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Figure 8 from: Vilela CR (2017) The male terminalia of seven American species of Drosophila (Diptera, Drosophilidae). Alpine Entomology 1: 17-31. https://doi.org/10.3897/alpento.1.20669
Figure 8 - Drosophila sticta Wheeler, 1957 (sticta group). Holotype from Lancetilla, Honduras, male terminalia (NMNH). A, epandrium, cerci, surstyli and decasternum, oblique posterior view. B, surstyli and decasternum, posterior view. C–E, hypandrium, gonopods+paraphyses, three views. C, posterior view. D, oblique posterior. E, left lateral. F–J, aedeagus and aedeagal apodeme, several views from dorsal through ventral. Scale bar: 0.1 mm.
Figure 6 from: Vilela CR (2017) The male terminalia of seven American species of Drosophila (Diptera, Drosophilidae). Alpine Entomology 1: 17-31. https://doi.org/10.3897/alpento.1.20669
Figure 6 - Drosophila navojoa Ruiz, Heed & Wasserman, 1990 (repleta group, mulleri subgroup, mojavensis complex). Strain E2.1 at NDSRC, from Navojoa, Sonora, Mexico, male terminalia (MZSP). A, epandrium, cerci, surstyli, hypandrium, aedeagus, paraphyses and aedeagal apodeme, oblique posterior view. B–D, aedeagus, paraphyses and aedeagal apodeme, three views. B, dorsal. C, oblique dorsal. D, left lateral. Scale bar: 0.1 mm.
Figure 7 from: Vilela CR (2017) The male terminalia of seven American species of Drosophila (Diptera, Drosophilidae). Alpine Entomology 1: 17-31. https://doi.org/10.3897/alpento.1.20669
Figure 7 - Drosophila sonorae Heed & Castrezana, 2008 (repleta group, mulleri subgroup, longicornis complex, longicornis cluster). Strain E37.5c at NDSRC, from Alamos, Sonora, Mexico, male terminalia (MZSP). A, epandrium, cerci, surstyli, hypandrium, gonopods, aedeagus, paraphyses and aedeagal apodeme, oblique posterior view. B–D, aedeagus, paraphyses and aedeagal apodeme, three views. B, dorsal. C, oblique dorsal. D, right lateral. Scale bar: 0.1 mm.
Figure 5 from: Vilela CR (2017) The male terminalia of seven American species of Drosophila (Diptera, Drosophilidae). Alpine Entomology 1: 17-31. https://doi.org/10.3897/alpento.1.20669
Figure 5 - Drosophila arizonae Ruiz, Heed & Wasserman, 1990 (repleta group, mulleri subgroup, mojavensis complex). Strain formerly E2.2 at NDSRC (later 15081-1271.4), from Navojoa, Sonora, Mexico, male terminalia (MZSP). A, epandrium, cerci, surstyli, hypandrium, aedeagus, paraphyses and aedeagal apodeme, oblique posterior view. B–D, aedeagus, paraphyses and aedeagal apodeme, three views. B, oblique dorsal. C, left lateral. D, ventral. Scale bar: 0.1 mm.
Figure 4 from: Vilela CR (2017) The male terminalia of seven American species of Drosophila (Diptera, Drosophilidae). Alpine Entomology 1: 17-31. https://doi.org/10.3897/alpento.1.20669
Figure 4 - Drosophila nigrodumosa Wasserman & Fontdevila in Fontdevila et al., 1990 (repleta group, mulleri subgroup, mulleri complex). Strain 514.8 at NDSRC (type strain), from Merida, Venezuela, male terminalia (MZSP). A, epandrium, cerci, surstyli, hypandrium, gonopods, aedeagus, paraphyses and aedeagal apodeme, oblique posterior view. B–D, aedeagus, paraphyses and aedeagal apodeme, three views. B, dorsal. C, oblique dorsal. D, right lateral. Scale bar: 0.1 mm.
Figure 2 from: Vilela CR (2017) The male terminalia of seven American species of Drosophila (Diptera, Drosophilidae). Alpine Entomology 1: 17-31. https://doi.org/10.3897/alpento.1.20669
Figure 2 - Collection sites C49 (13°09'S, 72°32'W) and C50 (13°09'S, 72°32'W): Urubamba Canyon, Department of Cuzco, Peru. A, (C49) 1 km S of the final stop of the railroad, 01.III.1984, C.R. Vilela phot. B, (C50) 1 km NE (at km 111) of the final stop of the railroad, 02.III.1984, C.R. Vilela phot.
Figure 3 from: Vilela CR (2017) The male terminalia of seven American species of Drosophila (Diptera, Drosophilidae). Alpine Entomology 1: 17-31. https://doi.org/10.3897/alpento.1.20669
Figure 3 - Drosophila guayllabambae Rafael & Arcos, 1988 (repleta group, hydei subgroup). 1 km NE of Estacion Ferrocarril de Machu Picchu, Cuzco, Peru, 02.III.1984, C.R. Vilela coll., male terminalia (MZSP). A, epandrium, cerci and surstyli, oblique posterior view. B, surstyli and decasternum, posterior view. C, hypandrium and gonopods, posterior view. D–H, aedeagus, paraphyses and aedeagal apodeme, several views from dorsal through ventral. Scale bar: 0.1 mm.
Figures 1–4 from: Naglis S, Negrobov OP (2017) West Palaearctic species of the Hercostomus species-group III (Diptera, Dolichopodidae), with description of a new species from Turkey. Alpine Entomology 1: 33-38. https://doi.org/10.3897/alpento.1.20463
Figures 1–4 - Hercostomus tonguci sp. n. holotype: 1, habitus, left lateral; 2, head, left lateral; 3, antenna, left lateral; 4, hypopygium, left lateral.
Figures 3-4 from: Balkenohl M (2017) Trilophidius gemmatus sp. n., a new species from Bhutan, with an updated identification key to the Asian species (Coleoptera, Carabidae, Scaritinae). Alpine Entomology 1: 51-56. https://doi.org/10.3897/alpento.1.17351
Figures 3-4 - Trilophidius gemmatus sp. n., holotype, male genitalia. 3 Overview of the aedeagus with median lobe and parameres, dorsolateral view. 4 Median lobe showing the internal structures of the aedeagus, ventral view.
Figure 1 from: Vilela CR (2017) The male terminalia of seven American species of Drosophila (Diptera, Drosophilidae). Alpine Entomology 1: 17-31. https://doi.org/10.3897/alpento.1.20669
Figure 1 - Urubamba Canyon (as seen from Machu Picchu ruins), Department of Cuzco, Peru. III.1984, C.R. Vilela phot. Arrow points the final stop of the railroad at km 112 marker (Estacion Ferrocarril de Machu Picchu, that no longer exists).
Figure 1 from: Naglis S (2017) A new species of Systenus Loew (Diptera, Dolichopodidae) from Croatia. Alpine Entomology 1: 39-41. https://doi.org/10.3897/alpento.1.20462
Figure 1 - Systenus bartaki sp. n. holotype male. A antenna, left lateral B hypopygium, left lateral. Cer = cercus; Epa = epandrium; Hyp = hypandrium; Pha = phallus; Sur = surstylus. Scale bars: 0.1 mm.
Abb 1 from: Germann C (2017) Zweiter Nachtrag zur Rüsselkäfer-Fauna der Schweiz (Coleoptera, Curculionoidea). Alpine Entomology 1: 43-49. https://doi.org/10.3897/alpento.1.17788
Abb 1 - A. Von Rudolph Meyer-Dur gesammeltes (genadeltes) Exemplar des Tamariskenrusslers Coniatus wenckeri aus Aarau (Girix); B. Originaletikette vor 1885. Heute ist die Art in der Schweiz verschollen (Fotos: C. Germann).
Figures 5–13 from: Naglis S, Negrobov OP (2017) West Palaearctic species of the Hercostomus species-group III (Diptera, Dolichopodidae), with description of a new species from Turkey. Alpine Entomology 1: 33-38. https://doi.org/10.3897/alpento.1.20463
Figures 5–13 - 5, Hercostomus angustus, holotype; 6, 7, Hercostomus chetifer; 8-12, Hercostomus griseifrons, lectotype; 13, Hercostomus nanus (5, 6, 8, 13- hypopygium, lateral, 7, 12- cercus, ventral, 9- hypopygium, ventral, 10- surstyli, lateral, 11- phallus, ventro-lateral).
Figures 4-9 from: Keller S, Hülsewig T (2018) Amended description and new combination for Entomophthora nebriae Raunkiaer, (1893), a little known entomopathogenic fungus attacking the ground beetle Nebria brevicollis (Fabricius, 1792). Alpine Entomology 2: 1-5. https://doi.org/10.3897/alpento.2.22136
Figures 4-9 4. Rhizoid with dark and sparsely branched ending together with resting spores (LPAO). 5. Cystidium with numerous nuclei (LPAO). 6. Dense layer of conidiophores with developing primary conidia (LPAO). 7. Primary conidia with prominent central vacuole (LPCB). 8. Young resting spores with nuclei (LPAO). 9. Mature resting spores with thick walls and one to several vacuoles depending on the stage of maturation (LPAO).
Figures 1-3 from: Keller S, Hülsewig T (2018) Amended description and new combination for Entomophthora nebriae Raunkiaer, (1893), a little known entomopathogenic fungus attacking the ground beetle Nebria brevicollis (Fabricius, 1792). Alpine Entomology 2: 1-5. https://doi.org/10.3897/alpento.2.22136
Figures 1-3 1. Nebria brevicollis at an early stage of fungus sporulation. At this stage the beetle is still able to move it's legs and antennae (nat. length of the beetle about 13 mm). 2. Beetle with fully sporulating fungus showing the extremely swollen abdomen. The strong cystidia are clearly visible at the edge of the fungus mass. 3. At the end of the sporulating period the mycelium turns yellowish (Photos: T. Hülsewig).
Figure 4 from: Gossner MM, Heckmann R, Moretti M (2018) From the South and from the North? – Quilnus marcosi Heiss & Baena and Aradus angularis J. Sahlberg, two flat bug species new for Central Europe (Hemiptera, Heteroptera, Aradidae). Alpine Entomology 2: 7-14. https://doi.org/10.3897/alpento.2.21801
Figure 4 Frequency of occurrences of Aradus angularis J. Sahlberg, 1886 with respect to time since fire (left) and elevation (right), based on previous records in Fennoscandia (grey) and the new record in Switzerland (red). Please note that data were available for a subset of records only.
Figure 1 from: Gossner MM, Heckmann R, Moretti M (2018) From the South and from the North? – Quilnus marcosi Heiss & Baena and Aradus angularis J. Sahlberg, two flat bug species new for Central Europe (Hemiptera, Heteroptera, Aradidae). Alpine Entomology 2: 7-14. https://doi.org/10.3897/alpento.2.21801
Figure 1 Photographs of the burnt site in Leuk, Valais, Switzerland: (A) Detail of the forest in 2003, one month after the fire; (B) Overview in August 2013 and (C) Detail of the site incl. Combi-trap in April 2013 (Aradus angularis J. Sahlberg, 1886 was sampled in June 2013); (D) Surrounding and (E) detail of the burnt pine tree (Pinus sylvestris) on which Quilnus marcosi Heiss & Baena, 2006 was detected in 2017 under one of a few remaining bark pieces. Photo credits: A: Marco Moretti, B, E: Beat Wermelinger, C: Martin Obrist, D: Martin M. Gossner.
Figure 3 from: Gossner MM, Heckmann R, Moretti M (2018) From the South and from the North? – Quilnus marcosi Heiss & Baena and Aradus angularis J. Sahlberg, two flat bug species new for Central Europe (Hemiptera, Heteroptera, Aradidae). Alpine Entomology 2: 7-14. https://doi.org/10.3897/alpento.2.21801
Figure 3 Records of Aradus angularis J. Sahlberg, 1886 (blue, n=46) and Quilnus marcosi Heiss & Baena, 2006 (red, n=7) in Europe, and new records of both species in Switzerland (star). Data are based on Heiss and Péricart (2007), Brustel (2009), Heiss (2010), Esser (Mallorca, unpubl., leg. Esser, det. coll. MMG) and the website of the Muséum national d'histoire naturelle Paris (https://science.mnhn.fr/institution/mnhn/collection/eh/item/eh18974?lang=en_US) for Q. marcosi and Reuter (1900), Helioevaara and Vaisanen (1983), Pettersson and Nilsson (1986), Lammes and Rinne (1990), Roth and Coulianos (2014), Hagglund et al. (2015), Heikkala et al. (2017), Heikkala (pers. com.), Martikainen (pers. com.), Artportalen Sveden (https://artfakta.artdatabanken.se/taxon/100379) and Kirishenko (1951) for A. angularis. Please note that data points in the European part of Russia represent the centre of each Oblast in which the species has been recorded.
Figure 2 from: Gossner MM, Heckmann R, Moretti M (2018) From the South and from the North? – Quilnus marcosi Heiss & Baena and Aradus angularis J. Sahlberg, two flat bug species new for Central Europe (Hemiptera, Heteroptera, Aradidae). Alpine Entomology 2: 7-14. https://doi.org/10.3897/alpento.2.21801
Figure 2 Two flat bug (Aradidae) species new to Central Europe, sampled in the burnt forest site in Leuk, Valais, Switzerland. (A) Male of Aradus angularis J. Sahlberg, 1886, sampled with a "Combi-trap" at 1730 m a.s.l. in June 2013 (sampling period 21 May to 23 June), leg. MM, det. coll. RH. Characteristic for the species are the size, the very thin antennae and the elongated body with the almost parallel outer margins of the wings and the form of the male genital structures. (B) Stenoptere male and juvenile of Quilnus marcosi Heiss & Baena, 2006, sampled under the bark of a burnt pine (Pinus sylvestris) tree at 1480 m a.s.l. on 1 June 2017, leg. det. coll. MMG. Characteristic for the species within the genus are the small size, the rounded apical corners of the pronotum and the form of the male genital structures. Photo credits: Gerhard Strauß.
Dataset of the effects of different levels of alpine wetland degradation on flora and soil
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