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Key Documents

SAB1410405

Sigma-Aldrich

Anti-AKR1B1 antibody produced in rabbit

purified immunoglobulin, buffered aqueous solution

Synonyme(s) :

ADR, ALDR1, ALR2, AR, MGC1804

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About This Item

Code UNSPSC :
12352203
Nomenclature NACRES :
NA.41

Source biologique

rabbit

Conjugué

unconjugated

Forme d'anticorps

purified immunoglobulin

Type de produit anticorps

primary antibodies

Clone

polyclonal

Forme

buffered aqueous solution

Poids mol.

antigen 34.76 kDa

Espèces réactives

human

Technique(s)

western blot: 1 μg/mL

Numéro d'accès NCBI

Numéro d'accès UniProt

Conditions d'expédition

dry ice

Température de stockage

−20°C

Modification post-traductionnelle de la cible

unmodified

Informations sur le gène

human ... AKR1B1(231)

Description générale

This gene encodes a member of the aldo/keto reductase superfamily, which consists of more than 40 known enzymes and proteins. This member catalyzes the reduction of a number of aldehydes, including the aldehyde form of glucose, and is thereby implicated in the development of diabetic complications by catalyzing the reduction of glucose to sorbitol. Multiple pseudogenes have been identified for this gene. The nomenclature system used by the HUGO Gene Nomenclature Committee to define human aldo-keto reductase family members is known to differ from that used by the Mouse Genome Informatics database. (provided by RefSeq)

Immunogène

AKR1B1 (AAH00260.1, 1 a.a. ~ 316 a.a) full-length human protein.

Sequence
MASRLLLNNGAKMPILGLGTWKSPPGQVTEAVKVAIDVGYRHIDCAHVYQNENEVGVAIQEKLREQVVKREELFIVSKLWCTYHEKGLVKGACQKTLSDLKLDYLDLYLIHWPTGFKPGKEFFPLDESGNVVPSDTNILDTWAAMEELVDEGLVKAIGISNFNHLQVEMILNKPGLKYKPAVNQIECHPYLTQEKLIQYCQSKGIVVTAYSPLGSPDRPWAKPEDPSLLEDPRIKAIAAKHNKTTAQVLIRFPMQRNLVVIPKSVTPERIAENFKVFDFELSSQDMTTLLSYNRNWRVCALLSCTSHKDYPFHEEF

Actions biochimiques/physiologiques

Aldo-keto reductase family 1, member B1 (AKR1B1) takes part in the reduction of aldehydes. It can be induced by proteasome inhibitors in human colon cancer cell lines HT-29 and SW-480.

Forme physique

Solution in phosphate buffered saline, pH 7.4

Clause de non-responsabilité

Unless otherwise stated in our catalog or other company documentation accompanying the product(s), our products are intended for research use only and are not to be used for any other purpose, which includes but is not limited to, unauthorized commercial uses, in vitro diagnostic uses, ex vivo or in vivo therapeutic uses or any type of consumption or application to humans or animals.

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Code de la classe de stockage

10 - Combustible liquids

Classe de danger pour l'eau (WGK)

WGK 3

Point d'éclair (°F)

Not applicable

Point d'éclair (°C)

Not applicable


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Consulter la Bibliothèque de documents

Variants in the gene encoding aldose reductase (AKR1B1) and diabetic nephropathy in American Indians.
Wolford JK
Diabetic Medicine : a Journal of the British Diabetic Association, 23(4), 367-376 (2006)
Pushplata Prasad et al.
BMC medical genetics, 11, 52-52 (2010-04-01)
To determine association of nine single nucleotide polymorphisms (SNPs) in ADP ribosyltransferase-1 (ADPRT1), aldo-keto reductase family 1 member B1 (AKR1B1), receptor for advanced glycation end-products (RAGE), glutamine:fructose-6-phosphate amidotransferase-2 (GFPT2), and plasminogen activator inhibitor-1 (PAI-1) genes with chronic renal insufficiency (CRI)
Bettina Ebert et al.
Chemico-biological interactions, 191(1-3), 239-249 (2011-01-11)
Aldo-keto reductases (AKRs) play central roles in the reductive metabolism of endogenous signaling molecules and in the detoxification of xenobiotics. AKRC1-1C3, AKR1B1 and AKR1B10 have been shown to be regulated via nuclear factor-erythroid 2 related factor 2 (Nrf2), a transcription
Liping Zhang et al.
FEBS letters, 587(22), 3681-3686 (2013-10-09)
The antineoplastic target aldo-keto reductase family member 1B10 (AKR1B10) and the critical polyol pathway enzyme aldose reductase (AKR1B1) share high structural similarity. Crystal structures reported here reveal a surprising Trp112 native conformation stabilized by a specific Gln114-centered hydrogen bond network
Linda M Dairiki Shortliffe et al.
The Journal of urology, 191(6), 1913-1919 (2014-02-13)
Testosterone affects male development, maturation and aging but limited data exist on testosterone effects on the juvenile genitourinary system. We hypothesized that testosterone has bladder and kidney developmental effects, and investigated this in juvenile male rats. To examine the testosterone

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