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43 results for “Rhodiola”
Rhodiola Crenulata as an Adjunctive Therapy in COPD
ClinicalTrials.gov study NCT02242461. IPD Sharing: Not stated. Countries: 1. Publications: 1.
Figure 3 in A gall mite, Aceria rhodiolae (Acari: Eriophyidae), altering the phytochemistry of a medicinal plant, Rhodiola rosea (Crassulaceae), in the Canadian Arctic
Figure 3. Prodorsal region, gnathosoma and legs of Aceria rhodiolae females from (B‒D) Nunavik, QC (Canada); (E) Labrador, NFLD (Canada); (F,G) Russia; and (H) Italy. (A) Line drawings, (B,C) scanning electron micrographs, (D) confocal light scanning microscopy, (E‒H) differential interference contrast light microscopy. Inset of (A) shows enlargement of empodia of leg I, and insets in (B) show enlargements of opisthosomal microtubercles and of dorsal gnathosoma. Notations in (A): ad, admedian line; sub II, submedian line II; tr, trochanter; so, solenidion; and others indicate setae of legs (femur to tarsus) and palp (coxal and genual setae). Arrows in (C) and (G) indicate characteristic ridges present in most (a) and some (b) specimens, respectively. The scale for images D‒H is indicated on (A) and the scale for (C) is the same as that on (B).
Figure 7 in A gall mite, Aceria rhodiolae (Acari: Eriophyidae), altering the phytochemistry of a medicinal plant, Rhodiola rosea (Crassulaceae), in the Canadian Arctic
Figure 7. Prodorsal region and genital coverflap (inset) of Aceria destructor female (differential interference contrast light microscopy). Arrows indicate characteristic ridges discernible in most (a) and some (b) specimens, respectively.
Figure 6 in A gall mite, Aceria rhodiolae (Acari: Eriophyidae), altering the phytochemistry of a medicinal plant, Rhodiola rosea (Crassulaceae), in the Canadian Arctic
Figure 6. Internal genitalia of Aceria rhodiolae female (A,D) and external and internal genitalia of male (B,C,E,F). (A) Line drawing based on both Russian and Nunavik females; differential interference contrast light microscopy (B,D,E) and confocal light scanning microscopy (C,F) from a Russian female (D) and Labrador males (B,C,E,F). aga, anterior genital apodeme; ch, genital chamber; ded, distal ejaculatory duct; eu, eugenital setae; gc, walls (collapsed) of genital channel (longitudinal bridge); oa, oblique apodeme; ped, proximal ejaculatory duct; sd, spermathecal duct; sp, spermatheca; ts, putative testis; vd, vasa deferentia. Figures A and D are on the same scale, and B‒C and E‒F are on the same scale.
Figure 2 in A gall mite, Aceria rhodiolae (Acari: Eriophyidae), altering the phytochemistry of a medicinal plant, Rhodiola rosea (Crassulaceae), in the Canadian Arctic
Figure 2. Aceria rhodiolae habitus. (A) Many (mostly adult) individuals under dissecting scope. (B) Adult female ventrolateral view (scanning electron micrograph) and (C) dorsolateral view (differential interference contrast light microscopy). Scale on (B) also applies to (C). The large size of female in (C) is in part due to some flattening of that specimen during the slide-mounting process. ch, cheliceral stylets; and other notations indicate setae of prodorsal shield and opisthosoma.
Figure 9 in A gall mite, Aceria rhodiolae (Acari: Eriophyidae), altering the phytochemistry of a medicinal plant, Rhodiola rosea (Crassulaceae), in the Canadian Arctic
Figure 9. Salidroside and rosavins contents in Rhodiola rosea plants that were ungalled (healthy, n = 94) and galled (deformed, n = 60) by Aceria rhodiolae. Error bars on y-axis are standard deviations.
Figure 4 in A gall mite, Aceria rhodiolae (Acari: Eriophyidae), altering the phytochemistry of a medicinal plant, Rhodiola rosea (Crassulaceae), in the Canadian Arctic
Figure 4. Legs of Aceria rhodiolae female (scanning electron micrographs), from Nunavik (Canada). (A) Legs I (left) and II (right); (B) legs I (left) and II (right). Arrows show ridges (r) on tibia I and II, and some of the spinules on the anterior margins of trochanter, femur, genu and tibia.
Data from: Phylogeographical patterns of an alpine plant, Rhodiola dumulosa (Crassulaceae), inferred from chloroplast DNA sequences
The phylogeographical patterns of Rhodiola dumulosa, an alpine plant species restrictedly growing in the crevices of rock piles, were investigated based on 4 fragments of the chloroplast genome. To cover the full distribution of R. dumulosa in China, 19 populations from 3 major disjunct distribution areas (northern, central, and northwestern China) were sampled. A total of 5881bp (after alignment) of chloroplast DNA (cpDNA) from 100 individuals were sequenced. The combined cpDNA data set yielded 36 haplotypes. The total genetic diversity of R. dumulosa was remarkably high (H T = 0.981). The interpopulation genetic differentiation was significantly large (F ST = 0.8537, P < 0.001), possibly due to the long-term isolation of the natural populations. N ST was significantly larger than G ST (P < 0.001), indicating the presence of phylogeographical structure among the R. dumulosa populations. We propose 2 migration steps to explain the current distribution of R. dumulosa in China. First, this species migrated from refugia in the Qinghai-Tibetan Plateau to northern areas via the intervening highlands when temperatures increased; second, the highland populations migrated toward the mountaintops when temperatures increased further because R. dumulosa is adapted to cold environments. During the second migration step, the common ancestral haplotypes may have been gradually lost.
FIGURE 5. Rhodiola yushuensis S.Y. Meng et J in Rhodiola yushuensis, a new species of Rhodiola (Crassulaceae) from Qinghai, China
FIGURE 5. Rhodiola yushuensis S.Y. Meng et J. Zhang, (A) natural habitat, (B) cyme, (C) fruits.
FIGURE 5. Rhodiola tricarpa. a. a in Two new species of Rhodiola (Crassulaceae) from the Qinghai-Tibetan Plateau
FIGURE 5. Rhodiola tricarpa. a. a plant and its habitat; b. female flower showing three carpels.
FIGURE 3. Rhodiola daochengensis. a. a in Two new species of Rhodiola (Crassulaceae) from the Qinghai-Tibetan Plateau
FIGURE 3. Rhodiola daochengensis. a. a female plant; b. a male plant; c. rhizome.
Short-Term Rhodiola Rosea: Effects on Hoops Players' Game Time, Fatigue & Performance
ClinicalTrials.gov study NCT07239960. IPD Sharing: YES. Countries: 1. Publications: 0.
Short-Term Rhodiola Rosea for Anaerobic Performance and Cognitive Function in Resistance-Trained Adults
ClinicalTrials.gov study NCT07225413. IPD Sharing: NO. Countries: 1. Publications: 0.
Data from: Phylogeographical patterns of an alpine plant, Rhodiola dumulosa (Crassulaceae), inferred from chloroplast DNA sequences
Open the record for dataset details and reuse information.
Treatment of Fibromyalgia and CFS With Ribose, Ashwagandha, Rhodiola, Licorice, Schisandra and Green Tea Extract
ClinicalTrials.gov study NCT04598243. IPD Sharing: NO. Countries: 1. Publications: 0.
Effects of Four-Week Rhodiola Rosea Supplementation on Physical Fitness, Neuromuscular Performance, and Decision-Making in Competitive Football Players
ClinicalTrials.gov study NCT07366320. IPD Sharing: NO. Countries: 1. Publications: 0.
Management Strategy for Mild to Moderate Major Depression: Combination of Rhodiola and Saffron Extracts.
ClinicalTrials.gov study NCT02981225. IPD Sharing: Not stated. Countries: 1. Publications: 0.
DaZhu Rhodiola Rosea Capsule for Coronary Artery Disease With Angina Pectoris
ClinicalTrials.gov study NCT03633890. IPD Sharing: Not stated. Countries: 1. Publications: 0.
Dietary Supplement With Magnesium, Vitamins, Rhodiola and L-theanine Stressed Subjects: Randomized Study Versus Placebo (MAGRITTE)
ClinicalTrials.gov study NCT04391452. IPD Sharing: Not stated. Countries: 1. Publications: 0.
Effect of Tibet Rhodiola Capsule on Hypoxia and Cardiovascular Risk Factors in Patients With Obstructive Sleep Apnea
ClinicalTrials.gov study NCT03163615. IPD Sharing: Not stated. Countries: 1. Publications: 0.
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
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