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76 results for “Lacerta”
Figure 2 in Factors influencing the level of infestation of Ixodes ricinus (Acari: Ixodidae) on Lacerta agilis and Zootoca vivipara (Squamata: Lacertidae)
Figure 2 Mean number (± SE) of ticks per body size class (I to IV), and sex-age category (juv: juvenile; F: female, M: male), found in (A) transformed conditions and (B) natural conditions.
Figure 1 in Factors influencing the level of infestation of Ixodes ricinus (Acari: Ixodidae) on Lacerta agilis and Zootoca vivipara (Squamata: Lacertidae)
Figure 1 Mean number (± SE) of ticks per body size class (I to IV) and Sex-age category (juv: juvenile; F: female, M: male), found on (A) Zootoca viviparaand (B)Lacerta agilis.
Figure 3 in Factors influencing the level of infestation of Ixodes ricinus (Acari: Ixodidae) on Lacerta agilis and Zootoca vivipara (Squamata: Lacertidae)
Figure 3 Mean number of ticks found on different locations on the lizards bodies (± standard errors).
Fig. 2 in Morphological Features Of The Digestive Tube In Sand Lizards, Lacerta Agilis (Sauria, Lacertidae)
Fig. 2. Fragment of microscopic structure of stomach wall of sand lizard: 1 — stomach wall; 2 — stomach contents; 3 — gastric glands; 4 — columnar epithelium; 5 — cubic epithelium. Hematoxilin and eosin. ×100; 400.
Fig. 5 in Morphological Features Of The Digestive Tube In Sand Lizards, Lacerta Agilis (Sauria, Lacertidae)
Fig. 5. Fragment of microscopic structure of large intestine of sand lizard: 1 — intestine wall; 2 — epithelial cells; 3 — lymphoid formations. Hematoxilin and eosin. ×100; 400.
Fig. 1 in Morphological Features Of The Digestive Tube In Sand Lizards, Lacerta Agilis (Sauria, Lacertidae)
Fig. 1. The topography of internal organs of sand lizard: (A): 1 — heart; 2 — lung; 3 — liver; 4 — stomach; 5 — small intestine; 6 — large intestine; 7 — ovary; (B): 1 — tongue; (C): 1 — stomach; 2 — pylorus; 3 — small intestine.
Fig. 3 in Morphological Features Of The Digestive Tube In Sand Lizards, Lacerta Agilis (Sauria, Lacertidae)
Fig. 3. Fragment of microscopic structure of duodenum of sand lizard: 1 — wall of villus; 2 — epithelial cells; 3 — stroma of villus. Hematoxilin and eosin. ×100; 400.
Fig. 4 in Morphological Features Of The Digestive Tube In Sand Lizards, Lacerta Agilis (Sauria, Lacertidae)
Fig. 4. Fragment of microscopic structure of jejunum of sand lizard: 1 — wall of villus; 2 — fragment of nutrition between two villi; 3 — epithelial cells; 4 — stroma of villus. Hematoxilin and eosin. ×100; 400.
Fig. 3 in Color Features Of Sand Lizards, Lacerta Agilis (Sauria, Lacertidae), In Kyiv Region (Ukraine)
Fig. 3. Number of scales in 15–17 rows of neck scales between lateral light lines in different color morphs of L. agilis: "NOT" — var. erythro-(viridi-)nota; "3" — trilinear; "2_3" — intermediate form; "2" — bilinear.
Fig. 2 in Color Features Of Sand Lizards, Lacerta Agilis (Sauria, Lacertidae), In Kyiv Region (Ukraine)
Fig. 2. Features of sand lizards coloring in the Kyiv Region: I — 5 types of color and body picture (А — bilinear, B — intermediate form between bilinear and trilinear, С — trilinear, D — var. erythro- (viridi-)nota; E — var. con-(bi-)color); ІІ — calculation of the number of scales in the 15–17 rows; elements of the picture: 1 — dorsal line; 2 — marginal line; 3 — vertebral stripes; 4 — dark dorsal spots.
Figure 6 in Reproductive biology of Elops lacerta (Elopiformes: Elopidae) in the Gulf of Guinea, Côte d'Ivoire, West Africa
Figure 6. – Size at first sexual maturity (FL50) of males and females Elops lacerta caught from January 2019 to December 2020.
Figure 1 in Environmental predictors for the distribution of the Caspian green lizard, Lacerta strigata Eichwald, 1831, along elevational gradients of the Elburz Mountains in northern Iran
Figure 1. Map of Iran. Colors indicate elevation and dots indicate occurrence of the Caspian green lizard (Lacerta strigata). Dots show presence of records for the species. The square shows the locality of the occurrence near Shiraz.
Figure 4 in Environmental predictors for the distribution of the Caspian green lizard, Lacerta strigata Eichwald, 1831, along elevational gradients of the Elburz Mountains in northern Iran
Figure 4. Response curves showing how the distribution of Lacerta strigata is affected by the environmental variables. Response curves were created using the GLM model. Dots are presences (at habitat suitability = 1) and absences (at habitat suitability = 0). Lacerta strigata was photographed in its natural habitat in the Elburz Mountains by Anooshe Kafash.
Fig. 1 in Lack of evidence of vertical transmission of Karyolysus blood parasites in Iberian green lizards (Lacerta schreiberi)
Fig. 1. Karyolysus sp. Trophozoite (a–c) and gamonts (d–f) found in blood smears of L. schreiberi lizards. Scalebar = 10 μm.
Text-fig. 2. Dorsal view of endocranium of a 31 mm sand lizard (Lacerta agilis). Derivatives of the teniform cartilages blue. cp: cartilago parietectalis (cartilago tecti nasi); cs: sphenethmoidal commissure; tm: taenia marginalis. (Modified from Gaupp 1900.) in Cartilago Teniformis And Its Derivatives: Additional Information On The Basic Composition And Evolution Of The Skull
Text-fig. 2. Dorsal view of endocranium of a 31 mm sand lizard (Lacerta agilis). Derivatives of the teniform cartilages blue. cp: cartilago parietectalis (cartilago tecti nasi); cs: sphenethmoidal commissure; tm: taenia marginalis. (Modified from Gaupp 1900.)
Figure 1. Lacerta s.l in An assemblage of early Oligocene lizards (Squamata) from the locality of Boutersem (Belgium), with comments on the Eocene-Oligocene transition
Figure 1. Lacerta s.l. filholi, nearly complete left dentary, IRSNB R242, previously BOU-AR-27-RS. 1a, lateral view; 1b, medial view.
Starspot mapping with adaptive parallel tempering. II. Application to TESS data for M-dwarf flare stars, AU Microscopii, YZ Canis Minoris, and EV Lacertae (Flare Tables)
<p>For TESS PDC-SAP data of AU Mic (Sector 1 and 27), YZ CMi (Sector 7 and 34), and EV Lac (Sector 16), detected flare properties are listed: the peak time (BJD-2745000), amplitude, equivalent duration (sec), and e-folding time (day).</p>
Sand lizards (Lacerta agilis) decrease nymphal infection prevalence for tick-borne pathogens Borrelia burgdorferi sensu lato and Anaplasma phagocytophilum in a coastal dune ecosystem
<p>1. Understanding which factors determine tick-borne disease hazard can contribute to effective disease control. In Europe, the hazard of the pathogens <em>Borrelia burgdorferi</em> s.l. and <em>Anaplasma phagocytophilum</em> is determined by local tick densities (mainly <em>Ixodes ricinus</em>) and the reservoir competence of the host species community. Sand lizards (<em>Lacerta agilis</em>) are common hosts for larvae and nymphs of <em>I. ricinus</em> and non-competent reservoirs for both pathogens. Consequently, high relative abundance of <em>L. agilis</em> is hypothesized to be associated with lower infection prevalence in nymphs. Here, we aimed to test whether this effectively occurs in natural settings.</p> <p>2. We sampled different habitat types within a heterogenous dune landscape at the Dutch coast and estimated 1) <em>L. agilis</em> densities, 2) host community competence, 3) the density and infection prevalence of questing<em> I. ricinus</em> ticks, and 4) the number and infection prevalence of ticks feeding on <em>L. agilis</em>.</p> <p>3. Captured <em>L. agilis</em> had high tick burdens and contributed substantially to feeding <em>I. ricinus</em> larvae in their natural habitat. <em>B. burgdorferi</em> s.l. and <em>A. phagocytophilum</em> were virtually absent from feeding larvae and nymphs.</p> <p>4. The nymphal infection prevalence of both pathogens in questing ticks was lower in habitat types where <em>L. agilis</em> was more abundant. Hence, <em>L. agilis</em> strongly reduced community competence.</p> <p>5. The density of questing nymphs was higher in habitat types with denser vegetation and also varied more between habitat types than infection prevalence. As a result, nymphal density had a stronger effect on the density of infected ticks than did nymphal infection prevalence.</p> <p>6. Synthesis and applications. Coastal dune habitats favourable for <em>L. agilis</em> have lower densities of questing nymphs, and a lower human infection hazard. These results might be applicable to similar ecosystems where <em>L. agilis</em> is present. From a public health perspective, this underlines the importance of preserving early successional habitat, as encroaching shrubs are associated with higher tick-borne disease hazard, and vegetation removal might be a solution to reduce hazard in coastal dunes. The high degree of spatial heterogeneity in the abundance of tick-borne pathogens also poses opportunities to manage recreational activities to limit human exposure to tick-borne diseases.</p>
Sand lizards (Lacerta agilis) decrease nymphal infection prevalence for tick-borne pathogens Borrelia burgdorferi sensu lato and Anaplasma phagocytophilum in a coastal dune ecosystem
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Fig. 1 in Color Features Of Sand Lizards, Lacerta Agilis (Sauria, Lacertidae), In Kyiv Region (Ukraine)
Fig. 1. Map of sand lizard distribution and places of sampling in Kyiv Region:
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