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51 results for “Inflata”
Fig. 35. Laboulbenia spp. A. L. inflata Thaxt. Female thallus paired with a in Laboulbeniomycetes (Fungi, Ascomycota) of Denmark
Fig. 35. Laboulbenia spp. A. L. inflata Thaxt. Female thallus paired with a diminutive male (arrow). – B–C. L. kajanensis Huldén. Mature thalli. – D–E. L. lecoareri (Balazuc) Huldén. D. Paired mature and young thalli. E. Mature thallus. Scale bars: 50 µm. Photographs from slides ZMUC C-F-122828 (A), ZMUC C-F-122697 (B), ZMUC C-F-123372 (C), ZMUC C-F-123475 (D–E).
Lobelia inflata (Campanulaceae) - leaf - margin of upper + lower surface
Image of Lobelia inflata (Campanulaceae) - leaf - margin of upper + lower surface
Lobelia inflata (Campanulaceae) - leaf - basal or on lower stem
Image of Lobelia inflata (Campanulaceae) - leaf - basal or on lower stem
Lobelia inflata (Campanulaceae) - stem - showing leaf bases
Image of Lobelia inflata (Campanulaceae) - stem - showing leaf bases
Lobelia inflata (Campanulaceae) - inflorescence - frontal view of flower
Image of Lobelia inflata (Campanulaceae) - inflorescence - frontal view of flower
Lobelia inflata (Campanulaceae) - inflorescence - lateral view of flower
Image of Lobelia inflata (Campanulaceae) - inflorescence - lateral view of flower
Lobelia inflata (Campanulaceae) - whole plant - in flower - general view
Image of Lobelia inflata (Campanulaceae) - whole plant - in flower - general view
FIGURE 51. Stylina inflata Fromentel, 1856, MGB 83258. 1 in A Lower Valanginian coral fauna from the South Iberian Palaeomargin (Internal Prebetic, SE Spain)
FIGURE 51. Stylina inflata Fromentel, 1856, MGB 83258. 1: transversal thin section. 2: transversal thin section, detail. 3: longitudinal thin section. Scale 1 mm.
Figures 1-6. Piona inflata Sokolow, 1927 in On the taxonomic status of the water mites Piona inflata Sokolow, 1927 (Acari, Hydrachnidia: Pionidae)
Figures 1-6. Piona inflata Sokolow, 1927, male: 1 – dorsal platelets, 2 - seta Fch, 3 – idiosoma, ventral view; 4 – ejaculatory complex, 5 - chelicera, 6 – pedipalp. Scale bars: 1, 5 = 100 μm, 2, 4, 6 = 50 μm, 3 = 200 μm.
Figures 14-18. Piona inflata Sokolow, 1927 in On the taxonomic status of the water mites Piona inflata Sokolow, 1927 (Acari, Hydrachnidia: Pionidae)
Figures 14-18. Piona inflata Sokolow, 1927, female: 14–17 – acetabular plate; 18 – I-Leg-4-6. Scale bar: 14-18 = 100 μm.
Figures 12-13. Piona inflata Sokolow, 1927 in On the taxonomic status of the water mites Piona inflata Sokolow, 1927 (Acari, Hydrachnidia: Pionidae)
Figures 12-13. Piona inflata Sokolow, 1927, female: 12 – idiosoma, ventral view; 13 – pedipalp, lateral view. Scale bars: 12 = 200 μm, 13 = 50 μm.
Figures 7-11. Piona inflata Sokolow, 1927 in On the taxonomic status of the water mites Piona inflata Sokolow, 1927 (Acari, Hydrachnidia: Pionidae)
Figures 7-11. Piona inflata Sokolow, 1927, male: 7 – I-Leg-4-6, 8 – III-Leg-4-6, 9 – IV-Leg-4-6; 10 – claw of leg I, 11 - claws of leg III. Scale bars: 7-9 = 100 μm, 10, 11 = 50 μm.
Figure 13. Paranaitis inflata. A in A revision of Paranaitis Southern, 1914 (Polychaeta: Phyllodocidae)
Figure 13. Paranaitis inflata. A, paratype (USNM-81484). B, holotype. C–F, specimen from Hawkesbury River, Australia (AM W196572). A, anterior end, dorsal view. B, posterior end, ventral view. C, parapodium of segment 11, anterior view. D, same, posterior view. E, parapodium of segment 87, anterior view. F, same, posterior view.
Quantitative disease resistance in wild Silene vulgaris to its endemic pathogen Microbotryum silenes-inflatae collection sites
<p>Details presented on the collections sites of <em>Silene vulgaris</em> seeds from natural populations, for use in the study, Quantitative Disease Resistance in wild <em>Silene vulgaris</em> to its Endemic Pathogen <em>Microbotryum silenes-inflatae</em>. In this study the seeds were collected a mixed half and full sibling families (seeds from the same maternal plants) and used to produce plants that were then cloned by vegetative cuttings. The infection rates of these clones, as well as of their F1 offspring, by the fungus Microbotryum silenes-inflatae are also presented.</p>
Genotype-environment interaction and the maintenance of genetic variation: an empirical study of Lobelia inflata (Campanulaceae)
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Quantitative disease resistance in wild Silene vulgaris to its endemic pathogen Microbotryum silenes-inflatae collection sites
Open the record for dataset details and reuse information.
Data from: The continuum between semelparity and iteroparity: plastic expression of parity in response to season length manipulation in Lobelia inflata.
Background: Semelparity and iteroparity are considered to be distinct and alternative life-history strategies, where semelparity is characterized by a single, fatal reproductive episode, and iteroparity by repeated reproduction throughout life. However, semelparous organisms do not reproduce instantaneously; typically reproduction occurs over an extended time period. If variation in reproductive allocation exists within such a prolonged reproductive episode, semelparity may be considered iteroparity over a shorter time scale.This continuity hypothesis predicts that "semelparous" organisms with relatively low probability of survival after age at first reproduction will exhibit more extreme semelparity than those with high probability of adult survival. This contrasts with the conception of semelparity as a distinct reproductive strategy expressing a discrete, single, bout of reproduction, where reproductive phenotype is expected to be relatively invariant. Here, we manipulate expected season length—and thus expected adult survival—to ask whether Lobelia inflata, a classic "semelparous" plant, exhibits plasticity along a semelparous-iteroparous continuum. Results: Groups of replicated genotypes were manipulated to initiate reproduction at different points in the growing season in each of three years. In lab and field populations alike, the norm of reaction in parity across a season was as predicted by the continuity hypothesis: as individuals bolted later, they showed shorter time to, and smaller size at first reproduction, and multiplied their reproductive organs through branching, thus producing offspring more simultaneously. Conclusions: This work demonstrates that reproductive effort occurs along a semelparous-iteroparous continuum within a "semelparous" organism, and that variation in parity occurs within populations as a result of phenotypic plasticity.
FIGURES 1–4. Scyletria inflata Bishop & Crosby 1938. 1 in Review of the Nearctic genus Scyletria Bishop & Crosby (Araneae, Linyphiidae), with a transfer of S. jona to Mermessus O. Pickard-Cambridge
FIGURES 1–4. Scyletria inflata Bishop & Crosby 1938. 1. Male palpus, ventral view; 2. Male palpus, retrolateral view; 3. Expanded male palpus, schematic illustration; 4. Male palpal tibia, dorsal view. Scale bars = 0.1 mm.
Lobelia inflata (Campanulaceae) - inflorescence - lateral view of flower
Image of Lobelia inflata (Campanulaceae) - inflorescence - lateral view of flower
Lobelia inflata (Campanulaceae) - leaf - margin of upper + lower surface
Image of Lobelia inflata (Campanulaceae) - leaf - margin of upper + lower surface
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