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Key Documents

G6539

Sigma-Aldrich

Monoclonal Anti-Green Fluorescent Protein (GFP) antibody produced in mouse

clone GFP-20, ascites fluid

Synonyme(s) :

GFP Antibody - Monoclonal Anti-Green Fluorescent Protein (GFP) antibody produced in mouse, Gfp Antibody Sigma, Gfp Monoclonal Antibody

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About This Item

Numéro MDL:
Code UNSPSC :
12352203
Nomenclature NACRES :
NA.46

Source biologique

mouse

Niveau de qualité

Conjugué

unconjugated

Forme d'anticorps

ascites fluid

Type de produit anticorps

primary antibodies

Clone

GFP-20, monoclonal

Poids mol.

antigen 27 kDa

Contient

15 mM sodium azide

Conditionnement

antibody small pack of 25 μL

Technique(s)

dot blot: suitable
indirect ELISA: suitable
western blot: 1:2,000 using purified recombinant GFP preparation

Isotype

IgG1

Conditions d'expédition

dry ice

Température de stockage

−20°C

Modification post-traductionnelle de la cible

unmodified

Description générale

Monoclonal Anti-Green Fluorescent Protein (GFP) (mouse IgG1 isotype) is derived from the GFP-20 hybridoma produced by the fusion of mouse myeloma cells and splenocytes from a BALB/c mouse immunized with a GFP tagged fusion protein. GFP is a 27 kDa (238 amino acid) protein, derived from the bioluminescent jellyfish Aequorea victoria, in which light is produced when energy is transferred from the Ca2+-activated photoprotein aequorin to GFP. GFP is a unique tool to monitor dynamic processes in a variety of living cells or organisms. When expressed in either eukaryotic or prokaryotic cells and illuminated by blue or UV light, GFP yields a bright green fluorescence. Light-stimulated GFP fluorescence is species-independent and a fluorescence has been reported from many different types of GFP-expressing hosts, including microbes, invertebrates, vertebrates and plants. Exogenous substrates and cofactors are not required for the fluorescence of GFP, since GFP autocatalytically forms a fluorescent pigment from natural amino acids present in the nascent protein. GFP signals can be quantified by flow cytometry, confocal scanning laser microscopy, and fluorometric assays. Indeed, many recombinant proteins have been engineered with GFP tags to facilitate the detection, isolation and purification of the proteins.
The Green Fluorescent Protein (GFP) is derived from the jellyfish Aequorea Victoria and is often used as a gene expression marker. Thus, antibodies to GFP can facilitate the detection and analysis of GFP labeled nucleic acids and proteins. Monoclonal Anti-Green Fluorescent Protein (GFP) antibody is specific for GFP and GFP-labeled biomolecules.

Immunogène

GFP tagged fusion protein
GFP tagged fusion protein.

Application

Monoclonal Anti-Green Fluorescent Protein (GFP) antibody is suitable for use in western blot and ChIP assays.
Monoclonal Anti-Green Fluorescent Protein (GFP) recognizes GFP (27 kDa) using immunoblotting, dot blot, immunoprecipitation, immunocytochemistry, immunofluorescence, chromatin immunoprecipitation and enzyme linked immunosorbent assay (ELISA). The antibody reacts with fusion proteins expressed by prokaryotes expression vectors.

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

12 - Non 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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Justin M O'Sullivan et al.
Nature genetics, 36(9), 1014-1018 (2004-08-18)
Mechanistic analysis of transcriptional initiation and termination by RNA polymerase II (PolII) indicates that some factors are common to both processes. Here we show that two long genes of Saccharomyces cerevisiae, FMP27 and SEN1, exist in a looped conformation, effectively
Gene loops juxtapose promoters and terminators in yeast
O'Sullivan JM, et al.
Nature Genetics, 36(9), 1014-1014 (2004)
Akira Fushiki et al.
eLife, 5 (2016-02-18)
Animals move by adaptively coordinating the sequential activation of muscles. The circuit mechanisms underlying coordinated locomotion are poorly understood. Here, we report on a novel circuit for the propagation of waves of muscle contraction, using the peristaltic locomotion of Drosophila
Yanfeng Dai et al.
The Journal of biological chemistry, 286(22), 19905-19916 (2011-04-05)
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