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8 results for “Cherax quadricarinatus”
FIGURE 2 in First record of a new epibionts suctorian ciliate Tokophrya huangmeiensis sp. n. (Ciliophora, Phyllopharyngea) from redclaw crayfish Cherax quadricarinatus von Martens 1868
FIGURE 2. Line drawings of T. huangmeiensis sp. n. (a) Body of T. huangmeiensis suspended on stalk. (b) Epistylis sp. as a substrate to Tokophrya sp. Scale bars: a=60 µm, b=1 mm.
FIGURE 1 in First record of a new epibionts suctorian ciliate Tokophrya huangmeiensis sp. n. (Ciliophora, Phyllopharyngea) from redclaw crayfish Cherax quadricarinatus von Martens 1868
FIGURE 1. Photomicrographs of T. huangmeiensis sp. n. found on redclaw crayfish (a) Cherax quadricarinatus collected from suspected fish farm. (b) Epistylis sp. as a substrate to T. huangmeiensis sp. n.; Abbreviations: Ep = Epistylis, Th = T. huangmeiensis sp. n. (c) Elongated pyramidal shaped and corrugated cell body of T. huangmeiensis sp. n., arrowhead showing macronucleus. (d) Apical part of the cell body showing single contractile vacuole. (e) Apical border of the cell body showing fascicle of finger-like tentacles. (f) Indicating basal plate which was concave up-word and gently dipped inside the cell body, under this basal plate transparent stalk is present with longitudinal striations. (g) Showing junction of Epistylis sp. as a substrate to Tokophrya sp., slightly protrude outward. Scale bars: b=100 µm, c=10 µm, d=5 µm, e=5 µm, f=5 µm, g=3 µm.
FIGURE 3 in First record of a new epibionts suctorian ciliate Tokophrya huangmeiensis sp. n. (Ciliophora, Phyllopharyngea) from redclaw crayfish Cherax quadricarinatus von Martens 1868
FIGURE 3. Phylogenetic tree generated by Bayesian analysis of SSU rDNA sequences of T. huangmeiensis sp. n. and related ciliates. Genbank accession numbers are listed adjacent to species names. Numbers given at nodes of branches are posterior probabilities (BI) and bootstrap values (ML), respectively. Asterisks are shown where values exceeded 95%. Dashes are shown for values under 50%.
Fig. 3 in First comprehensive multi-tissue transcriptome of Cherax quadricarinatus (Decapoda: Parastacidae) reveals unexpected diversity of endogenous cellulase
Fig. 3 Expression of 65 transcripts categorized into 16 GH families measured in log2 of (TPM + 1) values. The descriptions of GH families were assigned based on InterPro annotations of transcripts in each family (Online Resource 3), providing higher confidence of its putative function. In contrast, GH30, GH31, and GH39 do not have descriptions as their corre- sponding transcripts do not pos- sess detectable domains or signatures that point to any enzymatic functions
Fig. 2 in First comprehensive multi-tissue transcriptome of Cherax quadricarinatus (Decapoda: Parastacidae) reveals unexpected diversity of endogenous cellulase
Fig. 2 Annotation and information on the Cherax quadricarinatus transcriptome. a Distribution of transcript lengths with blue bars representing the lengths of all transcripts and red bars showing the length distribution only for transcripts with at least one annotation. b Venn diagram showing the number of shared and unique transcripts in different tissue types expressed at a TPM threshold of 100. c Transcript
Fig. 1 in First comprehensive multi-tissue transcriptome of Cherax quadricarinatus (Decapoda: Parastacidae) reveals unexpected diversity of endogenous cellulase
Fig. 1 Workflow diagram for the analysis of the Cherax quadricarinatus transcriptome. Analyses included the de novo assembly of the transcriptome, annotation of transcripts, expression analysis in multiple tissues, and the identification of putative cellulases
Multi-transcript expression patterns in the gastrolith disk and the hypodermis of Cherax quadricarinatus at premolt
GEO Series GSE16866. Cherax quadricarinatus. 4 samples. Type: Expression profiling by array.
Hepatopancreatic multi-transcript expression patterns in the crayfish Cherax quadricarinatus during the molt cycle
GEO Series GSE6947. Cherax quadricarinatus. 10 samples. Type: Expression profiling by array.
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