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57 results for “Rhamdia”
FIGURE 8 in Morphology and molecular data reveal the presence of two new species under Rhamdia quelen (Quoy & Gaimard, 1824) (Siluriformes: Heptapteridae) species complex
FIGURE 8. HoloTyPe of Rhamdia gabrielae (UFRGS 20010), holoTyPe, 194 mm SL. In dorsAl, lATerAl, And venTrAl views.
FIGURE 5 in Morphology and molecular data reveal the presence of two new species under Rhamdia quelen (Quoy & Gaimard, 1824) (Siluriformes: Heptapteridae) species complex
FIGURE 5. SPeCies Tree wiTh sTrongesT suPPorT ACCording To BAyesiAn PosTerior ProbAbiliTies ProduCed in BeAsT. Numbers on The ToP rePresenT PosTerior ProbAbiliTies And number on The boTTom of Are The divergenCe dATes of The resPeCTive node. The Colourful brAnChes indiCATe The grouPs reCovered in Previous AnAlyses. (A) CoAsTAl PlAin GrouP, (B) MAquiné-MAmPiTubA GrouP (Rhamdia gabrielae) And (C) TubArão GrouP (Rhamdia eurycephala).
FIGURE 7 in Morphology and molecular data reveal the presence of two new species under Rhamdia quelen (Quoy & Gaimard, 1824) (Siluriformes: Heptapteridae) species complex
FIGURE 7. SCATTer PloT of Combined sAmPles of Rhamdia gabrielae (red), Rhamdia eurycephala (green) And Rhamdia Aff. quelen (blue) on The seCond And Third PrinCiPAl ComPonenT Axis.
FIGURE 10 in Morphology and molecular data reveal the presence of two new species under Rhamdia quelen (Quoy & Gaimard, 1824) (Siluriformes: Heptapteridae) species complex
FIGURE 10. VAriATion in seA level for The lAsT 2 MA shown ACCording To Miller et al. (2011). The red lines rePresenT The PoinTs of divergenCe beTween The lines of RhAmdiA, A) FirsT divergenCe And B) seCond divergenCe
FIGURE 4 in Morphology and molecular data reveal the presence of two new species under Rhamdia quelen (Quoy & Gaimard, 1824) (Siluriformes: Heptapteridae) species complex
FIGURE 4. Gene Tree for All DNA dATA seT ProduCed by BAyesiAn AnAlysis in MrBAyes. VAlues on nodes rePresenT BAyesiAn PosTerior ProbAbiliTies: (A) CoAsTAl PlAin GrouP (Rhamdia Aff. quelen), (B) MAquiné-MAmPiTubA GrouP (Rhamdia gabrielae) And (C) TubArão GrouP (Rhamdia eurycephala). TB (green)—rio TubArão; ARA (OrAnge)—uPPer rio ArArAnguá; MP (Pink)— rio MAmPiTubA; TF (red)—rio Três ForquilhAs; MAQ (yellow)—rio MAquiné; TR (dArk blue)—TrAmAndAí lAgoons; ARAB (lighT blue)—lower rio ArArAnguá; CM (grey)—lAgunA dos PATos.
FIGURE 1 in Morphology and molecular data reveal the presence of two new species under Rhamdia quelen (Quoy & Gaimard, 1824) (Siluriformes: Heptapteridae) species complex
FIGURE 1. STudy AreA: 1) rio MAquiné; 2) rio Três ForquilhAs; 3) rio MAmPiTubA; 4) rio ArArAnguá, And 5) rio TubArão. The hydrogrAPhiC bAsins Are surrounded by Coloured lines. Rivers 1–4 form PArT of The TrAmAndAí-MAmPiTubA eCoregion. Red doTs rePresenT ColleCTion loCAliTies of Rhamdia sPeCimens used in geneTiC AnAlyses.
FIGURE 4. A in A new species of myxozoa in the skeletal striated musculature of Rhamdia quelen (Quoy & Gaimard) (Siluriforme: Pimelodidae) Amazonian fish, Marajó island, Brazil
FIGURE 4. A. Histological section of the cyst and musculature of Rhamdia quelen stained with Gutierrez, showing mature spores (MS) and imature spores (IS) of Myxobolus arariensis n. sp. (*), causing bulging (arrow) and disorganization of the muscle fibers (M). B. thick fibrous (F) wall and the adjacent musculature (M).
FIGURE 5 in A new species of myxozoa in the skeletal striated musculature of Rhamdia quelen (Quoy & Gaimard) (Siluriforme: Pimelodidae) Amazonian fish, Marajó island, Brazil
FIGURE 5. Phylogenetic tree generated by Bayesian Inference (BI) applied to the partial SSU rRNA gene sequences of Myxobolus arariensis sp. n. and related myxosporeans, rooted at Kudoa thyrsites and K. alliaria. The GenBank accession numbers are shown adjacent to the species names. The numbers at the nodes indicate the bootstrap support for the Bayesian Inference. M. arariensis is shown in bold type. The taxonomic order of all the species selected for the phylogenetic analysis is shown. Any values below 50% are indicated by an asterisk. GenBank Accession numbers follow the species name.
FIGURE 3 in A new species of myxozoa in the skeletal striated musculature of Rhamdia quelen (Quoy & Gaimard) (Siluriforme: Pimelodidae) Amazonian fish, Marajó island, Brazil
FIGURE 3. Schematic drawing of Myxobolus arariensis n. sp. spore in frontal view found in the muscle. Spore in valvular view, showing its internal organization.
FIGURE 2 in A new species of myxozoa in the skeletal striated musculature of Rhamdia quelen (Quoy & Gaimard) (Siluriforme: Pimelodidae) Amazonian fish, Marajó island, Brazil
FIGURE 2. Fresh spores of Myxobolus arariensis n. sp. from Rhamdia quelen (Quoy and Gaimard 1824). A – The frontal view of the spore. Scale bar: 5 µm. B—Lateral view of the spore. Scale bar: 5 µm. C—Spores of Myxobolus arariensis n. sp. showing external ornamentation (arrow head) and anomalous external morphology (*), with caudal filaments (arrows), but no ornamentation of the external wall. Scale bar: 10 µm
FIGURE 1. A in A new species of myxozoa in the skeletal striated musculature of Rhamdia quelen (Quoy & Gaimard) (Siluriforme: Pimelodidae) Amazonian fish, Marajó island, Brazil
FIGURE 1. A. Musculature of Rhamdia quelen (Quoy and Gaimard 1824) infected by Myxobolus arariensis n. sp. showing the whitish, ovoid pseudocyst (arrow) Scale bar: 0.6 mm. B. Fresh spores, frontal view (arrow heads). Scale bar: 10 µm.
Data from: Genetic and morphometric evidence for the recognition of several recently synonymized species of trans-Andean Rhamdia (Pisces: Siluriformes: Heptapteridae)
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Acute exposure of silver catfish (Rhamdia quelen) to chlorantraniliprole insecticide
<p>This study aimed to verify whether exposure to a commercial formulation of the chlorantraniliprole insecticide, which is used on rice crops, alters biochemical parameters in silver catfish (<em>Rhamdia quelen</em>). Fifty-four animals were distributed in six units per tank (n=6/repetition), in triplicate for each treatment: T1 - control (no insecticide), T2 (0.02 μg/L insecticide) and T3 (0.20 μg/L insecticide). Exposure lasted 24 or 96h, followed by a 96-h recovery in water free of pesticide. Results indicated biochemical changes in the levels of cortisol, glucose, lactate and plasma protein as well as few ionic alterations in the gills during exposure and recovery. The presence of chlorantraniliprole at 0.02 and 0.20 μg/L in water for acute exposure (sub-lethal) of silver catfish triggered osmoregulatory and/or biochemical imbalance under the tested conditions, and most of these alterations did not recover within 96h in clear water.</p>
Fig. 2 in Skin extract from Rhamdia quelen (Siluriformes: Heptapteridae) does not promote stress in conspecifics
Fig. 2. Epidermis of R. quelen under light microscopy, PAS and hematoxylin staining. (A) Broad view showing the different skin layers: epidermis (e), dermis (d), and skeletal muscle (m). Scale bar = 5 µm; (B) club cells within the epidermis (star). Scale bar = 3 µm; (C) larger magnification of a club cell, with the arrow indicating the presence of the two nuclei. Scale bar = 1 µm.
Fig. 3 in Characterization of the ovary fatty acids composition of Rhamdia quelen (Quoy & Gaimard) (Teleostei: Siluriformes), throughout their reproductive cycle
Fig. 3. Composition of fatty acids 20:4 n-6 (ARA), 20:5 n-3 (EPA) and 22:6 n-3 (DHA) and n-3/n-6, EPA/ARA relations and unsaturated fatty acids (UFA)/ saturated fatty acids (SFA) observed in Rhamdia quelen ovaries captured in different seasons: spring (dark gray), summer (black), winter (light gray) and autumn (white), and grouped according to their gonadal maturation stage (GMS) Immature = I, GMS II and III = GMS in maturation and GMS IV = Mature. 1 Different letter for the same fatty acid or fatty acids relation indicate significant differences at a significance level of 5%.2 In winter females in stages of gonadal maturation I and IV, in spring females in stage of gonadal maturation I and in fall females in stage of gonadal maturation IV were not collected.
Fig. 3 in A new cave species of Rhamdia (Siluriformes: Heptapteridae) from Serra do Ramalho, northeastern Brazil, with notes on ecology and behavior
Fig. 3. Lateral and dorsal views of large (218.6 mm SL; a and b, respectively; MZUSP 87777) and small (61.2 mm SL; c and d, respectively; LIRP 5643) individuals of R. enfurnada.
Fig. 2 in A new cave species of Rhamdia (Siluriformes: Heptapteridae) from Serra do Ramalho, northeastern Brazil, with notes on ecology and behavior
Fig. 2. Distribution of standard length (mm) classes relative to 121 individuals of R. enfurnada. Data collected in July 2005.
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