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227 results for “lake morphology”
Figure 17 from: Karanovic I, Sitnikova TY (2017) Morphological and molecular diversity of Lake Baikal candonid ostracods, with description of a new genus. ZooKeys 684: 19-56. https://doi.org/10.3897/zookeys.684.13249
Figure 17 - 50% majority rule consensus tree of the family Candonidae constructed from the concatenated dataset of two nuclear (18S & 28S) and one mitochondrial (16S) markers. Numbers on the branches represent Bayesian posterior probabilities. Underlined taxa represent type species. Grey shaded taxa are Lake Baikal species. Tree rooted with Physocypria sp. Tribes are labeled with letters: A Candonini B Cryptocandonini C Candonopsini D Trapezicandonini E Humphreyscandonini.
Figure 15 from: Karanovic I, Sitnikova TY (2017) Morphological and molecular diversity of Lake Baikal candonid ostracods, with description of a new genus. ZooKeys 684: 19-56. https://doi.org/10.3897/zookeys.684.13249
Figure 15 - Light photographs of Zenker organ. A Baicalocandona rupestris disona B Baicalocandona sp. C Mazepovacandona navitarum D Mazepovacandona directa E Mazepovacandona orbiculata F Mazepovacandona spicata. Not to scale.
Figure 14 from: Karanovic I, Sitnikova TY (2017) Morphological and molecular diversity of Lake Baikal candonid ostracods, with description of a new genus. ZooKeys 684: 19-56. https://doi.org/10.3897/zookeys.684.13249
Figure 14 - Light photographs of hemipenis. A Baicalocandona rupestris disona B Baicalocandona sp. C Mazepovacandona navitarum D Mazepovacandona directa E Mazepovacandona orbiculata F Mazepovacandona spicata. Not to scale.
Figure 13 from: Karanovic I, Sitnikova TY (2017) Morphological and molecular diversity of Lake Baikal candonid ostracods, with description of a new genus. ZooKeys 684: 19-56. https://doi.org/10.3897/zookeys.684.13249
Figure 13 - Line drawings of Baicalocandona rupestris disona (Mazepova, 1990) A-E, G, H, I, K, M male F, J, L female A A1 B A2 C Mxl-palp D Md-palp E, G prehensile palps F details of the L5 setae H L6 I L7 J, M UR K hemipenis.
Figure 12 from: Karanovic I, Sitnikova TY (2017) Morphological and molecular diversity of Lake Baikal candonid ostracods, with description of a new genus. ZooKeys 684: 19-56. https://doi.org/10.3897/zookeys.684.13249
Figure 12 - SEM photographs of Baicalocandona rupestris disona (Mazepova, 1990). A, B, E, F male C, D female A RV, lateral view B LV, lateral view C RV, lateral view D LV, lateral view E details of the fine surface ornamentation F details of shell surface pores and sensilla.
Figure 6 from: Karanovic I, Sitnikova TY (2017) Morphological and molecular diversity of Lake Baikal candonid ostracods, with description of a new genus. ZooKeys 684: 19-56. https://doi.org/10.3897/zookeys.684.13249
Figure 6 - SEM photographs of Mazepovacandona navitarum (Mazepova, 1976). Male. A LV, lateral view B details of the surface ornamentation C RV, lateral view D details of the anterior end LV.
Figure 11 from: Karanovic I, Sitnikova TY (2017) Morphological and molecular diversity of Lake Baikal candonid ostracods, with description of a new genus. ZooKeys 684: 19-56. https://doi.org/10.3897/zookeys.684.13249
Figure 11 - Line drawings of Mazepovacandona spicata (Mazepova, 1982). A A1 B Mxl-palp C A2 D Md-palp E, F prehensile palps G L7 H L6 I UR J hemipenis. Scales = 0. 1 mm.
Figure 1 from: Karanovic I, Sitnikova TY (2017) Morphological and molecular diversity of Lake Baikal candonid ostracods, with description of a new genus. ZooKeys 684: 19-56. https://doi.org/10.3897/zookeys.684.13249
Figure 1 - SEM photographs of Mazepovacandona directa (Bronstein, 1947). A, B, E, F male C, D female: A RV, lateral view B LV, lateral view C RV, lateral view D LV, lateral view E detail of a sensilla F detail of the shell surface.
Figure 10 from: Karanovic I, Sitnikova TY (2017) Morphological and molecular diversity of Lake Baikal candonid ostracods, with description of a new genus. ZooKeys 684: 19-56. https://doi.org/10.3897/zookeys.684.13249
Figure 10 - SEM photographs of Mazepovacandona spicata (Mazepova, 1982). Male. A RV, lateral view B LV, lateral view C details of the posterior end RV D details of the shell surface.
Figure 3 from: Karanovic I, Sitnikova TY (2017) Morphological and molecular diversity of Lake Baikal candonid ostracods, with description of a new genus. ZooKeys 684: 19-56. https://doi.org/10.3897/zookeys.684.13249
Figure 3 - Line drawings of Mazepovacandona directa (Bronstein, 1947). A, B male C–E female A L7 B hemipenis C UR D A2 E genital segment. scales = 0.1 mm.
Figure 9 from: Karanovic I, Sitnikova TY (2017) Morphological and molecular diversity of Lake Baikal candonid ostracods, with description of a new genus. ZooKeys 684: 19-56. https://doi.org/10.3897/zookeys.684.13249
Figure 9 - Line drawings Mazepovacandona orbiculata (Mazepova, 1990). Male. A A2 B, C prehensile palps D L6 E L7 F hemipenis G UR. Scale = 0.1 mm.
Fig. 3 in Morphological, ecological and toxicological aspects of Raphidiopsis raciborskii (Cyanobacteria) in a eutrophic urban subtropical lake in southern Brazil
Fig. 3. Bar graphs indicating the specific densities (ind. ml-1) of Raphidiopsis raciborskii and other phytoplankton organisms (Cyanobacteria, Chlorophyta, Heterokontophyta, Euglenophyta and unidentified) sampled from the lake inflow (a) and outflow (b), every month from November 2009 to November 2010.
Fig. 5a, b in Morphological, ecological and toxicological aspects of Raphidiopsis raciborskii (Cyanobacteria) in a eutrophic urban subtropical lake in southern Brazil
Fig. 5a, b. Bar graphs showing the percentage of Raphidiopsis raciborskii trichomes that are vegetative cells only, with akinetes, with heterocytes, or with both heterocytes and akinetes. Data represent samples taken from the lake inflow (a) and outflow (b), every month from November 2009 to November 2010.
Figure 2 in The tubificids (Annelida, Oligochaeta) of Lake Trasimeno and Lake Piediluco in Central Italy, with a study of SEM morphology of some species
Figure 2. Chaetae under SEM. Branchiura sowerbyi: a) anterior hair (H) and bifid (B 1) dorsal chaetae; b) detail of a bifid dorsal chaeta (B) showing the jagged border; c) postclitellar dorsal chaetae; d) bundles of ventral chaetae. Limnodrilus 1 hoffmeisteri: e) bundles of anterior dorsal chaetae, detailed in f); g) bundles of ventral chaetae.
Figure 1 in The tubificids (Annelida, Oligochaeta) of Lake Trasimeno and Lake Piediluco in Central Italy, with a study of SEM morphology of some species
Figure 1. Location of the sampling stations: a) Lake Trasimeno (st. 1–4); b) Lake Piediluco (st. 1–10). The arrows in bold indicate the inlet and the outlet of Lake Piediluco.
FIGURES 3–27 in Morphology and ultrastructure of Hippodonta qinghainensis sp. nov. (Bacillariophyceae), a new diatom from Lake Qinghai, China
FIGURES 3–27. LM images of Hippodonta qinghainensis. Scale bar = 10 µm.
FIGURE 1 in Morphology and ultrastructure of Hippodonta qinghainensis sp. nov. (Bacillariophyceae), a new diatom from Lake Qinghai, China
FIGURE 1. Geographical location of the sampling sites in Lake Qinghai.
FIG. 4 in Morphological description and molecular phylogeny of two diatom clones from the genus Ulnaria (Kützing) Compère isolated from an ultraoligotrophic lake at the Pole of Cold in the Northern Hemisphere, Republic of Sakha (Yakutia), Russia
FIG. 4. — Phylogenetic analysis of rbcL gene fragments, carried out by the maximum likelihood method. In the tree nodes there are bootstrap values obtained for n = 1000 replicas. Evolution distances are determined by the GTR method with Gamma distributed equal to four. ● Marked sequences obtained in this work.
Data from: Morphological responses of two plant species from different elevations in the Dongting Lake wetlands, China, to variation in water levels
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Data from: Evidence for morphological and adaptive genetic divergence between lake and stream habitats in European minnows (Phoxinus phoxinus, Cyprinidae)
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