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Figure 4 from: Egger C, Neusser TP, Norenburg J, Leasi F, Buge B, Vannozzi A, Cunha RL, Cox CJ, Jörger KM (2020) Uncovering the shell game with barcodes: diversity of meiofaunal Caecidae snails (Truncatelloidea, Caenogastropoda) from Central America. ZooKeys 968: 1-42. https://doi.org/10.3897/zookeys.968.52986
Figure 4 Molecular based species delimitation of Central American Caecidae. Guide tree used for PTP and bPTP based on the optimal likelihood tree of the concatenated three-marker dataset. Color codes indicate our preliminary species hypothesis derived from the phylogenetic tree. Color bars reflect the species delimitation suggested by the four consulted species delimitation programs (including ML and Bayesian implementation for PTP and single and multiple threshold for GMYC). Bars are missing where no sequence data obtained.
Figure 6 from: Egger C, Neusser TP, Norenburg J, Leasi F, Buge B, Vannozzi A, Cunha RL, Cox CJ, Jörger KM (2020) Uncovering the shell game with barcodes: diversity of meiofaunal Caecidae snails (Truncatelloidea, Caenogastropoda) from Central America. ZooKeys 968: 1-42. https://doi.org/10.3897/zookeys.968.52986
Figure 6 A–ECaecum heptagonumA specimen USNM 1618866 juvenile specimen with larval shell still attached B–E specimen ZSM-Mol-20200030, juvenile specimen already resembling closely the adult form B light microscopic picture CSEM scan D close-up of mucro and E microsculpture F–IC. cooperi, specimen MNHN-IM-2019-32 F light microscopic picture GSEM scan H close-up of mucro and I microsculpture whole specimen and close-up of mucro and microsculpture J–MC. debile, specimen MNHN-IM-2019-27 J light microscopic picture KSEM scan L close-up of mucro and M microsculpture N–QC. striatum, specimen ZSM-Mol-20100322 N light microscopic picture OSEM scan P close-up of mucro and Q microsculpture R–UC. clathratum, specimen MNHN-IM-2019-17 R light microscopic picture SSEM scan T close-up of mucro and U microsculpture. Scale bars: 10 µm (D, E, I, Q); 20 µm (H, M, P, U); 100 µm (A, B, C, L, N, O, T); 200 µm (F, G, J, K whole specimen); 300 µm (R, S).
Figure 3 from: Egger C, Neusser TP, Norenburg J, Leasi F, Buge B, Vannozzi A, Cunha RL, Cox CJ, Jörger KM (2020) Uncovering the shell game with barcodes: diversity of meiofaunal Caecidae snails (Truncatelloidea, Caenogastropoda) from Central America. ZooKeys 968: 1-42. https://doi.org/10.3897/zookeys.968.52986
Figure 3 Optimal ML tree of the concatenated 28S rRNA, 16S rRNA and COI genes partitioned by genes and COI codon positions. Bootstrap values (below nodes) of the ML analysis are shown for values > 80% and posterior probability support (above nodes) of the BI analysis are shown for values > 0.95. Specimens previously classified as Meioceras are indicated in yellow color. Smooth, translucent specimens, lacking diagnostic features and summarized in the ´Caecum glabrum-like complex` are indicated in blue. C. = Caecum, M. = Meioceras, MOTU I/ MOTU II = molecular operational taxonomic unit within the ´Caecum glabrum-like complex`. Figured specimens are all to the same scale. Scale bar: 1 mm.
Table S1.Results of Univariate Cox Regression Analysis for Factors Associated with All-Cause Mortality in COPD Figure S1. Sensitivity analysis of COPD all-cause mortality across tertiles of DII
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Shelter Level Fire Hazard Risk of the Rohingya Refugee Camps, Cox's Bazar, Bangladesh
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Supplementary material 2 from: Veltjen E, Asselman P, Baert W, Baeyen S, Beirinckx L, Breyne L, Brosens D, Claerhout T, Cogneau S, Cox K, Cuypers L, Delgat L, Desmeth P, de Raad J, Esselens L, Eves Down M-R, Helsen P, Leliaert F, Meganck K, Pereboom Z, Smitz N, Sonet G, Trekels M, Vanden Broeck A, Van Driessche C, De Wever A (2024) The key to bringing DNA collections to the next level. Research Ideas and Outcomes 10: e135978. https://doi.org/10.3897/rio.10.e135978
Interactive format of the Key including the guidance documentation
Supplementary material 1 from: Veltjen E, Asselman P, Baert W, Baeyen S, Beirinckx L, Breyne L, Brosens D, Claerhout T, Cogneau S, Cox K, Cuypers L, Delgat L, Desmeth P, de Raad J, Esselens L, Eves Down M-R, Helsen P, Leliaert F, Meganck K, Pereboom Z, Smitz N, Sonet G, Trekels M, Vanden Broeck A, Van Driessche C, De Wever A (2024) The key to bringing DNA collections to the next level. Research Ideas and Outcomes 10: e135978. https://doi.org/10.3897/rio.10.e135978
Definitions
Figure 1 from: Cox K, Thomaes A, Antonini G, Zilioli M, De Gelas K, Harvey D, Solano E, Audisio P, McKeown N, Shaw P, Minetti R, Bartolozzi L, Mergeay J (2013) Testing the performance of a fragment of the COI gene to identify western Palaearctic stag beetle species (Coleoptera, Lucanidae). ZooKeys 365: 105-126. https://doi.org/10.3897/zookeys.365.5526
Figure 1 - Bootstrap consensus NJ tree inferred from 10 000 replicates, with a cut off value of 70%, based on K2P-distances between 60 haplotypes of the 3' end of the COI gene.
Figure 8 from: Sullivan J, Zuanon J, Cox Fernandes C (2013) Two new species and a new subgenus of toothed Brachyhypopomus electric knifefishes (Gymnotiformes, Hypopomidae) from the central Amazon and considerations pertaining to the evolution of a monophasic electric organ discharge. ZooKeys 327: 1-34. https://doi.org/10.3897/zookeys.327.5427
Figure 8 - Paratypes of Brachyhypopomus bennetti sp. n. (top 3) and Brachyhypopomus walteri sp. n. (bottom 3) showing transparency of electric organ to transmitted light and comparative depth of the electric organ in the two species.
Figure 7 from: Sullivan J, Zuanon J, Cox Fernandes C (2013) Two new species and a new subgenus of toothed Brachyhypopomus electric knifefishes (Gymnotiformes, Hypopomidae) from the central Amazon and considerations pertaining to the evolution of a monophasic electric organ discharge. ZooKeys 327: 1-34. https://doi.org/10.3897/zookeys.327.5427
Figure 7 - Paratypes of Brachyhypopomus bennetti. A Paratype tag no. 93-214 from INPA 39581 (TL 175 mm, LEA 150 mm), female, Lago Janauari, Amazonas, Brazil B Paratype tag no. 93-137, INPA 8940 (TL 190 mm, LEA 167 mm), Lago Janauari. Preserved whole specimens shown above close-up views of specimens immediately post-mortem. Scale bars equal 1 cm.
Figure 6 from: Sullivan J, Zuanon J, Cox Fernandes C (2013) Two new species and a new subgenus of toothed Brachyhypopomus electric knifefishes (Gymnotiformes, Hypopomidae) from the central Amazon and considerations pertaining to the evolution of a monophasic electric organ discharge. ZooKeys 327: 1-34. https://doi.org/10.3897/zookeys.327.5427
Figure 6 - Holotype of Brachyhypopomus bennetti, INPA 39560 (TL 215 mm, LEA 171 mm), female, Paraná do Paracuúba, Amazonas, Brazil. Preserved whole specimen shown above close-up view of specimen immediately post-mortem. Scale bars equals 1 cm.
Figure 5 from: Sullivan J, Zuanon J, Cox Fernandes C (2013) Two new species and a new subgenus of toothed Brachyhypopomus electric knifefishes (Gymnotiformes, Hypopomidae) from the central Amazon and considerations pertaining to the evolution of a monophasic electric organ discharge. ZooKeys 327: 1-34. https://doi.org/10.3897/zookeys.327.5427
Figure 5 - Distribution of examined specimens of Brachyhypopomus walteri sp. n. (blue circles) and Brachyhypopomus bennetti sp. n. (red diamonds). Common holotype locality for both species indicated by yellow star.
Figure 4 from: Sullivan J, Zuanon J, Cox Fernandes C (2013) Two new species and a new subgenus of toothed Brachyhypopomus electric knifefishes (Gymnotiformes, Hypopomidae) from the central Amazon and considerations pertaining to the evolution of a monophasic electric organ discharge. ZooKeys 327: 1-34. https://doi.org/10.3897/zookeys.327.5427
Figure 4 - Paratypes of Brachyhypopomus walteri. A Paratype tag no. 93-55 from INPA 8880 (TL 164 mm, LEA 118 mm), sex undetermined, Ilha da Marchantaria, Rio Solimões, Amazonas, Brazil B Paratype tag no. 93-114 from INPA 8939 (TL 155 mm, LEA 125 mm), female, collected with holotype. Preserved whole specimens shown above close-up views of specimens immediately post-mortem. Scale bars equal 1 cm.
Figure 3 from: Sullivan J, Zuanon J, Cox Fernandes C (2013) Two new species and a new subgenus of toothed Brachyhypopomus electric knifefishes (Gymnotiformes, Hypopomidae) from the central Amazon and considerations pertaining to the evolution of a monophasic electric organ discharge. ZooKeys 327: 1-34. https://doi.org/10.3897/zookeys.327.5427
Figure 3 - Holotype of Brachyhypopomus walteri, INPA 8941 (TL 163 mm, LEA 126 mm), sex undetermined, Paraná do Paracuúba, Amazonas, Brazil. Preserved whole specimen shown above close-up view of specimen immediately post-mortem. Scale bars equal 1 cm.
Figure 2 from: Sullivan J, Zuanon J, Cox Fernandes C (2013) Two new species and a new subgenus of toothed Brachyhypopomus electric knifefishes (Gymnotiformes, Hypopomidae) from the central Amazon and considerations pertaining to the evolution of a monophasic electric organ discharge. ZooKeys 327: 1-34. https://doi.org/10.3897/zookeys.327.5427
Figure 2 - Electric organ discharge (EOD) waveforms of Brachyhypopomus walteri sp. n.and Brachyhypopomus bennetti sp. n. A EOD of holotype specimen of Brachyhypopomus walteri sp. n. B EODs of nine paratypes of Brachyhypopomus walteri sp. n. C EOD of holotype of Brachyhypopomus bennetti sp. n. D EODs of six paratypes of Brachyhypopomus bennetti sp. n. All are five millisecond traces with head positivity recorded upwards; water temperature between 21 and 23°C. Scale bars = 1 millisecond.
Figure 10 from: Sullivan J, Zuanon J, Cox Fernandes C (2013) Two new species and a new subgenus of toothed Brachyhypopomus electric knifefishes (Gymnotiformes, Hypopomidae) from the central Amazon and considerations pertaining to the evolution of a monophasic electric organ discharge. ZooKeys 327: 1-34. https://doi.org/10.3897/zookeys.327.5427
Figure 10 - Effect of loss of caudal portion of body by predation on electric organ discharge (EOD) waveform in three species of Brachyhypopomus. Undamaged individuals indicated by black dots and black EOD trace, those with regenerating caudal body following substantial injury with red A Brachyhypopomus pinnicaudatus specimens 93-20 (above) and 93-25 (below) B Brachyhypopomus walteri paratypes 93-188/2 (above) and 93-187-1 (below). Damaged paratype 93-140 (blue trace) not shown C Brachyhypopomus bennetti paratypes 93-37/1 (above) and 93-37/3 (below). EODs shown with head positivity upwards and amplitude-normalized.
Figure 1 from: Sullivan J, Zuanon J, Cox Fernandes C (2013) Two new species and a new subgenus of toothed Brachyhypopomus electric knifefishes (Gymnotiformes, Hypopomidae) from the central Amazon and considerations pertaining to the evolution of a monophasic electric organ discharge. ZooKeys 327: 1-34. https://doi.org/10.3897/zookeys.327.5427
Figure 1 - Upper jaw in ventral view of cleared and stained specimen of Brachyhypopomus (Odontohypopomus) walteri sp. n. (ANSP 194025) showing teeth present on the premaxillae. PMX=premaxilla, MX=maxilla, MET=mesethmoid, PAL=ossified element within palatine cartilage (not stained), VET=ventral ethmoid.
Figure 9 from: Sullivan J, Zuanon J, Cox Fernandes C (2013) Two new species and a new subgenus of toothed Brachyhypopomus electric knifefishes (Gymnotiformes, Hypopomidae) from the central Amazon and considerations pertaining to the evolution of a monophasic electric organ discharge. ZooKeys 327: 1-34. https://doi.org/10.3897/zookeys.327.5427
Figure 9 - Type locality and habitat for Brachyhypopomus bennetti sp. n. and Brachyhypopomus walteri sp. n. and method of capture with seines pulled underneath floating vegetation (Paspalum repens and Eichhornia crassipes) from a motorboat. Paraná do Paracuúba, south of Manaus, Brazil, approximately 03°12.6'S, 59°59.4'W.
Fig. 5. Key 2D in Chemical constituents from the flowers of Hypericum monogynum L. with COX-2 inhibitory activity
Fig. 5. Key 2D NMR correlations of compounds 3–5.
Fig. 1 in Chemical constituents from the flowers of Hypericum monogynum L. with COX-2 inhibitory activity
Fig. 1. Chemical structures of compounds of 1–16.
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