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122 results for “Rhus”
Kellogg Biological Station site, station Treatment 7, native successional treatment, abandoned after spring plowing in 1989, study of aboveground net primary productivity of Rhus typhina in units of gramsPerMeterSquaredPerYear on a yearly timescale
The EcoTrends project was established in 2004 by Dr. Debra Peters (Jornada Basin LTER, USDA-ARS Jornada Experimental Range) and Dr. Ariel Lugo (Luquillo LTER, USDA-FS Luquillo Experimental Forest) to support the collection and analysis of long-term ecological datasets. The project is a large synthesis effort focused on improving the accessibility and use of long-term data. At present, there are ~50 state and federally funded research sites that are participating and contributing to the EcoTrends project, including all 26 Long-Term Ecological Research (LTER) sites and sites funded by the USDA Agriculture Research Service (ARS), USDA Forest Service, US Department of Energy, US Geological Survey (USGS) and numerous universities. Data from the EcoTrends project are available through an exploratory web portal (http://www.ecotrends.info). This web portal enables the continuation of data compilation and accessibility by users through an interactive web application. Ongoing data compilation is updated through both manual and automatic processing as part of the LTER Provenance Aware Synthesis Tracking Architecture (PASTA). The web portal is a collaboration between the Jornada LTER and the LTER Network Office. The following dataset from Kellogg Biological Station (KBS) contains aboveground net primary productivity of Rhus typhina measurements in gramsPerMeterSquaredPerYear units and were aggregated to a yearly timescale.
Kellogg Biological Station site, station Kellogg Biological Station, study of aboveground net primary productivity of Rhus typhina in units of gramsPerMeterSquaredPerYear on a yearly timescale
The EcoTrends project was established in 2004 by Dr. Debra Peters (Jornada Basin LTER, USDA-ARS Jornada Experimental Range) and Dr. Ariel Lugo (Luquillo LTER, USDA-FS Luquillo Experimental Forest) to support the collection and analysis of long-term ecological datasets. The project is a large synthesis effort focused on improving the accessibility and use of long-term data. At present, there are ~50 state and federally funded research sites that are participating and contributing to the EcoTrends project, including all 26 Long-Term Ecological Research (LTER) sites and sites funded by the USDA Agriculture Research Service (ARS), USDA Forest Service, US Department of Energy, US Geological Survey (USGS) and numerous universities. Data from the EcoTrends project are available through an exploratory web portal (http://www.ecotrends.info). This web portal enables the continuation of data compilation and accessibility by users through an interactive web application. Ongoing data compilation is updated through both manual and automatic processing as part of the LTER Provenance Aware Synthesis Tracking Architecture (PASTA). The web portal is a collaboration between the Jornada LTER and the LTER Network Office. The following dataset from Kellogg Biological Station (KBS) contains aboveground net primary productivity of Rhus typhina measurements in gramsPerMeterSquaredPerYear units and were aggregated to a yearly timescale.
Species TX OK Distribution Map FH Hosts Pityophthorina Araptus dentifrons Wood 1 1* MEX+NT 103 ph-my Milkweed vines Conophthorus echinatae Wood 1* SEUS 104 my-sp Pinus Conophthorus edulis Hopkins 1 SWNA 104 my-sp Pinus Dendroterus texanus Wood 1 MEX+NT 105 ph Jatropha dioica Pityoborus comatus (Zimmermann) 1 1 SENA 105 xm Pinus Pityophthorus annectens LeConte 1 1 SE+SW 106 ph Pinus Pityophthorus arcanus Bright 1 SWNA 106 ph Pinus Pityophthorus barberi Blackman 1 SWNA 107 ph Pinus Pityophthorus brevis Blackman 1 SWNA 108 ph Pinus Pityophthorus confertus Swaine 1 SWNA 110 ph Pinus Pityophthorus confinis LeConte 1* SWNA 109 ph Pinus Pityophthorus confusus Blandford 1 SE+SW 110 ph Pinus Pityophthorus consimilis LeConte 1 1* SENA 111 ph Pinus Pityophthorus crassus Blackman 1 SWNA 112 ph Pinus Pityophthorus crinalis Blackman 1 1* SENA 109 ph Rhus Pityophthorus deletus LeConte 1 SWNA 111 ph Pinus Pityophthorus grandis Blackman 1 SWNA 113 ph Pinus Pityophthorus guatemalensis Blandford 1 SWNA 112 ph Quercus Pityophthorus lautus Eichhoff 1 1* SENA 112 ph Rhus, Toxicodendron Pityophthorus liquidambarus Blackman 1 SENA 113 ph Liquidambar Pityophthorus pulchellus Eichhoff 1 SE+SW 115 ph Pinus Pityophthorus pulicarius (Zimmermann) 1 1* SENA 114 ph-my Pinus Pityophthorus pullus (Zimmermann) 1 SENA 115 ph Pinus Pityophthorus schwarzi Blackman 1 SWNA 116 ph Pinus Pityophthorus schwerdtfegeri Schedl 1 SWNA 117 ph-my Pinus Pityophthorus scriptor Blackman 1 1 SENA 118 ph Rhus in Atlas and checklist of the bark and ambrosia beetles of Texas and Oklahoma (Curculionidae: Scolytinae and Platypodinae)
Species TX OK Distribution Map FH Hosts Pityophthorina Araptus dentifrons Wood 1 1* MEX+NT 103 ph-my Milkweed vines Conophthorus echinatae Wood 1* SEUS 104 my-sp Pinus Conophthorus edulis Hopkins 1 SWNA 104 my-sp Pinus Dendroterus texanus Wood 1 MEX+NT 105 ph Jatropha dioica Pityoborus comatus (Zimmermann) 1 1 SENA 105 xm Pinus Pityophthorus annectens LeConte 1 1 SE+SW 106 ph Pinus Pityophthorus arcanus Bright 1 SWNA 106 ph Pinus Pityophthorus barberi Blackman 1 SWNA 107 ph Pinus Pityophthorus brevis Blackman 1 SWNA 108 ph Pinus Pityophthorus confertus Swaine 1 SWNA 110 ph Pinus Pityophthorus confinis LeConte 1* SWNA 109 ph Pinus Pityophthorus confusus Blandford 1 SE+SW 110 ph Pinus Pityophthorus consimilis LeConte 1 1* SENA 111 ph Pinus Pityophthorus crassus Blackman 1 SWNA 112 ph Pinus Pityophthorus crinalis Blackman 1 1* SENA 109 ph Rhus Pityophthorus deletus LeConte 1 SWNA 111 ph Pinus Pityophthorus grandis Blackman 1 SWNA 113 ph Pinus Pityophthorus guatemalensis Blandford 1 SWNA 112 ph Quercus Pityophthorus lautus Eichhoff 1 1* SENA 112 ph Rhus, Toxicodendron Pityophthorus liquidambarus Blackman 1 SENA 113 ph Liquidambar Pityophthorus pulchellus Eichhoff 1 SE+SW 115 ph Pinus Pityophthorus pulicarius (Zimmermann) 1 1* SENA 114 ph-my Pinus Pityophthorus pullus (Zimmermann) 1 SENA 115 ph Pinus Pityophthorus schwarzi Blackman 1 SWNA 116 ph Pinus Pityophthorus schwerdtfegeri Schedl 1 SWNA 117 ph-my Pinus Pityophthorus scriptor Blackman 1 1 SENA 118 ph Rhus
Species TX OK Distribution Map FH Hosts Pityophthorus tuberculatus Eichhoff 1 SWNA 119 ph Pinus Pityophthorus venustus Blackman 1 SWNA 120 ph Pinus Pityophthorus virilis Blackman 1 SWNA 121 ph Rhus Pityotrichus barbatus (Blackman) 1 SWNA 115 ph Pinus Pseudopityophthorus asperulus (LeConte) 1 1* SENA 122 ph Quercus Pseudopityophthorus denticulus Wood 1 SWNA 123 ph Quercus Pseudopityophthorus minutissimus (Zimmermann) 1* 1* SENA 124 ph Quercus Pseudopityophthorus pruinosus (Eichhoff) 1 1* SE+MEX 125 ph Quercus Pseudopityophthorus pubescens Blackman 1* 1 SENA 126 ph Quercus Pseudopityophthorus yavapaii Blackman 1* SWNA 127 ph Quercus Corthylina Corthylus punctatissimus (Zimmermann) 1* SENA 130 xm polyphagous Gnathotrichus denticulatus Blackman 1 SWNA 128 xm Pinus Gnathotrichus materiarius (Fitch) 1 1 SENA 129 xm polyphagous Gnathotrichus pilosus (LeConte) 1* SWNA 129 xm Monarthrum dentigerum (LeConte) 1 SWNA 130 xm Quercus Monarthrum fasciatum (Say) 1 1* SENA 131 xm polyphagous Monarthrum mali (Fitch) 1 1* SENA 132 xm polyphagous in Atlas and checklist of the bark and ambrosia beetles of Texas and Oklahoma (Curculionidae: Scolytinae and Platypodinae)
Species TX OK Distribution Map FH Hosts Pityophthorus tuberculatus Eichhoff 1 SWNA 119 ph Pinus Pityophthorus venustus Blackman 1 SWNA 120 ph Pinus Pityophthorus virilis Blackman 1 SWNA 121 ph Rhus Pityotrichus barbatus (Blackman) 1 SWNA 115 ph Pinus Pseudopityophthorus asperulus (LeConte) 1 1* SENA 122 ph Quercus Pseudopityophthorus denticulus Wood 1 SWNA 123 ph Quercus Pseudopityophthorus minutissimus (Zimmermann) 1* 1* SENA 124 ph Quercus Pseudopityophthorus pruinosus (Eichhoff) 1 1* SE+MEX 125 ph Quercus Pseudopityophthorus pubescens Blackman 1* 1 SENA 126 ph Quercus Pseudopityophthorus yavapaii Blackman 1* SWNA 127 ph Quercus Corthylina Corthylus punctatissimus (Zimmermann) 1* SENA 130 xm polyphagous Gnathotrichus denticulatus Blackman 1 SWNA 128 xm Pinus Gnathotrichus materiarius (Fitch) 1 1 SENA 129 xm polyphagous Gnathotrichus pilosus (LeConte) 1* SWNA 129 xm Monarthrum dentigerum (LeConte) 1 SWNA 130 xm Quercus Monarthrum fasciatum (Say) 1 1* SENA 131 xm polyphagous Monarthrum mali (Fitch) 1 1* SENA 132 xm polyphagous
Fig. 4 in Nine geranylgeranylated derivatives isolated from the roots of Rhus chinensis Mill.
Fig. 4. The gastroprotective effects of the 95% EtOH extract (95% EXT) and 95% EtOH fraction from a microporous resin (95% FRA) of the roots of R. chinensis (R.C.) against indomethacin-induced (A, macroscopic observation; B, graphical representation) and water immersion-restraint stress-induced (C, macroscopic observation; D, graphical representation) gastric ulceration (with pantoprazole sodium as the positive control, ***p <0.05, n = 5).
Fig. 3 in Nine geranylgeranylated derivatives isolated from the roots of Rhus chinensis Mill.
Fig. 3. Chiral HPLC-UV chromatogram of racemic compounds 6 (6a and 6b) (A) and 7 (7a and 7b) (B) using a Chiralpak AD-H column (4.6 mm × 250 mm, 5 μm), isocratic elution with n-hexane/EtOH (98:2, v/v) or (90:10, v/v), respectively, flow rate 0.7 mL/min, UV detection at 254 nm, temperature at 25 ◦ C; ECD spectra for enantiomers of 6 (6a and 6b) (C) and 7 (7a and 7b) (D).
FIGURE 21 in Morphology of the antennal sensilla of Rhus gall aphids (Hemiptera: Aphidoidea: Pemphiginae): A comparative analysis of five genera
FIGURE 21. Rhus gall aphids, relative lengths of antennal segments (Standard error indicated by bars; n = 20; length of last antennal segment includes processus terminalis).[SC, S. chinensis; SP, S. peitan; NS, N. shiraii; NY, N. yanoniella; FM, F. meitanensis; ME, M. elongallis; MF, M. flavogallis; KR, K. rhusicola rhusicola; KO, K. rhusicola ovatirhusicola; KN, K. rhusicola ensigallis; KV, K. rhusicola ovogallis].
FIGURES 1–20 in Morphology of the antennal sensilla of Rhus gall aphids (Hemiptera: Aphidoidea: Pemphiginae): A comparative analysis of five genera
FIGURES 1–20. Rhus gall aphids, antennae and antennal sensilla. (1–5) Sensilla of alates, (1) S. chinensis, Type I trichoid sensilla (arrow); (2) S. chinensis, Type II trichoid sensilla; (3) M. elongallis, campaniform sensilla (arrow); (4) K. rhusicola rhusicola, coeloconic sensilla; (5) N. shiraii, Johnson's Organ and radial supports at base of flagellum. (6– 12) Secondary sensilla on flagellar segments, (6) S. chinensis, irregular plate sensilla; (7) S. peitan, irregular plate sensilla; (8) N. shiraii, annular sensilla; (9) N. yanoniella, annular sensilla; (10) F. meitanensis, annular sensilla; (11) M. elongallis, large sheet sensilla; (12) M. flavogallis, large sheet sensilla. (13–20) Alate antennae, light microscope photographs, (13) S. chinensis; (14) S. peitan; (15) N. yanoniella; (16) N.shiraii; (17) F. meitanensis; (18) M. elongallis; (19) M. flavogallis; (20) K. rhusicola rhusicola.
The Effects of Rhus Coriaria L. on Serum Lipid Levels of Patients With Hyperlipidemia
ClinicalTrials.gov study NCT02295293. IPD Sharing: Not stated. Countries: 1. Publications: 1.
Genetic, morphological, and niche variation in the widely hybridizing Rhus integrifolia-Rhus ovata species complex
<p>Hybridization and introgression are common processes among numerous plant species that present both challenges and opportunities for studies of species delimitation, phylogenetics, taxonomy, and adaptation. <i>Rhus integrifolia</i> and <i>R. ovata</i> are two ecologically important shrubs native to the southwestern USA and Mexico, and are known to hybridize frequently, but the morphological, genetic, and ecological implications of hybridization in these species are poorly studied on a broad geographic scale. Analyses were conducted using leaf morphology, genetic variation of plastid and nuclear loci, and species distribution models for both species and their putative hybrid introgressants across 19 localities in California and Arizona, USA. These analyses revealed evidence for morphological and genetic distinction among localities comprising putative parental species, but a high degree of morpho-genetic intermediacy among localities with putative hybrids. Comparison of morphological and genetic population structure among localities revealed evidence for putative local adaptation or widespread phenotypic plasticity. Multiple regression models identified a weak but statistically significant negative association between leaf area and precipitation. Finally, species distribution modeling inferred northward range shifts over time, with both species predicted to occupy more coastal regions in the future, possibly increasing the frequency of hybridization among them. These findings underscore the importance of integrative assessment of multiple data sources in the study of hybridizing species and highlight the <i>Rhus integrifolia-ovata</i> complex as a powerful model for investigating the adaptive implications of hybridization.</p>
Fig. 2 in Nine geranylgeranylated derivatives isolated from the roots of Rhus chinensis Mill.
Fig. 2. Key HMBC correlations of compounds 1–7.
Rhus copallinum (Anacardiaceae) - leaf - showing orientation on twig
Image of Rhus copallinum (Anacardiaceae) - leaf - showing orientation on twig
Figure 4 from: Jiang N, Yang Q, Liang Y-M, Tian C (2019) Taxonomy of two synnematal fungal species from Rhus chinensis, with Flavignomonia gen. nov. described. MycoKeys 60: 17-29. https://doi.org/10.3897/mycokeys.60.46395
Figure 4 Sexual morphology of Synnemasporella aculeans on Rhus chinensis (BJFC-S1745) A, B habit of ascomata on twigs C transverse section of ascomata D longitudinal section through ascomata E, F asci G ascospores. Scale bars: 500 μm (B–D); 10 μm (E–G).
Figure 3 from: Jiang N, Yang Q, Liang Y-M, Tian C (2019) Taxonomy of two synnematal fungal species from Rhus chinensis, with Flavignomonia gen. nov. described. MycoKeys 60: 17-29. https://doi.org/10.3897/mycokeys.60.46395
Figure 3 Asexual morphology of Synnemasporella aculeans on Rhus chinensis (BJFC-S1740) A, B habit of pycnidia on twigs C transverse section of pycnidium D longitudinal section through pycnidium E conidia F, G conidiogenous cells and conidia H, I habit of synnemata on twigs J longitudinal section through synnema K the colony on PDA L, N conidiogenous cells bearing conidia M conidia. Scale bars: 500 μm (B–D, I, J); 10 μm (E–G, L–N).
Figure 2 from: Jiang N, Yang Q, Liang Y-M, Tian C (2019) Taxonomy of two synnematal fungal species from Rhus chinensis, with Flavignomonia gen. nov. described. MycoKeys 60: 17-29. https://doi.org/10.3897/mycokeys.60.46395
Figure 2 Flavignomonia rhoigena on Rhus chinensis (BJFC-S1766, holotype) A–C habit of conidiomata on twigs D transverse section through synnema E longitudinal section through synnema F, I conidiogenous cells attached with conidia G conidiomata on PDA H condia J the colony on PDA. Scale bars: 1 mm (B); 500 μm (C); 100 μm (D); 10 μm (F, H–I); 200 μm (G).
Figure 1 from: Jiang N, Yang Q, Liang Y-M, Tian C (2019) Taxonomy of two synnematal fungal species from Rhus chinensis, with Flavignomonia gen. nov. described. MycoKeys 60: 17-29. https://doi.org/10.3897/mycokeys.60.46395
Figure 1 Phylogenetic tree based on an ML analysis of a combined DNA dataset of ITS, LSU, tef1 and rpb2 gene sequences for all genera with DNA data and some species of Gnomoniaceae. Bootstrap values ≥ 50 % for MP and ML analyses are presented at the branches. The scale bar represents the number of changes per site.
Rhus typhina L. (BR0000005654734)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Rhus typhina L. (BR0000012555826)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Genetic, morphological, and niche variation in the widely hybridizing Rhus integrifolia-Rhus ovata species complex
Open the record for dataset details and reuse information.
The Effects of Rhus Coriaria L. on Serum Uric Acid Levels
ClinicalTrials.gov study NCT02891031. IPD Sharing: NO. Countries: 1. Publications: 0.
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Allen Brain Atlas
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