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Merck

A9594

Sigma-Aldrich

ANTI-FLAG® M2 monoclonal antibody produced in mouse

clone M2, purified immunoglobulin, buffered aqueous solution (Supplied as a solution in 10 mM sodium phosphate)

Sinónimos:

Anti-ddddk, Anti-dykddddk

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About This Item

UNSPSC Code:
41106514
NACRES:
NA.32

biological source

mouse

conjugate

CY3 conjugate

antibody form

purified immunoglobulin

antibody product type

primary antibodies

clone

M2, monoclonal

form

buffered aqueous solution (Supplied as a solution in 10 mM sodium phosphate)

species reactivity

all

concentration

~1 mg/mL

technique(s)

direct immunofluorescence: 10 μg/mL using mammalian cells fixed with methanol:acetone

isotype

IgG1

immunogen sequence

DYKDDDDK

shipped in

dry ice

storage temp.

−20°C

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General description

Monoclonal ANTI-FLAG M2-Cy3 (mouse IgG) antibody is covalently conjugated to cyanine dye Cy3. The antibody conjugate binds to FLAG fusion proteins, and will recognize the FLAG sequence at the N-terminus, Met-N-terminus, or C-terminus of FLAG fusion proteins.

Application

Applications in which this antibody has been used successfully, and the associated peer-reviewed papers, are given below.
Western Blotting (1 paper)
For simple, one-step detection by immunocytochemistry. Especially useful in detection of FLAG fusion proteins expressed in murine host, where secondary anti-mouse antibodies might cause cross-reactivity.

Learn more product details in our FLAG® application portal.

Physical form

Solution in phosphate buffered saline plus 1% BSA and preservative

Preparation Note

Dilute the antibody in Tris buffered saline (TBS): 0.05 M Tris,pH 7.4, with 0.15 M NaCl.

Other Notes

Suggested concentration of 1-10 mg/ml for immunocytochemistry.

Legal Information

ANTI-FLAG is a registered trademark of Merck KGaA, Darmstadt, Germany
Cy3 is a trademark of Cytiva
FLAG is a registered trademark of Merck KGaA, Darmstadt, Germany

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Storage Class

10 - Combustible liquids

flash_point_f

Not applicable

flash_point_c

Not applicable


Certificados de análisis (COA)

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Oliver Wicht et al.
Journal of virology, 88(9), 4943-4952 (2014-02-21)
Enveloped viruses carry highly specialized glycoproteins that catalyze membrane fusion under strict spatial and temporal control. To prevent premature activation after biosynthesis, viral class I fusion proteins adopt a locked conformation and require proteolytic cleavage to render them fusion-ready. This
Saifeng Wang et al.
Genes & development, 33(15-16), 1048-1068 (2019-06-22)
Fetal hematopoietic stem and progenitor cells (HSPCs) hold promise to cure a wide array of hematological diseases, and we previously found a role for the RNA-binding protein (RBP) Lin28b in respecifying adult HSPCs to resemble their fetal counterparts. Here we
Takeshi Yoshizumi et al.
Biomacromolecules, 19(5), 1582-1591 (2018-03-31)
Selective gene delivery into organellar genomes (mitochondrial and plastid genomes) has been limited because of a lack of appropriate platform technology, even though these organelles are essential for metabolite and energy production. Techniques for selective organellar modification are needed to
Robert S Ohgami et al.
Blood, 108(4), 1388-1394 (2006-04-13)
Iron and copper are essential for all organisms, assuming critical roles as cofactors in many enzymes. In eukaryotes, the transmembrane transport of these elements is a highly regulated process facilitated by the single electron reduction of each metal. Previously, we
Q Jin et al.
Blood cancer journal, 6(9), e478-e478 (2016-10-01)
FAXDC2 (fatty acid hydroxylase domain containing 2) is a member of the fatty acid hydroxylase superfamily. Given the important role of fatty acids in megakaryocytes, we have studied the role of this gene in the development of this lineage. Here

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