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364 results for “developmental stage”
FIGURES 10–17. Bemisia spp. 10, B in Morphological and molecular identification of all developmental stages of four whitefly species (Hemiptera: Aleyrodidae) commonly intercepted in quarantine
FIGURES 10–17. Bemisia spp. 10, B. afer, diagrammatic representation of left compound eye of adult female; B. afer, 11, upper and lower compound eyes linked by one ommatidium; B. afer, 12, female antenna; B. afer, 13, aedeagus; B. afer, 14, female cement gland; 15, B. tabaci, ovum on Euphorbia pulcherrima; 16, B. tabaci, first larval instar on Solidago from Spain; 17, B. tabaci, second instar on E. pulcherrima.
FIGURE. Microscopic structures of Gloeocantharellus salmonicolor (TH0817, holotype). a. Pileipellis with gloeoplerous hypha. b. Ornamented basidiospores drawn in surface view or optical section. c. Gloeocystidia. d. Basidia at different developmental stages. Bars = 10 µm. Drawings by K. Reschke. in New and interesting species of Agaricomycetes from Panama
FIGURE. Microscopic structures of Gloeocantharellus salmonicolor (TH0817, holotype). a. Pileipellis with gloeoplerous hypha. b. Ornamented basidiospores drawn in surface view or optical section. c. Gloeocystidia. d. Basidia at different developmental stages. Bars = 10 µm. Drawings by K. Reschke.
FIGURE. Microscopic structures of Humidicutis roseorubra (KaiR621, holotype). a. Pileipellis and upper pileitrama. b. Basidia with toruloid clamps at different developmental stages. c. Basidiospores. Bars a = 20 µm, b, c = 10 µm. Drawings by K. Reschke. in New and interesting species of Agaricomycetes from Panama
FIGURE. Microscopic structures of Humidicutis roseorubra (KaiR621, holotype). a. Pileipellis and upper pileitrama. b. Basidia with toruloid clamps at different developmental stages. c. Basidiospores. Bars a = 20 µm, b, c = 10 µm. Drawings by K. Reschke.
FIGURE. Microscopic structures of Gliophorus roseus (PAN612, holotype). a. Upper part of pileipellis, gelatinous matrix not indicated. b. Basidiospores. c. Ixo-cheilocystidia in a gelatinous matrix (not indicated). d. Basidia at different developmental stages. Bars = 10 µm. Drawings by K. Reschke. in New and interesting species of Agaricomycetes from Panama
FIGURE. Microscopic structures of Gliophorus roseus (PAN612, holotype). a. Upper part of pileipellis, gelatinous matrix not indicated. b. Basidiospores. c. Ixo-cheilocystidia in a gelatinous matrix (not indicated). d. Basidia at different developmental stages. Bars = 10 µm. Drawings by K. Reschke.
FIGURE. Macro- and microscopic structures of Multiclavula caput-serpentis (KaiR699, holotype). a. Thallus with basidiocarps. b. Basidiospores. c. Hymenium with basidia at different developmental stages and subhymenial hyphae. d. Bulbils of green algae wrapped in hyphae, different developmental stages. Bars a = 2 mm, b, c and d = 10 µm. Drawings by H. Lotz-Winter. in New and interesting species of Agaricomycetes from Panama
FIGURE. Macro- and microscopic structures of Multiclavula caput-serpentis (KaiR699, holotype). a. Thallus with basidiocarps. b. Basidiospores. c. Hymenium with basidia at different developmental stages and subhymenial hyphae. d. Bulbils of green algae wrapped in hyphae, different developmental stages. Bars a = 2 mm, b, c and d = 10 µm. Drawings by H. Lotz-Winter.
FIGURE 3 in Descriptions of all the female developmental stages of Endernia despoliata Danzig a gall-inducing pit scale (Hemiptera: Coccomorpha: Asterolecaniidae)
FIGURE 3. First-instar nymph of Edernia despoliata Danzig; A. Anal ring with associated setae; B. 8-shaped pore; C. Trilocular pore; D. Quinquelocular pore; E. Simple disc pore.
FIGURE 2 in Descriptions of all the female developmental stages of Endernia despoliata Danzig a gall-inducing pit scale (Hemiptera: Coccomorpha: Asterolecaniidae)
FIGURE 2. Adult female of Edernia despoliata Danzig; A. Antenna; B. Anal ring with associated setae; C. Long tubular duct; D. Simple disc pore; E. Quinquelocular pore; F. Trilocular pore; G. Short tubular duct; H. Multilocular pore; I. Short seta.
FIGURE 1 in Descriptions of all the female developmental stages of Endernia despoliata Danzig a gall-inducing pit scale (Hemiptera: Coccomorpha: Asterolecaniidae)
FIGURE 1. Photographs of Edernia despoliata Danzig in life: A. Galls of adult females induced in a twig; B. Gall cut open to show adult female inside; C. Gall cut open to show eggs; D. First-instar parasitic nymphs on a one-year-old twig, with a single insect indicated by the red arrow; E. Second-instar nymphs, each in a slightly developed gall; F. Gall cut to show third-instar nymph inside.
FIGURE 5 in Descriptions of all the female developmental stages of Endernia despoliata Danzig a gall-inducing pit scale (Hemiptera: Coccomorpha: Asterolecaniidae)
FIGURE 5. Third-instar nymph of Edernia despoliata Danzig; A. Antenna; B. Anal ring with associated setae; C. Simple disc pore; D. Quinquelocular pore; E. 8-shaped pore; F. Short tubular duct.
FIGURE 4 in Descriptions of all the female developmental stages of Endernia despoliata Danzig a gall-inducing pit scale (Hemiptera: Coccomorpha: Asterolecaniidae)
FIGURE 4. Second-instar nymph of Edernia despoliata Danzig; A. Antenna; B. Anal ring with associated setae; C. Simple disc pore; D. Quinquelocular pore; E. 8-shaped pore.
Data from: Host developmental stage effects on parasite resistance and tolerance
<p><span>Hosts can defend themselves against parasites by either preventing or limiting infections (resistance), or limiting parasite-induced damage (tolerance). However, it remains underexplored how these defense types vary over host development with shifting patterns of resource allocation priorities. Here, we studied the role of developmental stage on resistance and tolerance in Atlantic salmon (<em>Salmo salar</em>). This anadromous fish has distinct life stages related to living in fresh and sea water. We experimentally exposed one-year old salmon, either at the freshwater stage or at the stage transitioning to the marine phase, to the trematode <em>Diplostomum pseudospathaceum</em>. Using 56 pedigreed families and multivariate animal models, we show that developmental transition is associated with reduced resistance, but does not affect tolerance. Furthermore, by comparing tolerance slopes (host fitness against parasite load) based on additive genetic effects among infected and unexposed control relatives, we observed that the slopes can be largely independent of the infection, that is they may not reflect tolerance. Together, our results suggest that the relative importance of different defense types may vary with host development and emphasize the importance of including control treatments for more confident interpretations of tolerance estimates.</span></p>
Coriander fruits different developmental stages NMR raw data
<p>Coriander fruits at different developmental stages NMR raw data</p>
FIGURES 37–40. Foreleg. 37, 38 in Descriptions of the developmental stages of Cafius nauticus (Fairmaire) (Coleoptera: Staphylinidae: Staphylininae), with comments on its biology
FIGURES 37–40. Foreleg. 37, 38. First larval instar; 39. Second larval instar; 40. Third larva instar; 38. Seta on tarsungulus. Abbreviations: 1–31=setae, a–d=pores, CX=coxa, FE=femur, TB=tibia, TR=trochanter, TU=tarsungulus.
FIGURES 75–80. Adult. 75–76 in Descriptions of the developmental stages of Cafius nauticus (Fairmaire) (Coleoptera: Staphylinidae: Staphylininae), with comments on its biology
FIGURES 75–80. Adult. 75–76. Habitus of Cafius nauticus in dorsal (75), ventral (76) aspect; 77–78. Aedeagus, lateral (77) and ventral (78) views; 79. Male abdominal tergite X. 79. Male abdominal sternite IX.
FIGURES 24–27. Antenna. 24–26 in Descriptions of the developmental stages of Cafius nauticus (Fairmaire) (Coleoptera: Staphylinidae: Staphylininae), with comments on its biology
FIGURES 24–27. Antenna. 24–26. First larval instar; 27. Third larval instar; 24, 27. General appearance in dorsal aspect; 25. Apex of antennal article IV; 26. Region of sensory appendage of antennal article III. Abbreviations: 1–6=setae, a–d=pores, SA=sensory appendage, SO=solenidia.
FIGURES 19–23. First larval instar 19. Nasale, 20. Mandible, 21–23. Epipharynx. 21 in Descriptions of the developmental stages of Cafius nauticus (Fairmaire) (Coleoptera: Staphylinidae: Staphylininae), with comments on its biology
FIGURES 19–23. First larval instar 19. Nasale, 20. Mandible, 21–23. Epipharynx. 21. Olfactory organs; 22. General appearance; 23. Long cuticular processes posteriorly. Abbreviations: 1–2=setae, a–b=pores, LT=lateral tooth, MT=median tooth, OG=olfactory organ, PMT=paramedian tooth.
FIGURES 52–59. Abdomen. 52–54, 58–59 in Descriptions of the developmental stages of Cafius nauticus (Fairmaire) (Coleoptera: Staphylinidae: Staphylininae), with comments on its biology
FIGURES 52–59. Abdomen. 52–54, 58–59. First larval instar; 52. Abdominal tergites I and II; 53. Abdominal sternites I and II; 54. Fused paratergite and parasternite of abdominal segment I and II; 58. Spiracle; 59. Microstructure of abdominal tergite III; 55–57. Third larva instar; 55. Abdominal tergites I and II; 56. Abdominal sternites I and II; 57. Fused paratergite and parasternite of abdominal segment I and II. Abbreviations: 1–21=setae, a–d=pores, PS=parasternite, PT=paratergite, PTG=pretergal gland, S=sternite, SP=spiracle, T=tergite.
FIGURES 28–32. Maxilla. 28–31 in Descriptions of the developmental stages of Cafius nauticus (Fairmaire) (Coleoptera: Staphylinidae: Staphylininae), with comments on its biology
FIGURES 28–32. Maxilla. 28–31. First larval instar; 32. Third larval instar; 28, 32. General appearance in dorsal aspect; 29. Apex portion of maxillary palp; 30. Region of digitiform sensory appendage of maxillary palp III; 31. Region of mala. Abbreviations: 1–11=setae, a–g=pores, CD=cardo, DSA=digitiform sensory appendage, MA=mala, PF=palpifer, SO=solenidia, ST=stipes.
FIGURES 13–18. Head. 13–17 in Descriptions of the developmental stages of Cafius nauticus (Fairmaire) (Coleoptera: Staphylinidae: Staphylininae), with comments on its biology
FIGURES 13–18. Head. 13–17. First larval instar; 13. Head in dorsal aspect; 14. Head in ventral aspect; 15–16. Seta on head; 17. Ventral tentorial pit; 18. Head of third larva instar in dorsal aspect. Abbreviations: 1–39=setae, a–k=pores, AP=apotome, E=epicranial part, EG=epicranial gland, GP=glandular pit, NA=nasale, P=posterior part, VTP=ventral tentorial pit.
FIGURES 68–74. Pupa. 68–70 in Descriptions of the developmental stages of Cafius nauticus (Fairmaire) (Coleoptera: Staphylinidae: Staphylininae), with comments on its biology
FIGURES 68–74. Pupa. 68–70. Habitus of pupa in dorsal (68), ventral (69) and lateral (70) aspect; 71–72. Microstructure of setiform projections on anterior margin of pronotum; 73–74. Microstructure of setiform projections on abdomen. Abbreviations: VP= ventral prolongations, FSP= functional spiracles, ASP= atrophied spiracles.
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