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S5007

Sigma-Aldrich

Sunflower seed oil

from Helianthus annuus, liquid, emollient

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About This Item

CAS Number:
EC Number:
MDL number:
UNSPSC Code:
12352200
NACRES:
NA.77

product name

Sunflower seed oil from Helianthus annuus,

density

0.92 g/mL at 25 °C (lit.)

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General description

Sunflower seed oil from Helianthus annuus contains saturated fatty acids (palmitic and stearic acids), monounsaturated fatty acid (oleic acid), and polyunsaturated acid (mostly linoleic acid). In addition, this edible oil also contains nonglyceridic contents including tocopherols and plant sterols, and is rich in vitamins and minerals.

Application

Sunflower seed oil from Helianthus annuus was used as a vehicle to administer tamoxifen and 4-hydroxytamoxifen to mice.

Biochem/physiol Actions

Sunflower seed oil is one of the most used vegetable oils in human nutrition. Oilseed crop sunflower (Helianthus annuus) is also used for biodiesel production. Sunflower oil is used as an emollient in cosmetics, and it serves as an effective phenolic antioxidant. Phytosterols in sunflower oil help in regulating the cholesterol levels in the body. Therefore, sunflower oil may be used to treat pathological conditions such as like acne, arthritis, and hair damage.

supp_hazards

Storage Class

10 - Combustible liquids

wgk_germany

WGK 3

flash_point_f

>230.0 °F

flash_point_c

> 110 °C

ppe

Eyeshields, Gloves


Certificates of Analysis (COA)

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Adam B Sendor et al.
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Vegetable oils: Dietary importance
"Reference Module in Food Science (2016)
Rayan Naser et al.
Scientific reports, 6, 20230-20230 (2016-02-06)
Adult neural stem cells (aNSCs) are relatively quiescent populations that give rise to distinct neuronal subtypes throughout life, yet, at a very low rate and restricted differentiation potential. Thus, identifying the molecular mechanisms that control their cellular expansion is critical
Andria R Robinson et al.
Redox biology, 17, 259-273 (2018-05-11)
Accumulation of senescent cells over time contributes to aging and age-related diseases. However, what drives senescence in vivo is not clear. Here we used a genetic approach to determine if spontaneous nuclear DNA damage is sufficient to initiate senescence in
Takayuki Hirota et al.
Biology of reproduction, 85(2), 367-377 (2011-04-29)
Germ cells ensure the diversification and totipotency of genetic information via the elaborate genetic and epigenetic regulation of the genome architecture during their development. To understand the mechanism underlying the regulation of genome function in germ cells, it is of

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