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865 results for “mitochondrial genome”
FIGURE 4 in Complete mitochondrial genomes of three crickets (Orthoptera: Gryllidae) and comparative analyses within Ensifera mitogenomes
FIGURE 4. Phylogenetic reconstruction of the Ensifera using mitochondrial PCGs and rRNAs concatenated dataset. (A) Maximum likelihood result; (B) Bayesian result.
FIGURE 3 in Complete mitochondrial genomes of three crickets (Orthoptera: Gryllidae) and comparative analyses within Ensifera mitogenomes
FIGURE 3. Mitogenome organization across sequenced Ensifera. Genome organization of (A) most sequenced ensiferans and proposed insect ancestor; (B) Gryllinae species; (C) the two Sinochlora species; (D) Phyllomimus detersus of Pseudophyllinae; (E) Ruidocollaris obscura of Phaneropterinae. The circular mitogenomes are linearized to do better presentation. The translocated regions are highlighted in color. Gene lengths are not to scale.
FIGURE 2 in Complete mitochondrial genomes of three crickets (Orthoptera: Gryllidae) and comparative analyses within Ensifera mitogenomes
FIGURE 2. Potential stem-loop structures and their location of Gryllidea. (A) the location of the predicted stem-loop in the mitogenome of Gryllidea, (B) potential stem-loop structures of cricket mitogenomes from Gryllidea
FIGURE 4 in The complete mitochondrial genome of the styloperlid stonefly species Styloperla spinicercia Wu (Insecta: Plecoptera) with family-level phylogenetic analyses of the Pteronarcyoidea
FIGURE 4. Predicted secondary structure of the lrRNA gene in Styloperla spinicercia. Roman numerals represent the conserved domain structures. Dashes (–) indicate Watson–Crick base pairings and () indicates G-U base pairing.
FIGURE 3 in The complete mitochondrial genome of the styloperlid stonefly species Styloperla spinicercia Wu (Insecta: Plecoptera) with family-level phylogenetic analyses of the Pteronarcyoidea
FIGURE 3. Secondary structures of 22 tRNAs of Styloperla spinicercia. All tRNAs are labeled with the abbreviations of their corresponding amino acids. Dashed (-) indicate Watson-Crick base pairing and dot () indicate G-U base pairing.
FIGURE 8 in The complete mitochondrial genome of the styloperlid stonefly species Styloperla spinicercia Wu (Insecta: Plecoptera) with family-level phylogenetic analyses of the Pteronarcyoidea
FIGURE 8. Genetic distance between Styloperla sp. and Styloperla. spinicercia based on 13 PCGs, srRNA and lrRNA.
FIGURE 2 in The complete mitochondrial genome of the styloperlid stonefly species Styloperla spinicercia Wu (Insecta: Plecoptera) with family-level phylogenetic analyses of the Pteronarcyoidea
FIGURE 2. Relative synonymous codon usage (RSCU) in the Styloperla. spinicercia mitogenome. Codon families are provided on the x-axis.
FIGURE 7 in The complete mitochondrial genome of the styloperlid stonefly species Styloperla spinicercia Wu (Insecta: Plecoptera) with family-level phylogenetic analyses of the Pteronarcyoidea
FIGURE 7. Phylogenetic tree of five sequenced Pteronarcyoidea and two Capniidae stoneflies. Bayesian inference and Maximum likelihood analysis inferred from PCG+rRNAs supported the same topological structure. ML bootstrap values (up) and Bayesian posterior probabilities (down) are indicated at each node.
FIGURE 6. a in The complete mitochondrial genome of the styloperlid stonefly species Styloperla spinicercia Wu (Insecta: Plecoptera) with family-level phylogenetic analyses of the Pteronarcyoidea
FIGURE 6. a. Control region of Styloperla spinicercia mitogenome. TR1 and TR2 are the abbreviation of tandem repeat units. The colored panes indicate the structural elements in control region, leading sequences are shown as a blue pane, strings of TR1 as orange panes, A+T-rich sequences as red panes, strings of TR2 as purple panes and the end of control regions as a green pane. b. Lateral view of terminalia of S. spinicercia, arrow showing the diagnostic apex of the spur.
FIGURE 5 in The complete mitochondrial genome of the styloperlid stonefly species Styloperla spinicercia Wu (Insecta: Plecoptera) with family-level phylogenetic analyses of the Pteronarcyoidea
FIGURE 5. Predicted secondary structure of the srRNA gene in Styloperla spinicercia. Roman numerals denote the conserved domain structure. Dashed (-) indicate Watson-Crick base pairing and dot () indicate G-U base pairing.
FIGURE 1 in The complete mitochondrial genome of the styloperlid stonefly species Styloperla spinicercia Wu (Insecta: Plecoptera) with family-level phylogenetic analyses of the Pteronarcyoidea
FIGURE 1. Map of the mitochondrial genome of Styloperla spinicercia. Direction of gene transcription is indicated by the arrows. PCGs are shown as blue arrows, rRNA genes as purple arrows, tRNA genes as red arrows and large non-coding regions (>100 bp) as cyan rectangles. tRNA genes are labeled according to single-letter IUPAC-IUB abbreviations (L1: UUR; L2: CUN; S1: AGN; S2: UCN). The GC content is plotted using a black sliding window, as the deviation from the average GC content of the entire sequence. GC Skew is plotted as the deviation from the average GC skew of the entire sequence.
FIGURE 8 in Mitochondrial genome of Abraxas suspecta (Lepidoptera: Geometridae) and comparative analysis with other Lepidopterans
FIGURE 8. Tree showing the phylogenetic relationships among Lepidopteran insects, constructed using (A) Bayesian inference (BI). (B) Maximum Likelihood method (ML). Bootstrap values (1000 repetitions) of the branches are indicated. Drosophila melanogaster (U37541.1) and Anopheles gambiae (L20934.1) were used as outgroups.
FIGURE 6 in Mitochondrial genome of Abraxas suspecta (Lepidoptera: Geometridae) and comparative analysis with other Lepidopterans
FIGURE 6. Alignment of overlapping region between atp8 and atp6 across Lepidoptera and other insects. The numbers on the right refer to intergenic nucleotides.
FIGURE 7 in Mitochondrial genome of Abraxas suspecta (Lepidoptera: Geometridae) and comparative analysis with other Lepidopterans
FIGURE 7. (A) Alignment of the intergenic spacer region between trnS2 (UCN) and nad1 of several Lepidopteran insects. The shaded 'ATACTAA' motif is conserved across the Lepidoptera order. (B) Features present in the A+T-rich region of A. suspecta. The sequence is shown in the reverse strand. The ATATG motif is shaded. The poly-T stretch is underlined while the poly-A stretch is double underlined. The single microsatellite T/A repeats sequence are indicated by dotted underlining.
FIGURE 4 in Mitochondrial genome of Abraxas suspecta (Lepidoptera: Geometridae) and comparative analysis with other Lepidopterans
FIGURE 4. The Relative Synonymous Codon Usage (RSCU) of the mitochondrial genome of five superfamilies in the Lepidoptera. Codon families are plotted on the X axis. Codons indicated above the bar are not present in the mitogenome.
FIGURE 2 in Mitochondrial genome of Abraxas suspecta (Lepidoptera: Geometridae) and comparative analysis with other Lepidopterans
FIGURE 2. Comparison of codon usage within the mitochondrial genome of members of the Lepidoptera. Lowercase letters (a, b, c, d and e) above species name represent the superfamily to which the species belongs (a: Geometroidea, b: Bombycoidea, c: Noctuoidea, d: Tortricoidea, e Hepialoidea:).
FIGURE 1 in Mitochondrial genome of Abraxas suspecta (Lepidoptera: Geometridae) and comparative analysis with other Lepidopterans
FIGURE 1. Map of the mitogenome of A. suspecta. The tRNA genes are labeled according to the IUPAC-IUB single-letter amino acids: cox1, cox2 and cox3 refer to the cytochrome c oxidase subunits; cob refers to cytochrome b; nad1-nad6 refer to NADH dehydrogenase components; rrnL and rrnS refer to ribosomal RNAs.
FIGURE 9 in Complete mitochondrial genome and taxonomic revision of Cardiodactylus muiri Otte, 2007 (Gryllidae: Eneopterinae: Lebinthini)
FIGURE 9. Evolutionary rate of each protein-coding (PCG) in the mitogenomes of Eneopterinae and Gryllinae.
FIGURE 6. A in Complete mitochondrial genome and taxonomic revision of Cardiodactylus muiri Otte, 2007 (Gryllidae: Eneopterinae: Lebinthini)
FIGURE 6. A, Maximum likelihood phylogeny of the family Gryllidae inferred from rrnS partial sequences available in GenBank. B, Maximum likelihood phylogeny of the family Gryllidae inferred from cytb partial sequences available in GenBank. The red star indicates the species under study.
FIGURE 4 in Complete mitochondrial genome and taxonomic revision of Cardiodactylus muiri Otte, 2007 (Gryllidae: Eneopterinae: Lebinthini)
FIGURE 4. Calling song of Cardiodactylus muiri Otte, 2007. A, oscillogram of 19 syllables (= echemes); B–C, detailled oscillogram (B) and sonogram (C) of five syllables; D, detailed oscillogram of one syllable; E, frequency spectrum of one syllable.
ScienceDex guides
Understand access before you commit
These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.