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13,397 results for “sp. nov.”
Figs 24–25 in Lemonia batavorum sp. nov. from the Netherlands, an overlooked sibling of L. dumi (Lepidoptera: Brahmaeidae)
Figs 24–25. Female genitalia of Lemonia sp. 24 – L. batavorum sp. nov., paratype, gen. prep. SU19904; 25 – L. dumi (Linnaeus, 1761), Czechia, Moravia, Brno, gen. prep. SU21288. a – detail of ostium.
Fig. 3a–c in Asioreicheia guenardi sp. nov. (Insecta: Coleoptera: Carabidae: Clivinini), a new peculiar species from Hong Kong
Fig. 3a–c: Asioreicheia guenardi sp. nov., holotype, male. a: aedeagus with median lobe and parameres, ventral view; b: apical part of median lobe, ventral view; c: genital ring.
Fig. 5a, b in Asioreicheia guenardi sp. nov. (Insecta: Coleoptera: Carabidae: Clivinini), a new peculiar species from Hong Kong
Fig. 5a, b: Asioreicheia chinensis (BULIRSCH, MAGRINI & JIA, 2013) a: Median lobe of aedeagus, ventral view; b: apical part of median lobe, ventral view.
Fig. 5 in Asplenium danxiaense sp. nov. (Aspleniaceae, Aspleniineae), a new tetraploid fern species from Guangdong, China, based on morphological and molecular data
Fig. 5. Spores of the new species Asplenium danxiaense K.W.Xu sp. nov. and its affinities. A, B. A. danxiaense K.W.Xu sp. nov. C. A. cornutissimum X.C.Zhang & R.H.Jiang. D. A. coenobiale Hance. E. A. pulcherrimum.(Baker) Ching ex Tardieu.
Fig. 2 in Asplenium danxiaense sp. nov. (Aspleniaceae, Aspleniineae), a new tetraploid fern species from Guangdong, China, based on morphological and molecular data
Fig. 2. The phylogenetic position of Asplenium danxiaense sp. nov. based on nuclear gene pgiC. The numbers associated with branches are maximum likelihood bootstrap (MLBS) values followed by bayesian inference posterior probabilities (PP). * indicates MLBS = 100% or PP=1.
Fig. 4. Asplenium danxiaense K.W in Asplenium danxiaense sp. nov. (Aspleniaceae, Aspleniineae), a new tetraploid fern species from Guangdong, China, based on morphological and molecular data
Fig. 4. Asplenium danxiaense K.W.Xu sp. nov. A. Danxia landform in the type locality of the new species. B. Habitat of the new species in a cave. C. Habit. D. Abaxial view of lamina. E. Abaxial view of lamina apex. F. Adaxial view of lamina. E. Rhizome and root.
Fig. 1 in Asplenium danxiaense sp. nov. (Aspleniaceae, Aspleniineae), a new tetraploid fern species from Guangdong, China, based on morphological and molecular data
Fig. 1. The phylogenetic position of Asplenium danxiaense K.W.Xu sp. nov. based on five plastid markers (atpB, rbcL, rps4-trnS, rpl32-trnP, and trnL-F). The numbers associated with branches are maximum likelihood bootstrap (MLBS) values followed by bayesian inference posterior probabilities (PP). * indicates MLBS = 100% or PP = 1.
Fig. 6 in Asplenium danxiaense sp. nov. (Aspleniaceae, Aspleniineae), a new tetraploid fern species from Guangdong, China, based on morphological and molecular data
Fig. 6. Estimation of Asplenium danxiaense K.W.Xu sp. nov. genome size by flow cytometry. The internal control Zea mays L. cv. B73 has 1C = 2.3Gbp.
Fig. 3 in Asplenium danxiaense sp. nov. (Aspleniaceae, Aspleniineae), a new tetraploid fern species from Guangdong, China, based on morphological and molecular data
Fig. 3. Scale morphology of the new species and its affinities. A, E. Asplenium danxiaenseK.W.Xu sp. nov. B, F. A. pulcherrimum (Baker) Ching ex Tardieu. C, G. A. coenobiale Hance. D, H. A. cornutissimum X.C.Zhang & R.H.Jiang.
Fig. 6 in Morpho-molecular assessment of Acetabularia jalakanyakae Sp. Nov. (Dasycladales, Chlorophyta) - a new species from Andaman and Nicobar Islands, India
Fig. 6 — Minimum free energy (-37.90 kcal/mol) secondary structure of the pair-wise alignment between Acetabularia dentata and Acetabularia jalakanyakae constructed with RNAalifold 2.4.18. Conserved sites (complimentary base pairing) are highlighted in red, while gap and mismatches are annotated separately
Fig. 3 in Morpho-molecular assessment of Acetabularia jalakanyakae Sp. Nov. (Dasycladales, Chlorophyta) - a new species from Andaman and Nicobar Islands, India
Fig. 3 — SEM images of the sample. (A) Whole image of the sample; (B & C) Top view of the cap; (D) Side view of the cap; (E) Outer ring of lobes; (F) Inner ring of lobes; (G) Hairs in the lobe; and (H) Cap in the early-stage. Scale bar given on the lower left side
Fig. 2 in Morpho-molecular assessment of Acetabularia jalakanyakae Sp. Nov. (Dasycladales, Chlorophyta) - a new species from Andaman and Nicobar Islands, India
Fig. 2 — Light microscopic images of the sample. (A) Whole cap; (B) Cap rays; (C) Outer ring of the lobes; (D) Magnified image of the lobe; and (E & F) Pointed tip of the rays. Scale bar given on the upper right side
Fig. 5 in Morpho-molecular assessment of Acetabularia jalakanyakae Sp. Nov. (Dasycladales, Chlorophyta) - a new species from Andaman and Nicobar Islands, India
Fig. 5 — Maximum likelihood (ML) phylogram based on 18S rDNA sequences using the Kimura 2-Parameter model of molecular evolution in MEGA X. Numbers near nodes represents the ML bootstrap proportion. The newly sequenced Acetabularia jalakanyakae is marked in bold. The tree with the highest log likelihood (-866.21) is shown. The analysis involved 27 nucleotide sequences. All positions having gaps and missing data have been eliminated. Scale bar given on the bottom is in the units of average nucleotide substitutions per site
Fig. 1 in Morpho-molecular assessment of Acetabularia jalakanyakae Sp. Nov. (Dasycladales, Chlorophyta) - a new species from Andaman and Nicobar Islands, India
Fig. 1 — Acetabularia jalakanyakae Sp. Nov. collected from Andaman and Nicobar Islands. (A) Whole sample; and (B) Lower surface of the cap. Scale represents 1 mm distance between two bars
Fig. 4 in Morpho-molecular assessment of Acetabularia jalakanyakae Sp. Nov. (Dasycladales, Chlorophyta) - a new species from Andaman and Nicobar Islands, India
Fig. 4 — SEM images of cap structures of 11 different samples. Samples 4 and 7 with 6 numbers of hairs and all other samples with 7 numbers of hairs. Scale bar given on the upper right side
Fig. 1 in Elmidae of Sarawak: the genus Potamophilus Germar, 1811, with a description of P. kelabitensis sp. nov. (Insecta: Coleoptera)
Fig. 1. Phylogenetic tree based on the nuclear 18S rRNA gene (592 nt), ArgK (677 nt), and the mitochondrial COI gene (603 nt). Bootstrap values for maximum likelihood conducted in IQTrees and posterior probabilities for Bayesian inferences conducted in MrBayes were mapped onto the best scoring ML tree. The scale bar denotes three substitutions per one hundred nucleotide positions.
Fig. 2 in Elmidae of Sarawak: the genus Potamophilus Germar, 1811, with a description of P. kelabitensis sp. nov. (Insecta: Coleoptera)
Fig. 2. Potamophilus kelabitensis sp. nov. A. Male holotype (CFDS), dorsal view, length from anterior margin of clypeus to elytral apex: 5.90 mm. B. Female paratype (CKB), dorsal view, length from anterior margin of clypeus to elytral apex: 7.31 mm. C. Male paratype (CKB), ventral view. D. Detail of the head, pronotum, and anterior portion of elytra, male paratype (CKB).
Fig. 4 in Elmidae of Sarawak: the genus Potamophilus Germar, 1811, with a description of P. kelabitensis sp. nov. (Insecta: Coleoptera)
Fig. 4. Potamophilus kelabitensis sp. nov. A. Ovipositor, ventral aspect. B. Distal portion of ovipositor, ventral aspect. C. Male segment IX with the spiculum gastrale, ventral aspect. D. Male sternite VIII, ventral aspect. E. Female sternite VIII, ventral aspect. Scale bars = 0.1 mm; A = a; B–E = b. Specimens: A–B, E = female paratype (CKB); C–D = male holotype (CFDS).
Fig. 5 in Elmidae of Sarawak: the genus Potamophilus Germar, 1811, with a description of P. kelabitensis sp. nov. (Insecta: Coleoptera)
Fig. 5. The Pa'Kelapang River at Ramudu near the locality where Potamophilus kelabitensis sp. nov. was collected.
Fig. 3 in Elmidae of Sarawak: the genus Potamophilus Germar, 1811, with a description of P. kelabitensis sp. nov. (Insecta: Coleoptera)
Fig. 3. Potamophilus kelabitensis sp. nov., aedeagus of holotype (CFDS). A. Ventral aspect. B. Dorsal aspect. C. Lateral aspect. Scale bar = 0.1 mm.
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Allen Brain Atlas
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International Brain Laboratory public data
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OpenNeuro
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