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Figura 4 in Ámbito de hogar y uso de microhábitat de Liolaemus forsteri (Iguania: Liolaemidae) en una región altoandina de La Paz, Bolivia

Figura 4. Individuos de Liolaemus forsteri perteneciente al sitio de estudio. Izquierda: Hembra adulta. Superior derecha: Macho adulto. Inferior derecha: Individuo subadulto.

opencc-by-4.0Jun 2023View details →
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Figura 1 in Ámbito de hogar y uso de microhábitat de Liolaemus forsteri (Iguania: Liolaemidae) en una región altoandina de La Paz, Bolivia

Figura 1. Sitio de estudio para la evaluación del ámbito de hogar y uso de hábitat de Liolaemus forsteri, (16º20'18.07'' S, 68º02'15.32 O, 4700 msnm).

opencc-by-4.0Jun 2023View details →
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Figura 3 in Notas sobre la biología reproductiva de Nyctidromus albicollis (Aves: Caprimulgidae) en Santa Cruz, Bolivia

Figura 3. Depredación de polluelos. (A) Polluelo sin cuidado parental por más de 12 h (B) Culebra verde del genero Philodryas atacando al polluelo abandonado. (C) Despliegue defensivo ante una araña del genero Lycosa durante la incubación. (D) Volantones en el día 19 previo al abandono del sitio de crianza y depredación del polluelo observado a la izquierda de la fotografía.

opencc-by-4.0Jun 2023View details →
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Figura 3 in Ámbito de hogar y uso de microhábitat de Liolaemus forsteri (Iguania: Liolaemidae) en una región altoandina de La Paz, Bolivia

Figura 3. Tipos de microhábitat utilizados por Liolaemus forsteri. A) Vegetación alta (≥10 cm), B) Vegetación baja (<10 cm), C) Suelo sin vegetación, compuesto principalmente por material arcilloso de color claro, D) Vegetación en cojín, E) Roca, F) Borde de guarida, G) Cascajo (piedras de diámetro <2,0 cm) y H) Suelo orgánico sin vegetación.

opencc-by-4.0Jun 2023View details →
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Figura 2 in Notas sobre la biología reproductiva de Nyctidromus albicollis (Aves: Caprimulgidae) en Santa Cruz, Bolivia

Figura 2. Desarrollo de polluelos y cuidados parentales de Nyctidromus albicollis (A) Aspecto del primer polluelo a las 4 h de nacido. (B) Día 3, Pichones realizando desplazamientos cortos caminando. (C) Polluelos desplazándose caminando y con las alas levantadas para ser alimentados. (D) Día 15, volantones con plumaje de adulto casi completo. (E) Volantones sin cuidado parental reaccionando al vuelo de uno de los padres. (F) Macho alimentando a los polluelos.

opencc-by-4.0Jun 2023View details →
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Fig. 2 in Two New Species Of Oribatid Mites Of The Genus Xenillus (Acari, Oribatida, Liacaridae) From Bolivia

Fig. 2. Xenillus pseudobolivianus sp. n., adult: A = subcapitulum, ventral view; B = palp, left, antiaxial view; C = chelicera, left, paraxial view; D = leg I, right, antiaxial view; E = leg II, without tarsus, right, antiaxial view; F = leg III, without tarsus, left, antiaxial view; G = leg IV, left, antiaxial view. Scale bars: 20 μm (A–C), 50 μm (D–G)

opencc-by-4.0Nov 2021View details →
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Fig. 1 in Two New Species Of Oribatid Mites Of The Genus Xenillus (Acari, Oribatida, Liacaridae) From Bolivia

Fig. 1. Xenillus pseudobolivianus sp. n., adult: A = dorsal view; B = ventral view (gnathosoma and legs not shown); C = lateral view (gnathosoma and legs not shown). Scale bar: 100 μm

opencc-by-4.0Nov 2021View details →
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Fig. 3 in Two New Species Of Oribatid Mites Of The Genus Xenillus (Acari, Oribatida, Liacaridae) From Bolivia

Fig. 3. Xenillus amboroensis sp. n., adult: A = dorsal view; B = ventral view (gnathosoma and legs not shown); C = lateral view (gnathosoma and legs not shown). Scale bar: 100 μm

opencc-by-4.0Nov 2021View details →
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Fig. 4 in Two New Species Of Oribatid Mites Of The Genus Xenillus (Acari, Oribatida, Liacaridae) From Bolivia

Fig. 4. Xenillus pseudobolivianus sp. n. (A, B, D, E) and X. amboroensis sp. n. (C, F, G), adults, SEM micrographs (SEM HV: 5kV): A (view field: 816 μm; WD: 14.30 mm), B (view field: 689 μm; WD: 14.47 mm) = ventral view; C (view field: 1.09 mm; WD: 14.21 mm) = dorsal view; D (view field: 174 μm; WD: 14.30 mm), E (view field: 159 μm; WD: 14.43 mm); F (view field: 239 μm; WD: 14.18 mm) = bothridial seta and humeral notogastral setae; G (view field: 1.09 mm; WD: 14.21 mm) = some posterior notogastral setae. Scale bars: 200 μm

opencc-by-4.0Nov 2021View details →
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Fig. 1 in Spectrolebias brousseaui (Cyprinodontiformes: Rivulidae: Cynolebiatinae), a new annual fish from the upper río Mamoré basin, Bolivia

Fig. 1. Spectrolebias brousseaui, male (above), holotype, MNKP 10162, 28.4 mm SL and female (below), paratype, MZUSP 109219, 25.3 mm SL.

opencc-by-4.0Mar 2013View details →
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Fig. 1 in Verticillecerus gerstaeckeri van der Weele, 1908, new species for Bolivia (Neuroptera: Ascalaphidae: Haplogleniinae).

Fig. 1.- Habitus of Verticillecerus gerstaeckeri van der Weele, 1908. a.- Dorsal aspect. b.- Ventral aspect.

opencc-by-4.0Oct 2017View details →
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Figures 9-19 in A new species of the sharpshooter genus Cardioscarta (Hemiptera: Cicadellidae) from Bolivia and Peru

Figures 9-19. Cardioscarta splendida sp. nov., female from Peru (see remarks): (9-10) apical portion of abdomen: (9) ventral and (10) lateral view (with scale bar); (11) "internal" sternite VIII, dorsal view; (12-15) valvula I: (12) lateral view; (13) median portion of dorsal sculptured area; (14) apical portion of dorsal sculptured area; (15) ventral sculptured area; (16-19) valvula II: (16) lateral view; (17) teeth at basal portion; (18) teeth at median portion; (19) teeth at apical portion. Abbreviations: (ASC) anterior (arc-like) sclerite; (DEN) denticle; (DSA) dorsal sculptured area; (DUC) duct; (ISC) inner sclerite; (MSC) median sclerite; (OSC) outer sclerite; (PPR) preapical prominence; (RAM) ramus; (TOO) tooth; (VSA) ventral sculptured area. Scale bar: 1 mm.

opencc-by-4.0Dec 2016View details →
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Figures 1-8 in A new species of the sharpshooter genus Cardioscarta (Hemiptera: Cicadellidae) from Bolivia and Peru

Figures 1-8. Cardioscarta splendida sp. nov.: (1) habitus of the male holotype from Bolivia, length 12.4 mm; (2) habitus of a female from Peru (see remarks), length 13.3 mm; (3-8) male genitalia: (3) pygofer and subgenital plate, lateral view (with scale bar); (4) valve, subgenital plates, and pygofer, ventral view; (5) connective and styles, dorsal view (a detached portion of the aedeagal preatrium is at the apex of the connective stalk, arrowed); (6-8) aedeagus and anal tube: (6) in lateral, (7) ventral, and (8) anterior views (damaged preatrium is arrowed in Fig. 6). Abbreviations: (ASH) aedeagal shaft; (LBP) longer basal process; (SBP) shorter basal process. Scale bar: 1 mm.

opencc-by-4.0Dec 2016View details →
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Fig. 5 in Host associations of gall-inducing Prodiplosis longifila (Diptera: Cecidomyiidae) from Bolivia: implications for its use as a biological control agent for Jatropha gossypiifolia (Euphorbiaceae)

Fig. 5. Susceptibility of Jatropha gossypiifolia to Prodiplosis longifila. Morphologically similar galls induced on control Jatropha clavuligera (A) and Jatropha gossypiifolia (B) plants under no-choice conditions in quarantine in Pretoria, South Africa. Galling on a transplanted Jatropha gossypiifolia plant under the natural field conditions in Bolivia (C).

opencc-by-4.0Dec 2017View details →
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Fig. 4 in Host associations of gall-inducing Prodiplosis longifila (Diptera: Cecidomyiidae) from Bolivia: implications for its use as a biological control agent for Jatropha gossypiifolia (Euphorbiaceae)

Fig. 4. Relationship between the number of branches per plant and number of shoot tips with Prodiplosis longifila galls (A) and percentage of shoots (± SE) with Prodiplosis longifila galls (B) across 3 sites in Bolivia in Feb 2016. Different letters above SE bars indicate significant differences (Tukey's test, P <0.001).

opencc-by-4.0Dec 2017View details →
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Fig. 3 in Host associations of gall-inducing Prodiplosis longifila (Diptera: Cecidomyiidae) from Bolivia: implications for its use as a biological control agent for Jatropha gossypiifolia (Euphorbiaceae)

Fig. 3. Incidence of Prodiplosis longifila galls on Jatropha clavuligera (percentage of plants with galls) in relation to (A) sites and (B) sampling yr and season (± SE). Different letters above SE bars indicate significant differences (Tukey's test, P <0.001).

opencc-by-4.0Dec 2017View details →
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Fig. 1 in Host associations of gall-inducing Prodiplosis longifila (Diptera: Cecidomyiidae) from Bolivia: implications for its use as a biological control agent for Jatropha gossypiifolia (Euphorbiaceae)

Fig. 1. Rosette galls induced by Prodiplosis longifila in the growing shoot tip of Jatropha clavuligera. (A) Rosette gall in the terminal and axillary buds of Jatropha clavuligera with swollen petiole and rachis and malformed leaves. (B) Young gall in Jatropha clavuligera showing early stage larvae feeding on the nutritive tissue of the gall with no evidence of cell necrosis and fungal growth.

opencc-by-4.0Dec 2017View details →
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Fig. 2 in Host associations of gall-inducing Prodiplosis longifila (Diptera: Cecidomyiidae) from Bolivia: implications for its use as a biological control agent for Jatropha gossypiifolia (Euphorbiaceae)

Fig. 2. Morphological and histological changes in the rosette galls induced by Prodiplosis longifila on Jatropha clavuligera. (A) Vertical sectional view of a portion of the galled shoot showing the inflamed axillary position (*) (bar = 1 mm). (B) Cross sectional view of a portion of the galled shoot showing the hyperplasied stems and leaves (bar = 0.33 mm); * indicates the location where the larvae congregate; le = leaf. (C) Cross sectional view of a galled leaf showing the intense hyperplasied upper mesophyll (bar = 0.18 mm); arrows point to the hypertrophied epidermis. (D) Cross sectional view of a leaf axil (bar = 0.33 mm); * indicates the location where the larvae congregate; note the vertically dividing epidermal cells towards the bottom, whereas the laterally occurring epidermal cells are hypertrophied. (E) Cross sectional view of the stem showing variously dividing cortical cells (bar = 30 μm); the arrow indicates cell proliferation. (F) Compactly arranged parenchymatous nutritive cells, each with a prominent nucleus (n) and dense cytoplasm (cyt) (bar = 10 μm). (G) Low magnification image of galled stem showing layers of nutritive cells (nc), where the larvae feed (lfs) (bar = 30 μm). In fact, the cells lying opposite, which appear to be empty, show signs of regeneration (rc). In the far interior of the stem cortex, numerous phenol-included cells (pic) occur. Far interior into the stem cortex numerous phenol including cells (pic) occur. (H) An enlarged view of a phenol-including cell (bar = 18 μm).

opencc-by-4.0Dec 2017View details →
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Fig. 22 in First record of the tarantula genus Bumba (Araneae: Theraphosidae) from Bolivia, with the description of a new species

Fig. 22. Distribution map of the known species of Bumba. The green Question mark indicates the unknown precise locality of B. mineiros in Paraguay.

opencc-by-4.0Oct 2021View details →
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Figs 1-6 in First record of the tarantula genus Bumba (Araneae: Theraphosidae) from Bolivia, with the description of a new species

Figs 1-6. Bumba paunaka sp. nov., holotype male: 1, carapace, dorsal view; 2, abdomen, dorsal view; 3, labium, sternum and maxillae; 4, abdomen, lateral view; 5, eyes, dorsal view; 6, tibial apophysis, proventral view; PB, prolateral branch; RB, retrolateral branch. Green arrows indicate the subapical spines on the retrolateral branch of tibial apophysis. Scale bars =1mm.

opencc-by-4.0Oct 2021View details →

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International Brain Laboratory public data

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