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Merck

440025

Sigma-Aldrich

Luteolin

≥90% (HPLC), antioxidant flavonoid, solid

동의어(들):

Luteolin, 3ʹ,4ʹ,5,7-Tetrahydroxyflavone

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크기 선택


제품정보 (DICE 배송 시 비용 별도)

실험식(Hill 표기법):
C15H10O6
CAS 번호:
Molecular Weight:
286.24
MDL number:
UNSPSC 코드:
12352200
NACRES:
NA.77
기술 서비스
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도움 문의

제품 이름

Luteolin, An antioxidant flavonoid and a free radical scavenger.

Quality Level

설명

Merck USA index - 14, 5614

분석

≥90% (HPLC)

양식

solid

제조업체/상표

Calbiochem®

저장 조건

OK to freeze
protect from light

색상

yellow

solubility

aqueous base: 1.4 mg/mL
DMSO: 7 mg/mL
ethanol: soluble

배송 상태

ambient

저장 온도

2-8°C

SMILES string

[o]1c2c([c](cc1c3cc(c(cc3)O)O)=O)c(cc(c2)O)O

InChI

1S/C15H10O6/c16-8-4-11(19)15-12(20)6-13(21-14(15)5-8)7-1-2-9(17)10(18)3-7/h1-6,16-19H

InChI key

IQPNAANSBPBGFQ-UHFFFAOYSA-N

일반 설명

An antioxidant flavonoid and a free radical scavenger. Inhibits rat liver cytosolic glutathione S-transferase activity. Also shows cytotoxic effects on Raji lymphoma cells. Incubation of the non-tumor cell line C3H10T½CL8 with luteolin results in induction of p53 accumulation and apoptosis, with apoptosis occurring at the G2/M phase of the cell cycle. Also shown to inhibit TPL2 kinase.

생화학적/생리학적 작용

Cell permeable: no
Primary Target
rat liver cytosolic glutathione S-transferase activity
Product does not compete with ATP.
Reversible: no

포장

Packaged under inert gas

제조 메모

Following reconstitution, aliquot and freeze (-20°C). Stock solutions are stable for up to 4 weeks at -20°C.

기타 정보

Kim, J.E., et al. 2011. J. Pharmacol. Exp. Ther.in press.
Korkina, L.G., and Afanasev, I.B. 1997. Adv. Pharmacol.38, 151.
Plaumann, B., et al. 1996. Oncogene 13, 1605.
Ramanathan, R., et al. 1994. Free Radic. Biol. Med.16, 43.
Shimoi, L., et al. 1994. Carcinogenesis15, 2669.

법적 정보

CALBIOCHEM is a registered trademark of Merck KGaA, Darmstadt, Germany

면책조항

Toxicity: Standard Handling (A)

Storage Class Code

11 - Combustible Solids

WGK

WGK 3

Flash Point (°F)

Not applicable

Flash Point (°C)

Not applicable


시험 성적서(COA)

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"Aging: getting older, exhibiting the signs of age, the decline in the physical (and mental) well-being over time, leading to death. Since the beginning of time, man has been obsessed with trying to slow down, stop, or even reverse the signs of aging. Many have gone as far as experimenting with nutritional regimens, eccentric exercises, fantastic rituals, and naturally occurring or synthetic wonder-elements to evade the signs of normal aging. Biologically speaking, what is aging? And what does the latest research tell us about the possibility of discovering the elusive “fountain of youth”? Many advances in our understanding of aging have come from systematic scientific research, and perhaps it holds the key to immortality. Scientifically, aging can be defined as a systems-wide decline in organismal function that occurs over time. This decline occurs as a result of numerous events in the organism, and these events can be classified into nine “hallmarks” of aging, as proposed by López-Otin et al. (2013). Several of the pathologies associated with aging are a direct result of these events going to extremes and may also involve aberrant activation of proliferation signals or hyperactivity. The hallmarks of aging have been defined based on their fulfillment of specific aging related criteria, such as manifestation during normal aging, acceleration of aging if experimentally induced or aggravated, and retardation of aging if prevented or blocked, resulting in increased lifespan. The nine hallmarks of aging are genomic instability, telomere attrition, epigenetic alterations, loss of proteostasis, deregulated nutrient sensing, mitochondrial dysfunction, cellular senescence, stem cell exhaustion, and altered intercellular communication. The biological processes underlying aging are complex. By understanding the hallmarks in greater detail, we can get closer to developing intervention strategies that can make the aging process less of a decline, and more of a recline."

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