Epitope Tags
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Length (Sequence) (kDa)
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Alternate Names
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Source
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Notes
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HA
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YPYDVPDYA
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Hemagglutinin
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Amino acids 98-106 of Human influenza hemagglutin which is a surface glycoprotein required for the infectivity of the human virus
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Strong immunoreactive epitope and mild elution conditions makes it a popular epitope tag to purify tagged proteins 10; useful in mammalian expression systems 9; not suitable for detection or purification of proteins from apoptotic cells since it is cleaved by Caspase-3 and / or Caspase-7 after its sequence DVPD, causing it to lose its immunoreactivity 11
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HIS
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H-H-H-H-H-H
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6 His
6X-His
HHHHHH tag
polyHistidine
hexa-histidine tag
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Synthetic
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Most common purification tag; Purification via Nickel, Cobalt, Copper, or Zinc column (Find Nickel and Cobalt Resin here); Regenerable affinity matrix 9
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FLAG TM
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DYKDDDDK
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Ty 1 Tag
DDK tag
DDDDK tag
DYKDDDDK tag
xxxDDDDK epitope tag
Enterokinase Cleavage Site tag
ECS tag
Ty 1
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Synthetic
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Hydrophilic epitope tag introduced to purify fusion proteins 10; Contains internal Enterokinase cleavage site
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AU1
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DTYRYI
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Major capsid protein of bovine papillomavirus-1 (BPV-1)
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Not recommended for affinity purification as protein properties may get altered during low pH elution step 9
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AU5
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TDFYLK
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Major capsid protein of bovine paillomavirus-1 (BPV-1)
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Not recommended for affinity purification as protein properties may get altered during low pH elution step 9
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Myc
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EQKLISEEDL
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Amino acid residues 410-419 of Human c-Myc
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Not recommended for affinity purification as protein properties may get altered during low pH elution step 9
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Glu-Glu
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EYMPME
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Amino acid residues 314-319 of middle T antigen of mouse polyomavirus
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Not recommended for affinity purification as protein properties may get altered during low pH or 30°C elution step 9
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OLLAS
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SGFANELGPRLMGK
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OLLA-2
E.coli OmpF Linker and mouse
Langerin fusion Sequence
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14 amino acid sequence residing in the junction between E. coli OmpF protein (OFL/OmpF linker) and mLangerin extracellular domain.
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The OLLAS epitope tag is detectable at approximately 100-fold lower levels than similar commercially available tags
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T7
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MASMTGGQQMG
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11 amino acid N-terminus of Bacteriophage T7 gene 10
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May help increase expression; Not recommended for affinity purification as protein properties may get altered during low pH elution step 9
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V5
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GKPIPNPLLGLDST
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Parainfluenza virus 5 V/P tag
Paramyxovirus SV5 tag
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Amino acid residues 95 to 108 of RNA polymerase alpha subunit of simion virus 5
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Some cross reactivity may occur when using mammalian expression systems; Recommended for affinity purification in combination with His-tag 9
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VSV-G
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YTDIEMNRLGK
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Vesicular stomatitis virus glycoprotein tag
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11 amino acid C-terminus of the Vesicular Stomatitis viral glycoprotein
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Not recommended for affinity purification as protein properties may get altered during low pH elution step 9
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E-Tag
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GAPVPYPDPLEPR
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Bone hormone osteocalcin produced by osteoblasts
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S-Tag
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KETAAAKFERQHMDS
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S 7 Epitope tag
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15 amino acid sequence at N-terminus of RNase A
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Not recommended for affinity purification as protein properties may get altered during low pH elution step 9
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Avi
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CGLNDIFEAQKIEWHE
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Synthetic
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Allows for either the in-vivo or in-vitro enzymatic biotinylation by the biotin ligase BirA from E. coli; May lead to decreased solubility 12
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HSV
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SQPELAPEDPED
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Herpes Simplex Virus tag
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C-terminal placement only; Not recommended for affinity purification as protein properties may get altered during low pH elution step 9
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KT3
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KPPTPPPEPET
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Simian Virus 40 (SV40) large T-antigen
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Not recommended for affinity purification as protein properties may get altered during low pH elution step 9
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TK15
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(R/K)TV(I/L)HGESNSA(I/L)(I/L)(I/L)GPR
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Xenopus Orc1p
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No cross-reactivity with mammalian or bacterial proteins has been detected; Used for immunoaffinity purification 16
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Strep-tag II
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WSHPQFEK or AWAHPQPGG
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Synthetic
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Regenerable affinity matrix; compatible with purifications requiring anaerobic conditions 9
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Beta-Galactosidase
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116 kDa
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Enzyme coded by lac z gene in the lac operon of E. coli
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Metalloenzyme that splits lactose into glucose and galactose; Allows for enzymatic protein quantification assays; May protect from proteolytic activity; May decrease solubility; Tag may form tetramers in solution 9
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Maltose Binding Protein
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42.5 kDa
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MBP
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Maltose/maltodextrin system of E. coli
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Amylose purification column compatible with non-ionizing detergents and high salt but not reducing agents; Large size; N-terminal tagging may reduce translation efficiency; 9; Enhanced protein production 13
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Calmodulin Binding Protein (CBP)
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4 kDa
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Cytoplasm of all Eukaryotic cells
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No cross-reaction with any endogenous E.coli proteins; High yield affinity Calmodulin column purification; Not useful for purification from eukaryotic cells; N-terminus tagging may reduce translation efficiency 9
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Green Fluorescent Protein (GFP)
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27 kDa
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Jellyfish Aequorea Victoria
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Major excitation peak at a wavelength of 395 nm and a minor one at 475 nm; emission peak is at 509 nm; Detectable in living organisms without antibody; Can sometimes be non-specifically directed to nucleus; Useful to monitor protein-protein interactions by FRET; Very large; Dimerization may occur 9; Useful in protein-folding assays 5
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Glutathione S Transferase (GST)
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27 kDa
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Eukaryotes and Prokaryotes
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Affinity purification via relatively reusable glutathione conjugated columns; purification under native conditions only; Highly antigenic; may cause insolubility; may dimerize 9
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mCherry
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28 kDa
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DsRED
Red Fluorescent Protein
RFP
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Disc corals of Discosoma species
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Useful to monitor protein-protein interactions by FRET; Excitation maximum at 587 nm and an emission maximum at 610 nm
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Fc-Fusion Proteins
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Fc chimeric fusion proteins
Fc-Ig's
Fc-tag protein
Ig-based Chimeric fusion protein
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Fc domain of IgG Antibody
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The Fc domain can improve the solubility and stability of the tagged protein both in vitro and in vivo; Easy cost-effective purification by protein-G/A affinity chromatography 14
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Thioredoxin
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12 kDa
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Trx
TRDX
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Found in all organisms; Encoded by TXN and TXN2 genes in humans
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Can enhance the solubility of tagged protein 15
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Peptide tags in grey.
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Fusion Proteins in blue.
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View All Epitope Tags
Cleavage Sites
Tags are removable by proteolytic enzymes that cleave the tag from the protein of interest, and generally the cleavage site needs to be engineered between the tag and the protein. Consider utilizing these commonly used proteases in your experiments:
(Note: // denotes cleavage site)
References
1. BioTechniques, Vol. 44, No. 5, Mini-Review: Epitope Tagging; Bill Brizzard; Published online: 16 May 2018, https://doi.org/10.2144/000112841
2, Kimple ME, Brill AL, Pasker RL. Overview of affinity tags for protein purification. Curr Protoc Protein Sci. 2013;73:Unit 9.9. Published 2013 Sep 24. doi:10.1002/0471140864.ps0909s73
3. Walls D., Loughran S.T. (2011) Tagging Recombinant Proteins to Enhance Solubility and Aid Purification. In: Walls D., Loughran S. (eds) Protein Chromatography. Methods in Molecular Biology (Methods and Protocols), vol 681. Humana Press
4. Terpe, K. Appl Microbiol Biotechnol (2003) 60: 523. https://doi.org/10.1007/s00253-002-1158-6
5. Nat Biotechnol. 1999 Jul;17(7):691-5.Rapid protein-folding assay using green fluorescent protein. Waldo GS1, Standish BM, Berendzen J, Terwilliger TC.
6. Sabourin, M. , Tuzon, C. T., Fisher, T. S. and Zakian, V. A. (2007), A flexible protein linker improves the function of epitope‐tagged proteins in Saccharomyces cerevisiae. Yeast, 24: 39-45. doi:10.1002/yea.1431
7. Zordan RE, Beliveau BJ, Trow JA, Craig NL, Cormack BP. Avoiding the ends: internal epitope tagging of proteins using transposon Tn7. Genetics. 2015;200(1):47-58.
8. Maue, R. A. (2007), Understanding ion channel biology using epitope tags: Progress, pitfalls, and promise. J. Cell. Physiol., 213: 618-625. doi:10.1002/jcp.21259
9. Kimple ME, Brill AL, Pasker RL. Overview of affinity tags for protein purification. Curr Protoc Protein Sci. 2013;73:Unit 9.9. Published 2013 Sep 24. doi:10.1002/0471140864.ps0909s73
10. Zhao X, Li G, Liang S. Several affinity tags commonly used in chromatographic purification. J Anal Methods Chem. 2013;2013:581093.
11. Nat Methods. 2007 Feb;4(2):107-8. The HA tag is cleaved and loses immunoreactivity during apoptosis. Schembri L, Dalibart R, Tomasello F, Legembre P, Ichas F, De Giorgi F
12. Mukherjee S, Ura M, Hoey RJ, Kossiakoff AA. A New Versatile Immobilization Tag Based on the Ultra High Affinity and Reversibility of the Calmodulin-Calmodulin Binding Peptide Interaction. J Mol Biol. 2015;427(16):2707-25.
13. Reuten R, Nikodemus D, Oliveira MB, et al. Maltose-Binding Protein (MBP), a Secretion-Enhancing Tag for Mammalian Protein Expression Systems. PLoS One. 2016;11(3):e0152386. Published 2016 Mar 30. doi:10.1371/journal.pone.0152386
14. Exp Cell Res. 2011 May 15;317(9):1261-9. doi: 10.1016/j.yexcr.2011.02.013. Epub 2011 Mar 1. Introduction to current and future protein therapeutics: a protein engineering perspective. Carter PJ.
15. J Biol Chem. 1995 Oct 27;270(43):25328-31. Increase of solubility of foreign proteins in Escherichia coli by coproduction of the bacterial thioredoxin. Yasukawa T1, Kanei-Ishii C, Maekawa T, Fujimoto J, Yamamoto T, Ishii S.
16. J Biol Chem. 1998 Dec 4;273(49):32421-9.
The Orc4p and Orc5p subunits of the Xenopus and human origin recognition complex are related to Orc1p and Cdc6p.
Tugal T1, Zou-Yang XH, Gavin K, Pappin D, Canas B, Kobayashi R, Hunt T, Stillman B.
*FLAG is a trademark of Sigma Aldrich
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