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36 results for “seed micromorphology”
FIGURE 6 in Seed micromorphology of representatives of holoparasitic Orobanchaceae genera from the Caucasus region and its taxonomic significance
FIGURE 6. Confocal laser scanning micrographs of selected Orobanchaceae seeds. A: Cistanche armena. B: Diphelypaea coccinea. C: D. tournefortii. D: Orobanche cernua. E: O. zajaciorum. F: O. schelkovnikovii. G: O. colorata. H–I: O. coerulescens. J: Phelipanche cernua. K: P. libanotica. L: P. purpurea. Scale bar: 50 μm.
FIGURE 4 in Seed micromorphology of representatives of holoparasitic Orobanchaceae genera from the Caucasus region and its taxonomic significance
FIGURE 4. Scanning electron micrographs of selected Orobanchaceae seeds. A–C: Orobanche inulae. D–F: O. cicerbitae. G–I: O. gamosepala. J–L: O. colorata. M–O: O. coerulescens. Scale bars: 10 μm (B, C, E–I, K, L, N, O), 100 μm (A, D, J, M).
FIGURE 2 in Seed micromorphology of representatives of holoparasitic Orobanchaceae genera from the Caucasus region and its taxonomic significance
FIGURE 2. Scanning electron micrographs of selected Orobanchaceae seeds. A–C: Cistanche armena. D–F: C. salsa. G–I: Diphelypaea coccinea. J–L: D. tournefortii. Scale bars: 10 μm (B, C, E–L), 100 μm (A, D).
FIGURE 1 in Seed micromorphology of representatives of holoparasitic Orobanchaceae genera from the Caucasus region and its taxonomic significance
FIGURE 1. ZOOM micrographs of selected Orobanchaceae seeds. A, D–F: Cistanche armena. B, G–J: Diphelypaea coccinea. K: Orobanche schelkovnikovii. L: O. coerulescens. M: O. zajaciorum. N: Phelipanche cernua. O: P. libanotica. P: P. purpurea. Scale bars: 200 μm (A, B, C), 100 μm (the rest).
FIGURE 5. Rhododendron taipaoense T.C in A revision of the Rhododendron taipaoense complex (subg. Tsutsusi sect. Tsutsusi, Ericaceae), based on observations of morphological characters and seed micromorphology
FIGURE 5. Rhododendron taipaoense T.C. Wu & P.C. Tam. A. flowering shoot. B. indumentum of young shoot. C. leaf. D. flower. E. stamen. F. pistil. G. carpsule. A-F from S.H. Jin & J. Xu DP-008 (HTC), G from B.Y. Ding & B.J. Fang 8330 (HTC). [drawn by Xiao- Feng Jin]
FIGURE 3 in A revision of the Rhododendron taipaoense complex (subg. Tsutsusi sect. Tsutsusi, Ericaceae), based on observations of morphological characters and seed micromorphology
FIGURE 3. Variation (mean ± SD, min and max) of the ratio of stamen length/pistil length in Rhododendron taipaoense and the related taxa. A. Minimum. B. Maximum. C–D. Standard deviation. M. Mean.
FIGURE 1 in A revision of the Rhododendron taipaoense complex (subg. Tsutsusi sect. Tsutsusi, Ericaceae), based on observations of morphological characters and seed micromorphology
FIGURE 1. UPGMA dendrogam of Rhododendron taipaoense and the related taxa, based on the analysis of 15 diagnostic characters in 146 individuals.
FIGURE 2 in A revision of the Rhododendron taipaoense complex (subg. Tsutsusi sect. Tsutsusi, Ericaceae), based on observations of morphological characters and seed micromorphology
FIGURE 2. PCoA (principal coordinate analysis) of Rhododendron taipaoense and the related taxa, based on analysis of 15 diagnostic characters in 146 individuals. (1) R. falcinellum. (2) R. ruflum. (3) R. piceum. (4) R. taipaoense. (5) R. florulentum. (6) R. rufoindumentum. (7) R. spadiceum. (8) R. apricum. (9) R. hepaticum. Two principal coordinates explain 88.81% of the total variation.
FIGURE 4 in A revision of the Rhododendron taipaoense complex (subg. Tsutsusi sect. Tsutsusi, Ericaceae), based on observations of morphological characters and seed micromorphology
FIGURE 4. Micromorphology of the seed testa of Rhododendron taipaoense and the related taxa. A. Seed shape of R. spadiceum. B. Tail shape of R. spadiceum. C. Seed surface of R. spadiceum. D. Seed shape of R. apricum. E. Hilum shape of R. apricum. F. Seed shape of R. falcinellum. G. Seed surface of R. falcinellum. H. Seed shape of R. florulentum. I. Hilum shape of R. florulentum. J. Seed shape of R. piceum. K. Hilum shape of R. piceum. L. Seed shape of R. rufoindumentum. M. Tail shape of R. rufoindumentum. N. Seed shape of R. hepaticum. O. Hilum shape of R. hepaticum. P. Seed shape of R. rufulum. Q. Seed shape of R. taipaoense. R. Tail shape of R. taipaoense. Scales bar: A, D, F, H, J, L, N, P and Q = 500 µm. B, E, I, K, M, O and R = 100 µm. C and G = 50 µm. A–C from B.Y. Ding & B.J. Fang 8360 (HTC). D, E from B.Y. Ding & B.J. Fang 8349 (HTC). F, G from B.Y. Ding & B.J. Fang 8332 (HTC). H, I from B.Y. Ding & B.J. Fang 8348 (HTC). J, K from Nanling Bot. Geo. Exped. 7364 (IBSC). L, M from B.Y. Ding & B.J. Fang 8335 (HTC). N, O from Nanling Bot. Geo. Exped. 7330 (IBSC). P from B.Y. Ding & B.J. Fang 8366 (HTC). Q, R from T.C. Wu s.n. (IBSC).
FIGURE 3 in Seed Micromorphology of Eleven Species of Pleione (Orchidaceae)
FIGURE 3. Cluster analysis of seed epidermis characters of 11 Pleione species.
FIGURE 1 in Low and high elevation Heliosperma species (Caryophyllaceae)-insight based on chromosome number, pollen characters and seed micromorphology
FIGURE 1. Map of sampled Heliosperma species in Albania, North Macedonia and Kosovo.
FIGURE 6 in A revision of the Rhododendron taipaoense complex (subg. Tsutsusi sect. Tsutsusi, Ericaceae), based on observations of morphological characters and seed micromorphology
FIGURE 6. Distribution map of Rhodedendron taipaoense T.C. Wu & P.C. Tam.
Figure 4 from: Güler N (2016) Seed micromorphology of Orchis Tourn. ex L. (Orchidaceae) and allied genera growing in Edirne province, Turkey. PhytoKeys 68: 9-25. https://doi.org/10.3897/phytokeys.68.8746
Figure 4 - Light microscope (A, D) and scanning electron microscope (B, C, E, F) photographs of Orchis simia subsp. simia (A, B, C) and Neotinea tridentata subsp. tridentata (D, E, F) seeds. Scale bars: 0.1 mm (A, B, D, E) and 0.01 mm (C, F).
Figure 2 from: Güler N (2016) Seed micromorphology of Orchis Tourn. ex L. (Orchidaceae) and allied genera growing in Edirne province, Turkey. PhytoKeys 68: 9-25. https://doi.org/10.3897/phytokeys.68.8746
Figure 2 - Light microscope (A, D) and scanning electron microscope (B, C, E, F) photographs of Anacamptis morio subsp. morio (A, B, C) and Anacamptis papilionacea (D, E, F) seeds. Scale bars: 0.1 mm (A, B, D, E) and 0.01 mm (C, F).
Figure 3 from: Güler N (2016) Seed micromorphology of Orchis Tourn. ex L. (Orchidaceae) and allied genera growing in Edirne province, Turkey. PhytoKeys 68: 9-25. https://doi.org/10.3897/phytokeys.68.8746
Figure 3 - Light microscope (A, D) and scanning electron microscope (B, C, E, F) photographs of Orchis mascula subsp. mascula (A, B, C) and Orchis purpurea subsp. purpurea (D, E, F) seeds. Scale bars: 0.1 mm (A, B, D, E) and 0.01 mm (C, F).
Figure 1 from: Güler N (2016) Seed micromorphology of Orchis Tourn. ex L. (Orchidaceae) and allied genera growing in Edirne province, Turkey. PhytoKeys 68: 9-25. https://doi.org/10.3897/phytokeys.68.8746
Figure 1 - Light microscope (A, D) and scanning electron microscope (B, C, E, F) photographs of Anacamptis coriophora (A, B, C) and Anacamptis laxiflora subsp. laxiflora (D, E, F) seeds. Scale bars: 0.1 mm (A, B, D, E) and 0.01 mm (C, F).
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