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95 results for “Lilium”
Lilium superbum (Liliaceae) - whole plant - in flower - general view
Image of Lilium superbum (Liliaceae) - whole plant - in flower - general view
Lilium superbum (Liliaceae) - leaf - basal or on lower stem
Image of Lilium superbum (Liliaceae) - leaf - basal or on lower stem
Lilium superbum (Liliaceae) - inflorescence - frontal view of flower
Image of Lilium superbum (Liliaceae) - inflorescence - frontal view of flower
Lilium superbum (Liliaceae) - inflorescence - lateral view of flower
Image of Lilium superbum (Liliaceae) - inflorescence - lateral view of flower
Lilium superbum (Liliaceae) - leaf - basal or on lower stem
Image of Lilium superbum (Liliaceae) - leaf - basal or on lower stem
Lilium superbum (Liliaceae) - whole plant - in flower - general view
Image of Lilium superbum (Liliaceae) - whole plant - in flower - general view
Dataset: Lilium N.V. (LILMW) Stock Performance
This dataset provides historical stock market performance data for specific companies. It enables users to analyze and understand the past trends and fluctuations in stock prices over time. This information can be utilized for various purposes such as investment analysis, financial research, and market trend forecasting.
Dataset: Lilium N.V. (LILM) Stock Performance
This dataset provides historical stock market performance data for specific companies. It enables users to analyze and understand the past trends and fluctuations in stock prices over time. This information can be utilized for various purposes such as investment analysis, financial research, and market trend forecasting.
Figure 6. Response curve showing how each environmental variable affected the Maxent prediction. Variables A, B in PhylOgeOgraphy and pOtential distributiOn OF Sturnira lilium and S. giannae (ChirOptera: PhyllOstOmidae) With range eXtensiOn FOr S. giannae in the CerradO and Pantanal biOmes
Figure 6. Response curve showing how each environmental variable affected the Maxent prediction. Variables A, B, and C were the ones that most affected the potential distribution of S. giannae, and D, E, and F most affected the potential distribution of S. lilium. The curves show the average response of the 10 replicate Maxent runs (red) and the standard deviation (blue).
Figure 2 in PhylOgeOgraphy and pOtential distributiOn OF Sturnira lilium and S. giannae (ChirOptera: PhyllOstOmidae) With range eXtensiOn FOr S. giannae in the CerradO and Pantanal biOmes
Figure 2. Detail of the teeth in S. lilium (A and D – MN 82228) and S. giannae (B and E – MN 84766, C and F – MN 82217). The shape of the upper internal incisor unicuspid in S. lilium (A) and unicuspid or bicuspid in S. giannae (respectively B, C). Metaconid of first inferior molar (m1) wide mesodistally and short cervico-occlusal (D, E, and F). Metaconid of second inferior molar (m2) large mesodistally in S. lilium (D) and in S. giannae (F), or short mesodistally and long cervico-occlusally (E) in S. giannae. Scale bars: 1 mm.
Figure 4 in PhylOgeOgraphy and pOtential distributiOn OF Sturnira lilium and S. giannae (ChirOptera: PhyllOstOmidae) With range eXtensiOn FOr S. giannae in the CerradO and Pantanal biOmes
Figure 4. Map showing the distribution and location of analyzed samples of S. giannae in gray circles and blue boundaries, and of S. lilium in black circles and green boundaries. The blue star is the type locality of S. giannae, and the green star is the type locality of S. lilium. The dotted black line marks the extent of S. giannae 's territory in Brazil: Mato Grosso State (1) Barão de Melgaço, and Maranhão State (2) Alto Parnaíba. Other localities are in the Appendix 1.
Seed germination data of Lilium pomponium
<p>Gernìmination data of seeds of Lilium pomponium</p>
FIGURES 611. 67. Fasciolaria lilium ANSP 234370. 6 in A new bathyal Fasciolaria (Mollusca: Caenogastropoda) from the southwestern Caribbean
FIGURES 611. 67. Fasciolaria lilium ANSP 234370. 6, Ventral view (length 123.5 mm, width 50.4 mm); 7, Detail of protoconch, scale bar 5 mm. 89. Fasciolaria tulipa. 8, ANSP 216226 ventral view (length 182.8 mm, width 80.6 mm); 9, MZSP 35530 detail of protoconch, scale bar 5 mm. 1011. Fasciolaria rutila ANSP 244337. 10, Ventral view (length 123.3 mm, width 43.6 mm); 11 detail of protococh, scale bar 5 mm.
Data from: Papilio butterfly vs. hawkmoth pollination explains floral syndrome dichotomy in a clade of Lilium
<p>This dataset contains data described in the paper recently accepted by Botanical Journal of the Linnean Society:" Liu C-Q, Niu Y, Lu Q-B, Chen Z, Cai B, Fang Y, Gao Y-D. (2021) <i><span>Papilio</span></i> butterfly vs. hawkmoth pollination explains floral syndrome dichotomy in a clade of <i><span>Lilium</span></i>".</p> <div>The <span>Leucolirion </span>clade of <span>Lilium</span> contains species with either tepal-recurved or trumpet-shaped flowers. We hypothesized that the tepal-recurved flowers might be pollinated by butterflies and/or birds while the trumpet-shaped flowers might permit visitation by a variety of hawkmoths. <span>Lilium leucanthum</span> has trumpet shaped flowers, and some populations of this species show dark coloration on the floral outer surface, suggesting pollination by mammals. We examined the dependence of reproduction on pollinators by pollen load analysis and pollination experiments. We also analysed floral traits to contrast the two floral syndromes involving different lepidopteran groups.</div> <div> </div> <div>The tepal-recurved lilies delivered pollen by <span>Papilio</span> butterflies with pollen predominantly attached to the hindwings. The trumpet-shaped flowers attracted diverse species with proboscises of different lengths. Self-incompatibility prevails throughout the clade. Exclusion of lepidopteran visitors resulted in very low seed set. The butterfly- and hawkmoth-pollinated species display contrasting floral syndromes. Thus, the dichotomy in floral syndrome, including nectar, color, and morphology in the <span>Leucolirion</span> clade is associated with <span>Papilio</span> butterfly vs. hawkmoth pollination. Intraspecific variation in colour of the floral outer surface of <span>L</span>. <span>leucanthum</span> was also confirmed by our measurements.</div> <div> </div> <div>These data can be used in further research on the floral ecology and evolution of Lilium and may also be needed in reviews of flower-hawkmoth interactions and hawkmoth biology.</div>
On following pages: 122. Honduran Yellow-shouldered Bat (Sturnira hondurensis); 123. Burton's Yellow-shouldered Bat (Sturnira burtonlimi); 124. Highland Yellow-shouldered Bat (Sturnira ludovici); 125. Adriana's Yellow-shouldered Bat (Sturnira adrianae); 126. Tschudi's Yellow-shouldered Bat (Sturnira oporaphilum); 127. Mistratoan Yellow-shouldered Bat (Sturnira mistratensis); 128. Soriano's Yellow-shouldered Bat (Sturnira sorianoi); 129. Choco Yellow-shouldered Bat (Sturnira koopmanhill)); 130. Talamancan Yellow-shouldered Bat (Sturnira mordax); 131. Perla Yellow-shouldered Bat (Sturnira perla); 132. Tilda's Yellow-shouldered Bat (Sturnira tildae); 133. Hairy Yellow-shouldered Bat (Sturnira erythromos); 134. Bogota Yellow-shouldered Bat (Sturnira bogotensis); 135. Greater Yellow-shouldered Bat (Sturnira magna); 136. Northern Yellow-shouldered Bat (Sturnira parvidens); 137 Baker's Yellow-shouldered Bat (Sturnira baker); 138. Little Yellow-shouldered Bat (Sturnira lilium); 139. Gianna's Yellow-shouldered Bat (Sturnira giannae); 140. Dominica Yellow-shouldered Bat (Sturnira angell); 141. Paulson's Yellow-shouldered Bat (Sturnira paulsoni); 142. Luis's Yellow-shouldered Bat (Sturnira luisi). in Phyllostomidae
On following pages: 122. Honduran Yellow-shouldered Bat (Sturnira hondurensis); 123. Burton's Yellow-shouldered Bat (Sturnira burtonlimi); 124. Highland Yellow-shouldered Bat (Sturnira ludovici); 125. Adriana's Yellow-shouldered Bat (Sturnira adrianae); 126. Tschudi's Yellow-shouldered Bat (Sturnira oporaphilum); 127. Mistratoan Yellow-shouldered Bat (Sturnira mistratensis); 128. Soriano's Yellow-shouldered Bat (Sturnira sorianoi); 129. Choco Yellow-shouldered Bat (Sturnira koopmanhill)); 130. Talamancan Yellow-shouldered Bat (Sturnira mordax); 131. Perla Yellow-shouldered Bat (Sturnira perla); 132. Tilda's Yellow-shouldered Bat (Sturnira tildae); 133. Hairy Yellow-shouldered Bat (Sturnira erythromos); 134. Bogota Yellow-shouldered Bat (Sturnira bogotensis); 135. Greater Yellow-shouldered Bat (Sturnira magna); 136. Northern Yellow-shouldered Bat (Sturnira parvidens); 137 Baker's Yellow-shouldered Bat (Sturnira baker); 138. Little Yellow-shouldered Bat (Sturnira lilium); 139. Gianna's Yellow-shouldered Bat (Sturnira giannae); 140. Dominica Yellow-shouldered Bat (Sturnira angell); 141. Paulson's Yellow-shouldered Bat (Sturnira paulsoni); 142. Luis's Yellow-shouldered Bat (Sturnira luisi).
Distribution. Known from two localities in SW Ecuador (El Oro Province); more recently, it has been recorded in the Pacific coast of Colombia (Choco and Valle del Cauca departments), and NW Peru (Tumbes Department). Known distribution is changing as existing specimens from NW South America (listed as S. Lilium parvidens) are reidentified as this species; new geographic and ecological information is being gathered in the process, and it could be locally common at some specific habitats. in Phyllostomidae
Distribution. Known from two localities in SW Ecuador (El Oro Province); more recently, it has been recorded in the Pacific coast of Colombia (Choco and Valle del Cauca departments), and NW Peru (Tumbes Department). Known distribution is changing as existing specimens from NW South America (listed as S. Lilium parvidens) are reidentified as this species; new geographic and ecological information is being gathered in the process, and it could be locally common at some specific habitats.
FIGURE 1 in Lilium punctulatum (Liliaceae), a rare and endangered species from northwestern Yunnan, China, elevated from varietal to species status
FIGURE 1. Morphological comparison of four species in Nomocharis. A.–E. Lilium punctulatum. A. Perianth spots. B. Spots at the base of perianth. C. Bulb. D. Habitat. E. Anatomical view. F.,G. Lilium pardanthinum. H.,I. Lilium sealyi. J.,K. Lilium basilissum. Photographs B,C,F and I provided by Li Meng of Nanjing Forestry University.
FIGURE 2 in Lilium punctulatum (Liliaceae), a rare and endangered species from northwestern Yunnan, China, elevated from varietal to species status
FIGURE 2. Distribution of L. punctulatum and L. pardanthinum. Red circles represent L. punctulatum and green circles represent L. pardanthinum. Gray shadow represents the concentrated distribution area of L. pardanthinum.
FIGURE 4. Lilium shenxianjuense. A in Lilium shenxianjuense (Liliaceae), a new species from Zhejiang, China
FIGURE 4. Lilium shenxianjuense. A. Habit (showing lower part and bulb). B. Habit (showing upper part and inflorescence). C. Papillose indumentum on stem and leaf. D. Outer tepal. E. Inner tepal. F. Stamen. G. Ovary and style. H. Capsule. I. Seed. Drawn by Xiao-Feng Jin from Xu & Zhu 1453 (ZM).
FIGURE 2 in Lilium shenxianjuense (Liliaceae), a new species from Zhejiang, China
FIGURE 2. Maximum likelihood (ML) tree of Lilium inferred from complete plastome DNA sequences. Numbers at nodes represent maximum likelihood bootstrap percentages (BP) and only those are less than 100 are shown. The Lilium sectional treatments of Comber (1949) and the section Nomocharis defined by Gao et al. (2012) are indicated on the right. The new species, Lilium shenxianjuense, is in bold font.
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