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30 results for “Eriobotrya”
Figure 5 in Characterizing the complete mitochondrial genome of Psephenothrips eriobotryae Dang & Qiao (Thysanoptera: Phlaeothripidae) with massive gene arrangement in Phlaeothripidae
Figure 5. Comparison of the nucleotide sequences of the two putative control regions in the mitogenome of P. eriobotryae. The structural elements were recognized: repeat unit, TATA motif, TA(A)n motif, stem and loop, Poly T-stretch sequence, A + T-rich sequence and G(A)nT motif.
Figure 6 in Characterizing the complete mitochondrial genome of Psephenothrips eriobotryae Dang & Qiao (Thysanoptera: Phlaeothripidae) with massive gene arrangement in Phlaeothripidae
Figure 6. Gene rearrangement, transposition, inversion and inverse transposition. A. Comparison with the ancestor gene sequence of arthropods, Drosophila yakuba and P. eriobotryae gene sequence. B. Comparison with P. eriobotryae and other five known mitogenomes of Phlaeothripidae species. Yellow blocks show PCGs, blue ones show tRNA, red ones show rRNA and Colourless ones show CRs. Red dashes boxes represent conserve gene blocks. Red dotted ovals represent that the reverse transposition happened in the gene blocks. '+' indicates H-strand, and '-' indicates L-strand. Black arrows indicate the direction of gene translation.
Figure 1 in Characterizing the complete mitochondrial genome of Psephenothrips eriobotryae Dang & Qiao (Thysanoptera: Phlaeothripidae) with massive gene arrangement in Phlaeothripidae
Figure 1. The circular representation of the complete mitogenome of P. eriobotryae. The direction of gene transcription is indicated by the arrows. PCGs are showed as blue purple arrows, rRNA genes as green arrows, tRNA genes as pink purple arrow and CRs as orange arrows. The inner black circles show GC content and GC-skew plotted as the deviation from the average value of the entire sequence. The image was taken from slide-mounted specimen with an Olympus BX53 and edited manually in Adobe Photoshop 2022 v23.0.2.101.
Figure 4 in Characterizing the complete mitochondrial genome of Psephenothrips eriobotryae Dang & Qiao (Thysanoptera: Phlaeothripidae) with massive gene arrangement in Phlaeothripidae
Figure 4. Putative cloverleaf secondary structures of the 22 tRNAs of P. eriobotryae. The dot "." indicated mismatched base pairs.
Figure 3 in Characterizing the complete mitochondrial genome of Psephenothrips eriobotryae Dang & Qiao (Thysanoptera: Phlaeothripidae) with massive gene arrangement in Phlaeothripidae
Figure 3. The ratios of nonsynonymous substitutions (Ka) and synonymous substitutions (Ks), and the ratio of Ka/Ks for each PCGs in the mitogenome of P. eriobotryae.
Figure 7 in Characterizing the complete mitochondrial genome of Psephenothrips eriobotryae Dang & Qiao (Thysanoptera: Phlaeothripidae) with massive gene arrangement in Phlaeothripidae
Figure 7. Phylogenetic tree of thrips obtained from Maximum-likelihood and MrBayes based on 13 PCGs dataset. The numbers on branches are superimposed with bootstrap support values (BP) and the Bayesian posterior probability (PP).
Figure 2 in Characterizing the complete mitochondrial genome of Psephenothrips eriobotryae Dang & Qiao (Thysanoptera: Phlaeothripidae) with massive gene arrangement in Phlaeothripidae
Figure 2. Codons distribution and usage in the mitogenome of P. eriobotryae. A. Amino acid composition: codon families are provided on the x-axis; numbers of codons of each amino acid are provided on the y-axis. B. The relative synonymous codon usage (RSCU).
Eriobotrya japonica (Thunb.) Lindl. (BR0000012297788)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Eriobotrya japonica (Thunb.) Lindl. (BR0000012558865)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Eriobotrya japonica (Thunb.) Lindl. (BR0000005698400)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Eriobotrya japonica (Thunb.) Lindl. (BR0000012565665)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Eriobotrya japonica (Thunb.) Lindl. (BR0000012258406)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
FIGURE 1 in Valid publication of the name Eriobotrya × daduheensis (Malinae, Rosaceae)
FIGURE 1. Eriobotrya × daduheensis H. Z. Zhang ex W. B. Liao, Q. Fan et M. Y. Ding. A. Flowering branch. B. Flower with calyx and bracts. C. Calyx lobes, abaxial view. D. Bracts, adaxial view. E. Flower, in longitudinal section. F. Petal. G. Stamens. H. Style. I. Fruit branch. A–H from Q. Fan 9292 (holotype, SYS); I from Q. Fan 9607 (paratype, SYS). Drawn by Yunxiao Liu.
PLATE 1 in Taxonomic Studies Using Multivariate Analysis of Eriobotrya Based on Morphological Traits
PLATE 1. Leaf morphologies of different species in Eriobotrya. Note: the number sequence is consistent with Table 1.
FIGURE 3. Eriobotrya condaoensis. A in A new species of Eriobotrya (Rosaceae) from Con Dao National Park, southern Vietnam
FIGURE 3. Eriobotrya condaoensis. A) Habitat; B) Top view of flower and fruit; C) Adaxial leaf surface; D) Abaxial leaf surface and E) Type specimen. Images designed by Zhang Cheng.
FIGURE 1 in A new species of Eriobotrya (Rosaceae) from Con Dao National Park, southern Vietnam
FIGURE 1. Maximum Likelihood strict tree illustrating the phylogeny of the new species and other species of the genus based on nrDNA ITS sequences. Numbers in the branches are bootstrap percentages above 50%; new species label with a blue color, and the outgroup label with a red color.
FIGURE 2. Eriobotrya condaoensis. A in A new species of Eriobotrya (Rosaceae) from Con Dao National Park, southern Vietnam
FIGURE 2. Eriobotrya condaoensis. A) Habit, branch leaves with inflorescence; B) Venation; C) Flower in front view; D) Style in front view; E) Petal in front view; F) Portion of inflorescence with flower bud and floral bract and G) Fruit. Illustration by Jian Gu from the holotype.
FIGURE 3 in Didymella eriobotryae sp. nov. (Didymellaceae) and Arthrinium arundinis (Apiosporaceae) from fruit of Eriobotrya japonica (loquat) in China
FIGURE 3. Arthrinium arundinis (MFLU 16–2600 and MFLUCC 16–0596) a, b. Symptoms on loquat fruit (Eriobotrya japonica). c. Colony on PDA. d. Conidiogenous cells giving rise to conidia. e, f. Conidia. Scale bars: d = 20 μm, e, f = 10 μm.
FIGURE 2 in Didymella eriobotryae sp. nov. (Didymellaceae) and Arthrinium arundinis (Apiosporaceae) from fruit of Eriobotrya japonica (loquat) in China
FIGURE 2. Maximum likelihood tree from analysis of combined ITS, LSU and β-tubulin sequence data of species in Didymella, Didymellaceae. Bootstrap support values greater than 75% are given above or below the nodes. Culture accession numbers are mentioned along with the species name. The tree is rooted to Epicoccum nigrum. The ex-type and ex-epitype strains are in black bold and the newly generated strain is indicated in blue bold.
FIGURE 4 in Didymella eriobotryae sp. nov. (Didymellaceae) and Arthrinium arundinis (Apiosporaceae) from fruit of Eriobotrya japonica (loquat) in China
FIGURE 4. Didymella eriobotryae (MFLU 16–2599, holotype) a, b. Symptoms on loquat fruit (Eriobotrya japonica). c. Appearance of conidiomata sporulating on PDA. d, e. Squash mount of conidioma. f. Conidiomatal wall. g. Vertical sections through conidiomata. h. Conidiogenous cells and developing conidia. i. Conidia. Scale bars: d, e = 50 μm, f = 15 μm, g = 100 μm, h, i = 20 μm.
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