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15 results for “hawthorn”
Рис. 1. А — рыжеухий бюΛьбюΛь на боярышнике, с. Δазо, Приморский край, 5.11.2019. Фото В. П. Шохрина; B — рыжеухий бюΛьбюΛь пьет сок кΛена приречного, с. Каймановка, Уссурийский гороΑской округ, Приморский край, 03.04.2022. Фото À. А. БеΛяева; C — рыжеухий бюΛьбюΛь кормится ягоΑами Αевичьего винограΑа пятиΛисточкового, г. ВΛаΑивосток, 02.01.2020. Фото А. П. ХоΑакова; D — рыжеухий бюΛьбюΛь, кΛ. ФореΛевый, окрестности с. ФиΛипповка, Хасанский район, Приморский край, 01.03.2018. Фото Ю. А. Àармана; E — рыжеухий бюΛьбюΛь кормится ягоΑами бархата амурского, г. ВΛа- Αивосток, 06.11.2019. Фото А. В. ВяΛкова; F — рыжеухий бюΛьбюΛь, с. Каймановка, Уссурийский гороΑской округ, Приморский край, 04.05.2022. Фото М. В. МасΛова Fig. 1. A — brown-eared bulbul on a hawthorn tree, Lazo village, Primorsky Region, 5.11.2019. Photo by V. P. Shokhrin; B — brown-eared bulbul drinks the juice of an Amur maple, Kaymanovka Village, Ussuriysky Urban District, Primorsky Region, 03.04.2022. Photo by D. A. Belyaev; C — brown-eared bulbul feeds on the berries of the Virginia creeper, Vladivostok, 02.01.2020. Photo by A. P. Khodakov; D — brown-eared bulbul. Forelevy spring, vicinity of Filippovka Village, Khasansky District, Primorsky Region, 01.03.2018. Photo by Yu. A. Darman; E — brown-eared bulbul feeds on the berries of an Amur cork tree, Vladivostok, 06.11.2019. Photo by A. V. Vyalkov; F — brown-eared bulbul. Kaymanovka Village, Ussuriysky Urban District, Primorsky Region, 04.05.2022. Photo by M. V. Maslov in An increase in the number of records of the brown-eared bulbul Microscelis amaurotis in the Russian Far East in recent years
Рис. 1. А — рыжеухий бюΛьбюΛь на боярышнике, с. Δазо, Приморский край, 5.11.2019. Фото В. П. Шохрина; B — рыжеухий бюΛьбюΛь пьет сок кΛена приречного, с. Каймановка, Уссурийский гороΑской округ, Приморский край, 03.04.2022. Фото À. А. БеΛяева; C — рыжеухий бюΛьбюΛь кормится ягоΑами Αевичьего винограΑа пятиΛисточкового, г. ВΛаΑивосток, 02.01.2020. Фото А. П. ХоΑакова; D — рыжеухий бюΛьбюΛь, кΛ. ФореΛевый, окрестности с. ФиΛипповка, Хасанский район, Приморский край, 01.03.2018. Фото Ю. А. Àармана; E — рыжеухий бюΛьбюΛь кормится ягоΑами бархата амурского, г. ВΛа- Αивосток, 06.11.2019. Фото А. В. ВяΛкова; F — рыжеухий бюΛьбюΛь, с. Каймановка, Уссурийский гороΑской округ, Приморский край, 04.05.2022. Фото М. В. МасΛова Fig. 1. A — brown-eared bulbul on a hawthorn tree, Lazo village, Primorsky Region, 5.11.2019. Photo by V. P. Shokhrin; B — brown-eared bulbul drinks the juice of an Amur maple, Kaymanovka Village, Ussuriysky Urban District, Primorsky Region, 03.04.2022. Photo by D. A. Belyaev; C — brown-eared bulbul feeds on the berries of the Virginia creeper, Vladivostok, 02.01.2020. Photo by A. P. Khodakov; D — brown-eared bulbul. Forelevy spring, vicinity of Filippovka Village, Khasansky District, Primorsky Region, 01.03.2018. Photo by Yu. A. Darman; E — brown-eared bulbul feeds on the berries of an Amur cork tree, Vladivostok, 06.11.2019. Photo by A. V. Vyalkov; F — brown-eared bulbul. Kaymanovka Village, Ussuriysky Urban District, Primorsky Region, 04.05.2022. Photo by M. V. Maslov
Ground deformation map for the 2011 Hawthorne seismic swarm (Nevada, USA)
<p>This repository contains eight interferograms from RADARSAT-2 and ENVISAT satellites acquired over the March-September, 2011 Hawthorne seismic swarm, Nevada (USA).</p> <p>Five interferograms were obtained by processing the Canadian Space Agency RADARSAT-2 SAR data along one ascending track (incidence angle 35<sup>◦</sup> and heading angle 350<sup>◦</sup>) with GAMMA software.</p> <ul> <li>20110322_HH_20110415_HH.adf.unw.grd</li> <li>20110226_HH_20110415_HH.adf.unw.grd</li> <li>20110322_HH_20110720_HH.adf.unw.grd</li> <li>20110415_HH_20110626_HH.adf.unw.grd</li> <li>20110315_HH_20110526_HH.adf.unw.grd</li> </ul> <p>Three interferograms were obtained by processing the European Space Agency ENVISAT SAR data along one descending track (incidence angle 35<sup>◦</sup> and heading angle -166<sup>◦</sup>) with DORIS software and ISCE software.</p> <ul> <li>20110320_20110618.lld.grd</li> <li>20110419_20110618.lld.grd</li> <li>20110718_20110916_filt_topophase.unw.geo</li> </ul> <p>These interferogram were generated for figures in: Jiang, Y., Samsonov, S. V., and González, P. J. (2021). "Aseismic fault slip nucleation during a shallow normal-faulting seismic swarm constrained using a physically-informed geodetic inversion method. " JGR: Solid Earth.</p>
Data from: Plastome-based subgenus-level phylogenetic backbone of hawthorns: insights into the maternal position and taxonomic synopsis of Crataegus shandongensis (Rosaceae, Maleae)
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Data from: Widespread generalist clones are associated with range and niche expansion in allopolyploids of Pacific Northwest Hawthorns (Crataegus L.)
Range and niche expansion are commonly associated with transitions to asexuality, polyploidy, and hybridity (allopolyploidy) in plants. The ability of asexual polyploids to colonize novel habitats may be due to widespread generalist clones, multiple ecologically specialized clones, or may be a neutral byproduct of multiple, independent origins of asexual polyploids throughout the range. We have quantified niche size and divergence for hawthorns of the Pacific Northwest using data from herbarium vouchers with known cytotypes. We find that all polyploid niches diverge from that of the diploid range, and allopolyploids have the broadest niches. Allotetraploids have the largest niche and the widest geographic distribution. We then assessed the genetic mechanism of range expansion by surveying the ecological and geographic distribution of genotypes within each cytotype from sites in which fine-scale habitat assessments were completed. We find no isolation by either geographic or ecological distance in allopolyploids, suggesting high dispersal and colonization ability. In contrast, autotriploids and diploids show patterns of isolation by geographic distance. We also compared the geographic and ecological distributions of clonal genotypes with those of randomly drawn sites of the most widespread cytotype. We found that most clones are geographically widespread and occur in a variety of habitats. We interpret these findings to suggest that patterns of range and niche expansion in Pacific Northwest Hawthorns may stem from these widespread, ecologically generalist clones of hybrid origin.
Supplementary material 1 from: Kotov S, Gontova T, Kononenko N, Chernyavski E, Chikitkina V (2022) Phytochemical analysis and anti-allergic activity of a combined herbal medicine based on bur-marigold, calendula and hawthorn. Pharmacia 69(1): 237-247. https://doi.org/10.3897/pharmacia.69.e77624
HPLC results for dry extracts of the bur-marigold herb, calendula flowers, hawthorn leafand flowers and combined extract
Complete mitochondrial genome of the hawthorn moth Scythropia crataegella (Linnaeus, 1767) (Lepidoptera: Scythropiidae)
<p>Currently, only a limited number of mitochondrial genomes (mitogenomes) are available in the superfamily Yponomeutoidea. In the present study, we report on the complete mitogenome of the hawthorn moth <em>Scythropia crataegella </em>(Linnaeus, 1767), the first species in the family Scythropiidae to enrich the catalog of Yponomeutoidea mitogenomes. The <em>S. crataegella </em>mitogenome was 15,350 bp in size and consisted of the set of genes and major non-coding A+T-rich region that are typical of insect mitogenomes. The <em>COI</em> gene had a CGA start codon; however, the other PCGs began with ATN codons. The A/T content was 80.3% in PCGs, 81.8% in tRNAs, 85.3% in <em>lrRNA</em>, 87.3% in <em>srRNA</em>, 81.8% in the whole genome, and 95.8% in the A+T-rich region. Phylogenetic analyses based on the concatenated sequences of 13 PCGs and two rRNA genes placed Scythropiidae, represented by <em>S. crataegella</em>, as a sister group to Yponomeutidae, represented by <em>Yponomeuta sedellus</em>; however, the nodal support for this group was very low (bootstrap support = 18%), indicating that extended taxon diversity is required for further robust phylogenetic inference in Yponomeutoidea.</p>
Hawthorn Extract Randomized Blinded Chronic Heart Failure (HERB CHF) Trial
ClinicalTrials.gov study NCT00343902. IPD Sharing: Not stated. Countries: 1. Publications: 2.
Nitric Oxide Mediated Vasodilatory Response to Hawthorn Standardized Extract
ClinicalTrials.gov study NCT01331486. IPD Sharing: Not stated. Countries: 1. Publications: 1.
Data from: Widespread generalist clones are associated with range and niche expansion in allopolyploids of Pacific Northwest Hawthorns (Crataegus L.)
Open the record for dataset details and reuse information.
Effect of Hawthorn Vinegar, Black Mulberry Syrup and Green Tea on Oral Mucositis
ClinicalTrials.gov study NCT06481254. IPD Sharing: NO. Countries: 1. Publications: 0.
Ketone and Hawthorn Extract Supplementation in Congestive Heart Failure
ClinicalTrials.gov study NCT07166965. IPD Sharing: NO. Countries: 1. Publications: 0.
Influence of Hawthorne Effect and Dual-tasks on Gait in CP
ClinicalTrials.gov study NCT05417399. IPD Sharing: NO. Countries: 1. Publications: 0.
Phase Ⅰa Clinical Study of Hawthorn Red Pigment Combined With Standard Analgesic for Refractory Cancer Pain
ClinicalTrials.gov study NCT05561023. IPD Sharing: Not stated. Countries: 0. Publications: 0.
Pharmacokinetic and Pharmacodynamic Interaction Study of Digoxin and Hawthorn
ClinicalTrials.gov study NCT00006330. IPD Sharing: Not stated. Countries: 1. Publications: 0.
The Effect of Hawthorn on Lipoprotein Cholesterol Ratio in Schizophrenics With Antipsychotics
ClinicalTrials.gov study NCT03663465. IPD Sharing: Not stated. Countries: 0. Publications: 0.
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