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71 results for “succulence”
FIGURE 1 in Sedum danjoense (Crassulaceae), a new species of succulent plants from the Danjo Islands in Japan
FIGURE 1. Map showing the location of Danjo Islands and the adjacent area. The blue shaded area indicates the distribution of S. formosanum (see Tables 1 and 2 for collection localities).
FIGURE 1 in Clarifying the typification of the names Kalanchoe fedtschenkoi and K. waldheimii (Crassulaceae subfam. Kalanchooideae), two leaf-succulent shrubs indigenous to Madagascar
FIGURE 1. Vegetative (A) and inflorescence (B) morphology of Kalanchoe waldheimii. Vegetative (C) and inflorescence (D) morphology of K. fedtschenkoi. Photograph credits: David-Paul Klein (A & B), Gideon F. Smith (C), and Ronen Shtein (D).
FIGURE 3 in Euphorbia sahyadrica (Euphorbiaceae), a new species of succulent shrub from the wet zone of the northern Western Ghats, Maharashtra, India
FIGURE 3. Illustration of Euphorbia sahyadrica Sardesai & Malpure. (A) Habit, (B) Stem and spine shields, (C) Leaf, (D) Cyme, (E) Bract, (F) Bisexual cyathium, lateral view, (G) Bisexual cyathium, top view, (H) Staminate flowers, (I) Involucral Lobe, (J) Capsule, lateral view, (K) Capsule, top view, (L) Seeds, top and lateral view. Illustrated by B. De Jong from N.V. Malpure 0030.
FIGURE 4 in Euphorbia sahyadrica (Euphorbiaceae), a new species of succulent shrub from the wet zone of the northern Western Ghats, Maharashtra, India
FIGURE 4. Mitotic plate comparison of Euphorbia sahyadrica Sardesai & Malpure (A) and Euphorbia nivulia Buch.-Ham (B).
FIGURE 1 in Euphorbia sahyadrica (Euphorbiaceae), a new species of succulent shrub from the wet zone of the northern Western Ghats, Maharashtra, India
FIGURE 1. Comparison of Euphorbia sahyadrica Sardesai & Malpure and Euphorbia nivulia Buch.-Ham. (A–C) Euphorbia sahyadrica Sardesai & Malpure. (A) Habit, (B) Leaves, (C) Spine shield. (D–F) Euphorbia nivulia Buch.-Ham. (D) Habit, (E) Leaves, (F) Spine shield. Photos A–C by Milind Sardesai, D–F by Nilesh Malpure
FIGURE 4. The Bayesian 50 in A new species of succulent plant discovered in limestone areas of Kyushu, Japan: Sedum kawaraense (Crassulaceae)
FIGURE 4. The Bayesian 50% majority rule consensus tree based on ITS sequences for Eastern Asian Sedum. The topology of the ML tree was highly compatible with the Bayesian tree. Bayesian posterior probabilities (PPs: left) and bootstrap percentages from the ML analysis (BP: right) are shown (See Table 1 for the abbreviations).
FIGURE 3 in A new species of succulent plant discovered in limestone areas of Kyushu, Japan: Sedum kawaraense (Crassulaceae)
FIGURE 3. The detailed morphology of Sedum sp. (S. kawaraense). A. Flower. B. Rosulate leaves. C. Cauline leaves. D. Young fruits. E. Mature fruit. Scale bars are 1 mm.
FIGURE 2 in A new species of succulent plant discovered in limestone areas of Kyushu, Japan: Sedum kawaraense (Crassulaceae)
FIGURE 2. The native habitats and habits of Sedum sp. (S. kawaraense). A. Kawara-dake, consists of three peaks. The first of the three peaks (Ichi-no-dake) has lost its upper half due to limestone mining. B. Habitat. On shady mossy limestone around the summit. C. Rosettes. D. Flower buds. E. Flowers. F. Fruits. [Photographed on 25 July 2022 (A & B), 29 August 2021 (C), 4 May 2021 (D), 16 May 2021 (E), 12 June 2022 (F) in Kawara-dake (A, B, E & F) and Ryu-ga-hana (C & D), Kyushu.]
Data from: Flowers of a South African succulent plant predict tomorrow’s weather, synchronizing flower opening with pollinator activity
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Data from: Contrasting water, dry matter and air contents distinguish orthophylls, sclerophylls and succophylls (leaf succulents)
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Data from: Insights on the evolution of plant succulence from a remarkable radiation in Madagascar (Euphorbia)
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Figure 2 from: Haevermans T, Mantuano D, Zhou M-Y, Lamxay V, Haevermans A, Blanc P, Li D-Z (2020) Discovery of the first succulent bamboo (Poaceae, Bambusoideae) in a new genus from Laos' karst areas, with a unique adaptation to seasonal drought. PhytoKeys 156: 125-137. https://doi.org/10.3897/phytokeys.156.51636
Figure 2 Transverse sections of leaf and culm of Laobambos calcareus. A Transverse section of a mature foliage leaf B mesophyll showing chlorenchyma with arm cells, fusoid cells and abaxial epidermis with papillae and trichomes C culm transverse section showing a medullary region (left side) with typical vascular bundles and cavities (asterisk) and a cortical region (right side) with isolated fiber bundles (arrow) D central vascular bundle in detail E cortical region in detail. Scale bars: 100 µm (A, D, E); 10 µm (B); 200 µm (C). (Photo credit Dulce Mantuano).
Figure 3 from: Haevermans T, Mantuano D, Zhou M-Y, Lamxay V, Haevermans A, Blanc P, Li D-Z (2020) Discovery of the first succulent bamboo (Poaceae, Bambusoideae) in a new genus from Laos' karst areas, with a unique adaptation to seasonal drought. PhytoKeys 156: 125-137. https://doi.org/10.3897/phytokeys.156.51636
Figure 3 Laobambos calcareus. A Plant in habitat, growing in karst crevices typically along with Euphorbia antiquorum L. and Dracaena cochinchinensis (Lour.) S.C.Chen B leaf complement C plant in dormant state, rhizome leaves removed to show the structure D rhizome with year+1 shoot cross-section, and young shoots E petiole insertion with inner and outer ligules (view from below) F culm sheath, ventral view. Scale bars: 1 m (A); 2 cm (B); 5 cm (C, D); 2 mm (E); 1 cm (F). (Illustration credit Agathe Haevermans).
Figure 1 from: Haevermans T, Mantuano D, Zhou M-Y, Lamxay V, Haevermans A, Blanc P, Li D-Z (2020) Discovery of the first succulent bamboo (Poaceae, Bambusoideae) in a new genus from Laos' karst areas, with a unique adaptation to seasonal drought. PhytoKeys 156: 125-137. https://doi.org/10.3897/phytokeys.156.51636
Figure 1 Laobambos calcareus. A Adult plant in habitat at the type locality during rainy season B detail of foliage leaves C detail of the waxy marks on fresh inflated culms, revealing the ridges present on the dried-state culm during the dormant period D detail of a node and a branch complement E view of base of the clump showing the greenish inflated fresh live culms, along with ridged dehydrated brown dead culms. (Photo credit Thomas Haevermans 05/2012).
Figure 5 from: Haevermans T, Mantuano D, Zhou M-Y, Lamxay V, Haevermans A, Blanc P, Li D-Z (2020) Discovery of the first succulent bamboo (Poaceae, Bambusoideae) in a new genus from Laos' karst areas, with a unique adaptation to seasonal drought. PhytoKeys 156: 125-137. https://doi.org/10.3897/phytokeys.156.51636
Figure 5 Phylogenetic placement of Laobambos calcareus, adapted from Zhou et al. 2017 (the original "Genus indet" has been replaced here by the newly described name).
Figure 4 from: Haevermans T, Mantuano D, Zhou M-Y, Lamxay V, Haevermans A, Blanc P, Li D-Z (2020) Discovery of the first succulent bamboo (Poaceae, Bambusoideae) in a new genus from Laos' karst areas, with a unique adaptation to seasonal drought. PhytoKeys 156: 125-137. https://doi.org/10.3897/phytokeys.156.51636
Figure 4 Scheme detailing Laobambos calcareus culm architecture illustrating the much elongated first internode, alternate branching with branch diameter matching the diameter of adjacent culm segment, and length of branches not exceeding the total length of the culm. (Illustration credit Agathe Haevermans).
Figure 1 in Aloe trinervis sp. nov.: A new succulent species from Indian Desert (Asphodelaceae)
Figure 1. Map showing occurrence of Aloe trinervis in the Indian desert.
Data from: Repeated origin of three-dimensional leaf venation releases constraints on the evolution of succulence in plants
Succulent water storage is a prominent feature among plants adapted to arid zones, but we know little about how succulence evolves and how it is integrated into organs already tasked with multiple functions. Increased volume in succulent leaves, for example, may result in longer transport distances between veins and the cells that they supply, which in turn could negatively impact photosynthesis [1, 2, 3 and 4]. We quantified water storage [5] in a group of 83 closely related species to examine the evolutionary dynamics of succulence and leaf venation. In most leaves, vein density decreased with increasing succulence, resulting in significant increases in the path length of water from veins to evaporative surfaces. The most succulent leaves, however, had a distinct three-dimensional (3D) venation pattern, which evolved 11–12 times within this small lineage, likely via multiple developmental pathways. 3D venation "resets" internal leaf distances, maintaining moderate vein density in extremely succulent tissues and suggesting that the evolution of extreme succulence is constrained by the need to maintain an efficient leaf hydraulic system. The repeated evolution of 3D venation decouples leaf water storage from hydraulic path length, facilitating the evolutionary exploration of novel phenotypic space.
Fig. 4. Species richness and Chao1 in Coleoptera Collected from Rotting Fishhook Barrel Cacti (Ferocactus wislizeni (Engelm.) Britton and Rose), with a Review of Nearctic Coleoptera Associated with Succulent Necrosis
Fig. 4. Species richness and Chao1 richness estimator curves.
FIG. 4 in Stem and caudex anatomy of succulent plant species
FIG. 4. — Transverse sections of stem and caudices, unless otherwise noted: A-C, Adenia glauca Schinz; A, caudex, conjunctive tissue; B, caudex, wood gelatinous fibers; C, caudex, parenchymatous wood; D-E, Cyphostemma juttae (Dinter & Gilg) Desc.; D, stem, multiseriate rays; E, caudex, parenchymatous wood; F, caudex wood, vasicentric enlarged axial parenchyma. Abbreviations: mr, multiseriate rays; sp, secondary phloem; ct, conjunctive tissue; p, enlarged parenchyma cells. Scale bars: 50 µm.
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Allen Brain Atlas
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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.