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131 results for “Nigella”
Therapeutic Potential of Nigella sativa Extract against Inflammatory Markers Interleukin-1ß (IL-1ß) and Tumor Necrosis Factor-α (TNF-α) in Rat Models with High Fat Diet
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Subspecies and Distribution. R.m.mariannaDesmarest,1822—Luzon|andassociatedsmallerIs. R.m.barandanaHeude,1888—MindoroI. R. m. nigella Hollister, 1813 — Mindanao, Basilan, Samar, and Leyte Is. In addition to its native range, introduced populations of this species are found on the islands of Guam, Saipan and Rota in the Mariana Is and Pohnpei in the Caroline Is. The Philippine Brown Deer was also introduced to the Japanese Bonin Islands, where it later became extinct. in Cervidae
Subspecies and Distribution. R.m.mariannaDesmarest,1822—Luzon|andassociatedsmallerIs. R.m.barandanaHeude,1888—MindoroI. R. m. nigella Hollister, 1813 — Mindanao, Basilan, Samar, and Leyte Is. In addition to its native range, introduced populations of this species are found on the islands of Guam, Saipan and Rota in the Mariana Is and Pohnpei in the Caroline Is. The Philippine Brown Deer was also introduced to the Japanese Bonin Islands, where it later became extinct.
FIGURES 110‒117. Habitus. 110. Cacopsylla moiwasana, adult female. 111. Cacopsylla nigella, adult male. 112. Cacopsylla nigella, adult female. 113 in Check list of jumping plant-lice (Hemiptera: Psylloidea) of the Korean Peninsula
FIGURES 110‒117. Habitus. 110. Cacopsylla moiwasana, adult female. 111. Cacopsylla nigella, adult male. 112. Cacopsylla nigella, adult female. 113. Cacopsylla nigella, overwintering second and third instar immatures. 114. Cacopsylla nigella, fifth instar immature. 115. Cacopsylla nopeunsanicola, adult male. 116. Cacopsylla nopeunsanicola, adult female. 117. Cacopsylla nopeunsanicola, fifth instar immature. (Photos 110 from Cho et al. (2019a), 111, 114 from Cho et al. (2017b), 115–117 from Cho et al. (2017a))
Fig. 3 in Identification and functional characterization of a γ-terpinene synthase in Nigella sativa L (black cumin)
Fig. 3. Identification of NsTPS1 products after heterologous expression in E. coli. (A) Analysis of terpene products of NsTPS1 after incubation with the substrate GDP. The lower trace shows the products of the empty vector control construct with the same in vitro assay conditions. Terpenes were extracted with an SPME fiber and analyzed by GC-MS as described in the methods section. The following terpenes were identified: 1, α-pinene/α-phellandrene, 2, β-ocimene, 3, β-pinene, 4, α-terpinene, 5, p- cymene, 6, limonene, 7, γ-terpinene, 8, α-terpinolene, 9, geraniol. Geraniol is just an artifact of the in vitro assay, it is not a specific product of the g-terpinene synthase. It is formed from the GPP substrate by unspecific phosphatases from the E. coli crude extract. (B) Mass spectrum of γ-terpinene extracted from the in vitro assay. (B) Mass spectrum of γ-terpinene extracted from the in vitro assay.
Fig. 1 in Identification and functional characterization of a γ-terpinene synthase in Nigella sativa L (black cumin)
Fig. 1. Predicted biosynthetic pathway for the production of thymoquinone in N. sativa seed. The precursor geranyl diphosphate (GDP) is converted to γ-terpinene by the γ-terpinene synthase NsTPS1. This product may be oxidized by cytochrome P450 monooxygenases (P450s) of the CYP71D subfamily to produce an unstable cyclohexadienol intermediates which is then dehydrogenated by a short-chain dehydrogenase/reductase (SDR) to the corresponding ketone. The resulting carvacrol and thymol may then be hydroxylated to thymo-hydroquinone and further oxidized to thymoquinone (based on Krause et al., 2021).
Master data of the article "Effect of ethanol extract of nigella sativa L seeds and propofol on BDNF protein level as neuroplasticity and neuroprotection of traumatic brain injury in rats"
<p><strong>Master data of the article "Effect of ethanol extract of nigella sativa L seeds and propofol on BDNF protein level as neuroplasticity and neuroprotection of traumatic brain injury in rats"</strong></p>
Nigella Sativa Supplementation in Hyperlipidemia Treatment
ClinicalTrials.gov study NCT06890546. IPD Sharing: NO. Countries: 1. Publications: 21.
Honey & Nigella Sativa Trial Against COVID-19
ClinicalTrials.gov study NCT04347382. IPD Sharing: NO. Countries: 1. Publications: 5.
Honey and Nigella Sativa in COVID-19 Prophylaxis
ClinicalTrials.gov study NCT04767087. IPD Sharing: UNDECIDED. Countries: 1. Publications: 1.
Clinical and Radiographic Evaluation of Turmeric, Thymus Vulgaris, Nigella Sativa and Aloe Vera as Pulpotomy Medicaments in Primary Teeth
ClinicalTrials.gov study NCT04719247. IPD Sharing: NO. Countries: 1. Publications: 3.
Benefits of Nigella Sativa in Children With Beta Thalassemia Major
ClinicalTrials.gov study NCT02816957. IPD Sharing: UNDECIDED. Countries: 1. Publications: 0.
Effects of Nigella Sativa on T Cells and Cytokine Profile in Pediatric SLE Patients
ClinicalTrials.gov study NCT06560775. IPD Sharing: NO. Countries: 1. Publications: 6.
The Efficacy of Nigella Sativa Versus VitaminD3 as Supplement Therapy in Coronavirus Disease 2019 (COVID-19)
ClinicalTrials.gov study NCT04981743. IPD Sharing: Not stated. Countries: 1. Publications: 5.
Investigation of the Effect of Nigella Sativa Oil and Sesame Oil in Preventing Phlebitis
ClinicalTrials.gov study NCT06030141. IPD Sharing: NO. Countries: 1. Publications: 0.
Effects of Nigella Sativa Oil on Pain Intensity and Physical Functions in Patients With Knee Osteoarthritis
ClinicalTrials.gov study NCT05541185. IPD Sharing: YES. Countries: 1. Publications: 2.
Effectiveness of Nigella Sativa (Kalonji) Seed in Dyslipidemia
ClinicalTrials.gov study NCT00327054. IPD Sharing: Not stated. Countries: 1. Publications: 5.
Genetic diversity among black cumin (<em>Nigella sativa</em> L.) accessions based on quantitative and qualitative traits
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Data from: Diversification in continental island archipelagos: new evidence on the roles of fragmentation, colonization and gene flow on the genetic divergence of Aegean Nigella (Ranunculaceae)
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Fig. 1 in The ethnobotany, phytochemistry, and biological properties of Nigella damascena - A review
Fig. 1. Detail of the flower of N. damascena (Photo by: Pasquale Marino).
Fig. 5 in The ethnobotany, phytochemistry, and biological properties of Nigella damascena - A review
Fig. 5. Flavonoids (41–52) and aromatic compounds (53–57) isolated from N. damascena.
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