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6 results for “Chamaenerion”

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zenodo40/100

Рис. 2. Основные места концентрации фуражирующих особей Bombus distinguendus в АрхангеΛьской обΛасти: 1 — Разнотравно-зΛаковый Λуг с Trifolium pratense и Trifolium repens в окрестностях гороΑа Мезень; 2 — Разнотравно-зΛаковый Λуг по обочине Αороги с Centaurea scabiosa в окрестностях сеΛа ХоΛмогоры; 3 – Агроценоз со Stachys palustris в ΑеΛьте реки Северная Δвина; 4 — РуΑераΛьное сообщество с Chamaenerion angustifolium в ΑеΛьте реки Северная Δвина Fig. 2. Typical foraging habitats of Bombus distinguendus in Arkhangelsk Oblast: 1 — Meadow with Trifolium pratense and Trifolium repens near the town of Mezen; 2 — Roadside meadow with Centaurea scabiosa near the village of Kholmogory; 3 — Agricultural habitat with Stachys palustris in the delta of the Northern Dvina River; 4 — Ruderal community with Chamaenerion angustifolium in the delta of the Northern Dvina River in Bombus distinguendus Morawitz, 1869 (Hymenoptera: Apidae) in Arkhangelsk Oblast, Russia: Distribution, ecology and conservation

Рис. 2. Основные места концентрации фуражирующих особей Bombus distinguendus в АрхангеΛьской обΛасти: 1 — Разнотравно-зΛаковый Λуг с Trifolium pratense и Trifolium repens в окрестностях гороΑа Мезень; 2 — Разнотравно-зΛаковый Λуг по обочине Αороги с Centaurea scabiosa в окрестностях сеΛа ХоΛмогоры; 3 – Агроценоз со Stachys palustris в ΑеΛьте реки Северная Δвина; 4 — РуΑераΛьное сообщество с Chamaenerion angustifolium в ΑеΛьте реки Северная Δвина Fig. 2. Typical foraging habitats of Bombus distinguendus in Arkhangelsk Oblast: 1 — Meadow with Trifolium pratense and Trifolium repens near the town of Mezen; 2 — Roadside meadow with Centaurea scabiosa near the village of Kholmogory; 3 — Agricultural habitat with Stachys palustris in the delta of the Northern Dvina River; 4 — Ruderal community with Chamaenerion angustifolium in the delta of the Northern Dvina River

opencc-by-4.0Dec 2023View details →
zenodo32/100

FIGURE 6 in Seed morphology of Epilobium and Chamaenerion (Onagraceae) in Turkey

FIGURE 6. Chamaenerion angustifolium (a1–a4), Chamaenerion colchicum (b1–b4), Chamaenerion dodonaei (c1–c4), Chamaenerion stevenii (d1–d4)

opennotspecifiedDec 2017View details →
zenodo32/100

FIGURE 5 in Seed morphology of Epilobium and Chamaenerion (Onagraceae) in Turkey

FIGURE 5. Epilobium roseum subsp. consimile (a1–a4), Epilobium roseum subsp. roseum (b1–b4), Epilobium roseum subsp. subsessile (c1–c4), Epilobium tetragonum subsp. lamyi (d1–d4), Epilobium tetragonum subsp. tetragonum (e1–e4), Epilobium tetragonum subsp. tournefortii (f1–f4)

opennotspecifiedDec 2017View details →
zenodo32/100

FIGURE 2 in Seed morphology of Epilobium and Chamaenerion (Onagraceae) in Turkey

FIGURE 2. Epilobium algidum (a –a ) Epilobium alpestre (b –b ) Epilobium anagallidifolium (c –c ), Epilobium anatolicum (d –d )

opennotspecifiedDec 2017View details →
zenodo32/100

FIGURE 1 in Seed morphology of Epilobium and Chamaenerion (Onagraceae) in Turkey

FIGURE 1. Valuable characters used in the seed description. A. morphological appearance of beaked or beakless seed, B. smooth periclinal wall, C. papillate (crest-like) periclinal wall, D. faveolate periclinal wall, E. conical papillae with spirally furrow, F. semispherical papillae with radially furrow at base, G. cylindrical papillae with parallel furrow, H. cylindrical papillae with irregular furrow, I. striate ornamentation, J. rough ornamentation, K. ruminate ornamentation, L. rugose ornamentation

opennotspecifiedDec 2017View details →
zenodo32/100

Comparative Analysis of Complete Chloroplast Genomes of 13 Species in Epilobium, Circaea, and Chamaenerion and Insights into Phylogenetic Relationships of Onagraceae

<p>This is all the alignments which used to constructed a phylogenetic tree in our study about Onagraceae.&nbsp;The evening primrose family, Onagraceae, is a well defined family of the order Myrtales, which comprises 22 genera widely distributed from boreal to tropical areas. In the present study, we report and characterize the complete chloroplast genome sequences of 13 species in <em>Circaea</em>,<em> Chamaenerion</em>, and <em>Epilobium</em> using a next-generation sequencing method. We also retrieved plastome sequences from two other Onagraceae genera to characterize the chloroplast genome of the family. The complete plastomes of Onagraceae showed a typical quadripartite structure and encoded an identical set of 112 genes (with exclusion of duplication), including 78 protein-coding genes, 30 transfer RNAs, and four ribosomal RNAs. The results show that chloroplast genomes are basically conserved in gene arrangement across the family. Whereas, a large segment of inversion was detected in the LSC region of all samples in the<em> Oenothera </em>subsect. <em>Oenothera</em>. An inverted repeat (IR) contraction was found in <em>Circaea</em> and<em> Ludwigia </em>samples. We also compared chloroplast genomes across the Onagraceae samples and revealed similarities in some features, including nucleotide content, codon usage, RNA editing sites, and simple sequence repeats (SSRs). Phylogeny was inferred by the chloroplast genome data using maximum-likelihood (ML) and Bayesian inference (BI) methods. The generic relationship of Onagraceae was well resolved by the complete plastome sequences, showing potential value in inferring phylogeny within the family. <em>Oenothera </em>phylogeny was better resolved than other densely sampled genera. Biparental transmission may be the main cause of higher variation in the genus<em> Oenothera</em>.</p>

opencc-by-4.0Dec 2021View details →

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