a synthesis of floristic and phytosociological surveys
FIGURE 1. Geographical location of the Caatinga Phytogeographycal Domain (after IBGE 2004), bounded by the Atlantic rainforest to the east and the cerrado savannas to the west (map prepared by M.F. Moro).
FIGURE 5 in A catalogue of the vascular plants of the Caatinga Phytogeographical Domain: a synthesis of floristic and phytosociological surveys
FIGURE 5. NMS ordination showing the floristic relationsips among the environment types in the Caatinga Phytogeographic Domain based in (A) the frequency of each species in each environment type, and (B) incidence data. A: Final stress for 2-dimensional solution using frequency data= 6.29136. B: Final stress for 2-dimensional solution using presence/absence data= 4.53461.
FIGURE 8 in A catalogue of the vascular plants of the Caatinga Phytogeographical Domain: a synthesis of floristic and phytosociological surveys
FIGURE 8. Rarefaction curve showing the total observed number of species (with the 95% confidence interval obtained with 1,000 randomizations) for the Caatinga Phytogeographical Domain as a whole (summing all 131 surveys) and the expected total number of species in CPD estimated by ICE, Chao 2, Jackknife 1 and Jackknife 2.
FIGURE 7 in A catalogue of the vascular plants of the Caatinga Phytogeographical Domain: a synthesis of floristic and phytosociological surveys
FIGURE 7. Rarefaction curves showing the number of observed species in the different environment types within the Caatinga Phytogeographical Domain, with the 95% confidence interval for the observations (calculated with 1,000 randomizations), and the number of species estimated by ICE, Chao 2, Jackknife 1 and Jackknife 2. Campo Maior and Chapada Diamantina are not shown due the dearth of data available for caatinga in these environments.
FIGURE 2 in An inventory of vascular plants endemic to Italy
FIGURE 2. The most widespread Italian endemic taxa, occurring in at least 13 regions: Aquilegia dumeticola Jord. (Ranunculaceae), photographed in Montalbano, Tuscany (A); Arenaria bertolonii Fiori & Paol. (Caryophyllaceae), photographed in Monte Pollino, Calabria (B); Hypochaeris robertia (Sch.Bip.) Fiori (Asteraceae), photographed in Gran Sasso, Abruzzo (C); Pulmonaria hirta L. subsp. apennina (Cristof. & Puppi) Peruzzi (Boraginaceae), photographed in Catena Costiera, Calabria (D); Ranunculus apenninus (Chiov.) Pignatti (Ranunculaceae), photographed in Monte Pollino, Calabria (E); Scabiosa uniseta Savi (Caprifoliaceae), photographed in Monte Pisano, Tuscany (F). Pictures by L. Peruzzi, except A and F, courtesy of G. Gestri and B. Pierini, respectively.
FIGURE 9 in An updated checklist of the vascular flora of the Trans-Himalayan region of Ladakh, India
FIGURE 9. Number of species belonging to different (a) habit and (b) lifespan categories in the vascular flora of Ladakh.
FIGURE 6 in An updated checklist of the vascular flora of the Trans-Himalayan region of Ladakh, India
FIGURE 6. Representative Himalayan near endemic plants in Ladakh: (a) Aquilegia nivalis, (b) Inula racemosa, (c) Rheum webbianum, (d) Dactylorhiza hatagirea, (e) Rheum tibeticum, (f) Inula royleana, (g) Arnebia guttata,(h) Arnebia euchroma,(i) Meconopsis aculeata, (j) Meconopsis latifolia, (k) Onosma hispida (l) Morina coulteriana, (m) Primula macrophylla (n) Aconitum heterophyllum, (o) Aconitum violaceum, (p) Christolea crassifolia, (q) Primula denticulata, (r) Saussurea bracteata, (s) Podophyllum hexandrum, (t) Picrorhiza kurroa.
FIGURE 8 in An updated checklist of the vascular flora of the Trans-Himalayan region of Ladakh, India
FIGURE 8. Representative shrubs and trees of Ladakh: (a) Cotoneaster integerrimus, (b) Sorbaria tomentosa, (c) Hippophae rhamnoides, (d) Ribes orientale, (e) Salix caesia, (f) Lycium ruthenicum, (g) Rosa webbiana (h) Ephedra intermedia, (i) Farinopsis salesoviana, (j) Populus alba, (k) Morus alba (l) Prunus armeniaca. (m) Juniperus semiglobosa, (n) Elaeagnus angustifolia.
FIGURE 7 in An updated checklist of the vascular flora of the Trans-Himalayan region of Ladakh, India
FIGURE 7. Representative medicinal plants of Ladakh: (a) Geranium himalayense, (b) Cremanthodium ellisii, (c) Echinops cornigerus, (d) Prangos pabularia, (e) Cousinia thomsonii, (f) Campanula cashmeriana, (g) Oxyria digyna, (h) Swertia petiolata, (i) Allardia glabra, (j) Koenigia tortuosa, (k) Pedicularis bicornuta, (l) Iris hookeriana, (m) Aquilegia fragrans, (n). Physochlaina praealta, (o) Allium carolinianum, (p) Peganum harmala, (q) Delphinium brunonianum, (r) Dracocephalum heterophyllum, (s) Hippuris vulgaris, (t) Richteria pyrethroides, (u) Taraxacum officinale.
Dataset for research: "MTA and Koedam Score Contributes to Cognitive Impairment in Probable Alzheimer, Vascular and Mixed Dementia: A Memory Clinic Study in Indonesia"
<p>This is a dataset for research : "MTA and Koedam Score Contributes to Cognitive Impairment in Probable Alzheimer, Vascular and Mixed Dementia: A Memory Clinic Study in Indonesia"</p> <h1><strong><span>Abstract</span></strong></h1> <p><strong><span>Background</span></strong><span>. Medial Temporal Atrophy (MTA) and Parietal Atrophy (Koedam score) have been used in clinical practice to help the diagnosis of Alzheimer’s disease. However, the role of this brain imaging marker in early detection of other type of dementia remains elusive. The study aims to investigate the association between MTA and Koedam scores with the cognitive function in dementia patients (Alzheimer, vascular and mixed dementia).</span></p> <p><strong><span>Method</span></strong><span> <span>This was a</span> cross-sectional study using<span> data from a</span> Memory Clinic in Dr. Sardjito General Hospital Yogyakarta, Indonesia. The data was collected from January 2020 until December 2022. We collected the data regarding demographic and clinical characteristics, including head MRI data and Montreal Cognitive Assessment (MoCA) score. The cut-off points of MTA score and Koedam score were determined by using Receiver Operating Curve (ROC) and Youden Index. Multivariate analysis was performed to investigate variables which were associated with the cognitive function. </span></p> <p><strong><span>Result </span></strong><span>From 61 dementia patients, 22.95% was probable Alzheimer’s disease, 59.01% was vascular dementia, and 18.03% was mixed dementia. Correlation test showed that MTA and Koedam score were negatively associated with Montreal Cognitive Assessment-Indonesian Version (MoCA-INA) score. A bivariate analysis supports the findings that patients with combination of MTA score ≥3 and Koedam score ≥2 was more likely to have poor cognitive function (OR= 11.33; p<0.05). Multivariate analysis showed higher MTA (≥3) and Koedam (≥2) scores were associated with poor cognitive function in dementia patients (OR= 13.54, 95% CI= 1.77-103.43, <em>p</em>=0.01 and OR= 5.52, 95% CI= 1.08-28.19, <em>p</em>=0.04)</span></p> <p><strong><span>Conclusion </span></strong><span>Higher MTA and Koedam score contribute to worse cognitive function in any type of dementia patients. </span></p> <p><strong><span>Keywords.</span></strong><span> Imaging Marker, Medial Temporal Atrophy (MTA), Koedam Score, Cognitive Function, Dementia</span></p>
Supplementary material 2 from: Kubentayev SA, Alibekov DT, Perezhogin YV, Lazkov GA, Kupriyanov AN, Ebel AL, Izbastina KS, Borodulina OV, Kubentayeva BB (2024) Revised checklist of endemic vascular plants of Kazakhstan. PhytoKeys 238: 241-279. https://doi.org/10.3897/phytokeys.238.114475
Former endemics of Kazakhstan that are now reclassified as synonyms for species exhibiting broader geographical distributions
List of vascular plant species found in the "Natural Reserve of Monte Catillo" (central Italy)
<p><span>This list of vascular plant species was developed based on the work carried out for the definition of the Reserve planning (Provincia di Roma, 2006). </span></p> <p><span>Between 2020 and 2023 floristic surveys and vegetation plots led to the integration of this original list, whose nomenclature was standardized according to Bartolucci et al. (2018).</span></p> <p><span>Compared to the 365 species reported in the original list (Provincia di Roma, 2006), 520 species are now listed, i.e., 155 more than in the previous list. Interestingly, among the added species there are two non-native species for which eradication could be considered, i.e., <em>Agave filifera</em> and <em>Aloe maculata</em>, and several previously undetected orchid species, e.g., <em>Cephalantera longifolia</em>, <em>Ophrys crabronifera</em>, <em>Ophrys incubacea</em>.</span></p> <p><span> </span></p> <p><strong><span>References</span></strong></p> <p><span>Bartolucci, F., Peruzzi, L., Galasso, G., Albano, A., Alessandrini, A., Ardenghi, N. M. G., … </span><span>Conti, F. (2018). An updated checklist of the vascular flora native to Italy. </span><span>Plant Biosystems, 152(2), 179–303.</span></p> <p><span>Provincia di Roma, 2006. Piano di assetto della Riserva Naturale di Monte Catillo. Approvato con Deliberazione del Commissario ad acta del 26 Novembre 2015 pubblicato sul BURL del 19 Gennaio 2016, n. 5, supplemento 2.</span></p>
TF for brain vascular structures
Open the record for dataset details and reuse information.
Supplementary material 1 from: Di Gristina E, Domina G, Barone G (2021) The alien vascular flora of Stromboli and Vulcano (Aeolian Islands, Italy). Italian Botanist 12: 63-75. https://doi.org/10.3897/italianbotanist.12.74033
Table with the species and subspecies of alien vascular plants present in the islands of Stromboli and Vulcano
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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.