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535 results for “Scarabs”
Fig. 20 in The Dung- and Carrion-Feeding Scarabs (Coleoptera: Scarabaeoidea) of an Amazonian Blackwater Rainforest: Results of a Continuous, 56-Week, Baited-PitfallTrap Study
Fig. 20. Number of individuals per week in dung-baited traps containing chloral hydrate (red line) or picric acid
Figs. 24–25 in The Dung- and Carrion-Feeding Scarabs (Coleoptera: Scarabaeoidea) of an Amazonian Blackwater Rainforest: Results of a Continuous, 56-Week, Baited-PitfallTrap Study
Figs. 24–25. Weekly scarabaeoid species captures in dung- (blue line) and carrion-baited (red line) pitfall traps at Reserva Ducke from September 1977 to October 1978. 24) Percentage of all taxa collected per week. Note that only in weeks 30 and 31 (4 and 11 April) were slightly more than 50% of the species taken; 25) Number of species per week.
Fig. 17 in The Dung- and Carrion-Feeding Scarabs (Coleoptera: Scarabaeoidea) of an Amazonian Blackwater Rainforest: Results of a Continuous, 56-Week, Baited-PitfallTrap Study
Fig. 17. Diagram of the trap layout along existing trails at Reserva Ducke, Brazil. Traps are 50 m apart.
Fig. 16 in The Dung- and Carrion-Feeding Scarabs (Coleoptera: Scarabaeoidea) of an Amazonian Blackwater Rainforest: Results of a Continuous, 56-Week, Baited-PitfallTrap Study
Fig. 16. Special box designed to carry bait vials. The hinged cover kept the vials from falling out as well as for personal protection from exploding caps. Photograph by BCR, August 1978.
Figs. 14–15. Trap design. 14 in The Dung- and Carrion-Feeding Scarabs (Coleoptera: Scarabaeoidea) of an Amazonian Blackwater Rainforest: Results of a Continuous, 56-Week, Baited-PitfallTrap Study
Figs. 14–15. Trap design. 14) Completed trap with rain cover in position; 15) Close-up showing attachment of bait vial inside lip of collecting bottle.
Figs. 4–7. Study area. 4 in The Dung- and Carrion-Feeding Scarabs (Coleoptera: Scarabaeoidea) of an Amazonian Blackwater Rainforest: Results of a Continuous, 56-Week, Baited-PitfallTrap Study
Figs. 4–7. Study area. 4) Entry road into Reserva Ducke, September 1978. Photograph by BCR; 5) Forest trail (slope) at Reserva Ducke with author near summit of hill, March 1978. Photograph by N. D. Penny; 6) Forest trail (no slope) at Reserva Ducke, August 1978. Photograph by BCR; 7) Forest at Reserva Ducke showing palm understory, August 1978. Photograph by BCR.
Fig. 8 in The Dung- and Carrion-Feeding Scarabs (Coleoptera: Scarabaeoidea) of an Amazonian Blackwater Rainforest: Results of a Continuous, 56-Week, Baited-PitfallTrap Study
Fig. 8. The "meeting of the waters" at Manaus where the dark Rio Negro meets the tan Rio Solimões (Amazon). The waters of the two rivers run side by side for several kilometers after their meeting without mixing because they differ in density, temperature, and speed. Photograph by BCR, August 1977.
Figs. 9–10 in The Dung- and Carrion-Feeding Scarabs (Coleoptera: Scarabaeoidea) of an Amazonian Blackwater Rainforest: Results of a Continuous, 56-Week, Baited-PitfallTrap Study
Figs. 9–10. Weather data at Reserva Ducke from September 1977 to October 1978. 9) Weekly (line) and monthly
Figs. 2–3. Study area. 2 in The Dung- and Carrion-Feeding Scarabs (Coleoptera: Scarabaeoidea) of an Amazonian Blackwater Rainforest: Results of a Continuous, 56-Week, Baited-PitfallTrap Study
Figs. 2–3. Study area. 2) Reserva Ducke (arrow) in 1984 surrounded by rainforest. Image courtesy of the Land Processes Distributed Active Archive Center (LP DAAC), USGS/EROS, Sioux Falls, SD; 3) Reserva Ducke 28 years later, shown as a remnant square patch of forest on the northeast edge of the city of Manaus in an otherwise cutover landscape. Image ã 2012 Google, Imagery ã2012 NASA, TerraMetrics.
Figs. 11–13. Trap design. 11 in The Dung- and Carrion-Feeding Scarabs (Coleoptera: Scarabaeoidea) of an Amazonian Blackwater Rainforest: Results of a Continuous, 56-Week, Baited-PitfallTrap Study
Figs. 11–13. Trap design. 11) Pitfall trap components: PVC pipe in the ground, collecting bottle with bait vial attached just inside of opening, soil cover, rain cover; 12) Collecting bottle placed inside of PVC pipe so that the lip of the bottle is flush with the surface of the ground; 13) Soil cover placed over lip of collecting bottle.
Fig. 1 in The Dung- and Carrion-Feeding Scarabs (Coleoptera: Scarabaeoidea) of an Amazonian Blackwater Rainforest: Results of a Continuous, 56-Week, Baited-PitfallTrap Study
Fig. 1. South America. Arrow points to location of Reserva Ducke, just to the north of the confluence of the Rio Negro and Rio Solimões in Amazonas, Brazil.
Figure 2 in New observations on prey scarab beetles and host plants of the green lynx spider, Peucetia viridans (Hentz, 1832) (Araneae: Oxyopidae) in Oaxaca, Mexico
Figure 2. Prey beetles and host plants of the green lynx spider, Peucetia viridans. (a) Lantana camara; (b) Wigandia urens; (c) Solanum mitlense; (d) P. viridans feeding on Diplotaxis trapezifera on W. urens; (e) P. viridans feeding on Macrodactylus fulvescens on L. camara; (f) Paranomala discoidalis being consumed by P. viridans; (g) Strigoderma costulipennis on the inflorescence of Croton ciliatoglandulifer; (h) Strigoderma sulcipennis on Solanum mitlense leaf; (i) Euphoria pulchella on Solanum mitlense leaf.
Figure 1 in New observations on prey scarab beetles and host plants of the green lynx spider, Peucetia viridans (Hentz, 1832) (Araneae: Oxyopidae) in Oaxaca, Mexico
Figure 1. (a) Location of the study sites in the Valles Centrales region of Oaxaca, Mexico. (b) Landscape in Villa de Zaachila; (c) landscape in San Pedro Mártir.
FIGURE 3 in Phylogenetic placement of a new Melanophilharmostes Paulian, 1968 pill scarab (Coleoptera: Hybosoridae: Ceratocanthinae) from Cameroon: molecular results decipher misleading morphology
FIGURE 3. Habitus of select sequenced specimens of Melanophilharmostes and Pseudopterorthochaetes, dorsal view; images are to scale. Note pilosity on pronota and elytra distinguishing both genera. Melanophilharmostes tuber Grebennikov, new species is immediately recognisable by possessing three unique characters: uneven pronotal surface, lateral elytral carina, and exceptionally deep microsculpture on the head, pronotum, and elytra.
FIGURE 1. Melanophilharmostes tuber Grebennikov, new species. A–E in Phylogenetic placement of a new Melanophilharmostes Paulian, 1968 pill scarab (Coleoptera: Hybosoridae: Ceratocanthinae) from Cameroon: molecular results decipher misleading morphology
FIGURE 1. Melanophilharmostes tuber Grebennikov, new species. A–E: habitus of the conglobate holotype, dorsal (A), anterior (B), left lateral (C), ventral (D), and posterior (E) views; F: habitat of paratype on Mt. Kupe; G: distribution of M. tuber.
FIGURE 4 in Phylogenetic placement of a new Melanophilharmostes Paulian, 1968 pill scarab (Coleoptera: Hybosoridae: Ceratocanthinae) from Cameroon: molecular results decipher misleading morphology
FIGURE 4. Habitus of select sequenced specimens of Melanophilharmostes and Pseudopterorthochaetes, lateral view; images are to scale.
FIGURE 3 in Seven new mitochondrial genomes of phytophagous scarab beetles (Coleoptera Scarabaeidae) and phylogenetic implications
FIGURE 3. Inferred secondary structure of tRNA-Ser1 (AGN) in seven new mitogenomes and tRNA-Val in the An. russiventris mitogenome.
FIGURE 5 in Seven new mitochondrial genomes of phytophagous scarab beetles (Coleoptera Scarabaeidae) and phylogenetic implications
FIGURE 5. Heterogeneous sequence divergence with nucleotides dataset and amino acids dataset of 13 PCGs of all taxa. The pairwise Aliscore scores are represented by colored squares. The scores range from -1, indicating full random similarity (dark blue), to +1, indicting non-random similarity (bright orange).
FIGURE 6 in Seven new mitochondrial genomes of phytophagous scarab beetles (Coleoptera Scarabaeidae) and phylogenetic implications
FIGURE 6. Phylogenetic tree produced using maximum likelihood (ML) and Bayesian (BI) methods based on the nucleotide sequences of 13 PCGs. The numbers on the left are Bayesian posterior probabilities (PP), and those on the right are maximum likelihood bootstrap values (BS). Asterisk indicates that this node is different in ML and BI.
FIGURE 4. Saturation plots for 2 rRNA gens, 13 in Seven new mitochondrial genomes of phytophagous scarab beetles (Coleoptera Scarabaeidae) and phylogenetic implications
FIGURE 4. Saturation plots for 2 rRNA gens, 13 protein-coding genes, and a concatenated dataset (from 13 protein-coding genes), left to right. The plot shows uncorrected pairwise divergences in transitions (s) and transversions (v) against divergences calculated with the GTR model. Green, transversions; blue, transitions.
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