The c-Myc tag peptide (often written Myc-tag or c-Myc epitope tag) is a synthetic decapeptide corresponding to a short region of the human MYC proto-oncogene. It is one of the most widely used epitope tags for recombinant protein expression, immunodetection, and affinity purification in cell biology and molecular biotechnology. Wikipédia+1
Below is a long, technical, SEO-oriented overview of the c-Myc tag peptide, its biochemical properties, and how it is used in Western blot, immunoprecipitation, immunofluorescence, flow cytometry, and ELISA, with many embedded links to authoritative .edu and .gov resources.
Origin of the c-Myc tag peptide
The c-Myc tag is derived from the C-terminal region of the human MYC proto-oncogene, a nuclear phosphoprotein that regulates cell growth, proliferation, and apoptosis. The human MYC gene is a canonical proto-oncogene with a central role in transcriptional control of metabolism and cell-cycle progression, as described in the NCBI Gene entry for MYC and related cancer biology resources from the National Cancer Institute (NCI):
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NCI – MYC gene family definition Institut National du Cancer
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NIH EDRN – MYC biomarker page Early Detection Research Network
In cancer-biology literature, c-Myc is described as a “master regulator” of cellular metabolism, promoting transcriptional programs that support growth and proliferation. PMC+1 This biological importance drove the development of high-affinity monoclonal antibodies to discrete c-Myc epitopes. One of these epitopes, recognized by the classic 9E10 antibody, corresponds to residues 410–419 and became the c-Myc tag peptide widely used as a recombinant protein tag (sequence EQKLISEEDL). PubMed+2ptglab.com+2
Sequence and biochemical properties of the c-Myc tag peptide
Key features:
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Length: 10 amino acids (decapeptide). Thermo Fisher Scientific+1
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Approximate molecular mass: ~1,200–1,210 Da for the free peptide. creative-diagnostics.com
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Charge: Enriched in acidic residues (Glu, Asp) with one Lys; at physiological pH the peptide is net negatively charged, improving solubility and decreasing aggregation tendencies.
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Hydrophilicity: High polarity makes the tag compatible with aqueous buffers commonly used in protein expression and purification, as described in university teaching materials on protein biochemistry and purification such as MIT OCW – Protein expression & purification and WOU “Investigating proteins” textbook. MIT OpenCourseWare+1
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Predicted structure: The short length and composition favor a flexible, largely unstructured conformation, which minimizes steric interference with the folding and activity of the fused protein.
Because of its small size and hydrophilicity, the c-Myc tag peptide rarely disrupts the native conformation, enzymatic activity, or subcellular targeting of many fusion partners. This makes it attractive for tagging membrane proteins, transcription factors, kinases, and signaling proteins that are sensitive to large fusion tags.
c-Myc tag peptide as an epitope tag system
Epitope tagging concept
Epitope tagging is the strategy of fusing a short, well-characterized peptide epitope to a recombinant protein so that a single, validated antibody can be used for detection and purification. Comprehensive overviews of epitope tagging are available in peer-reviewed articles and reviews:
These reviews emphasize that epitope tags like c-Myc make it possible to:
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Monitor expression levels in SDS-PAGE and Western blotting.
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Perform immunoprecipitation (IP) and co-IP without raising new antibodies.
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Visualize subcellular localization by immunofluorescence/confocal microscopy.
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Capture tagged proteins using immobilized anti-tag antibodies for affinity purification. PMC+2PMC+2
c-Myc vs other affinity and epitope tags
Compared with larger affinity tags (GST, MBP, His-tagged fusions plus large solubility tags), c-Myc offers:
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Very small footprint (10 aa) compared with large tags described in protein purification manuals like Recombinant Protein Purification – UNC. UNC School of Medicine
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Well-characterized, high-affinity monoclonal antibodies (e.g., 9E10). PubMed+1
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Compatibility with tandem-tag systems and advanced affinity strategies discussed in reviews on affinity tags and TAP tags. PMC+3PMC+3PMC+3
This makes c-Myc a flexible choice when the major requirement is robust immunodetection rather than direct metal-chelate purification (His tag) or high-capacity chromatography.
Synthetic c-Myc tag peptide: functions and use cases
Commercial c-Myc tag peptides are synthetic versions of EQKLISEEDL, often supplied at high purity (≥95%) for use as:
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Competitive blocking peptide
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Pre-incubation of anti-Myc antibodies with an excess of c-Myc peptide specifically blocks epitope recognition.
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This is a gold-standard control for antibody specificity in Western blot, IF, IHC, and flow cytometry, as recommended in many antibody validation resources and epitope mapping studies. PubMed+2Science+2
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Positive control and calibration standard
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Defined concentrations of synthetic c-Myc peptide can be used to optimize antibody titration curves in indirect ELISA or to benchmark detection sensitivity in assay development.
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This fits well with general guidance on assay design and calibration found in academic lab manuals and biochemistry teaching documents, for example Boston University Western Blotting Handbook and BU Western Blotting Guidebook. Boston University+1
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Immunogen component in conjugated form
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The peptide can be conjugated to carriers (e.g., KLH, BSA) to raise high-titer anti-Myc antibodies, though most labs now purchase ready-made monoclonals instead of generating them de novo.
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Assay development in T-cell or peptide-MHC systems
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c-Myc tag peptides have also been described as antigen peptides in T-cell stimulation assays, where EQKLISEEDL is presented by MHC for immune recognition, as exemplified by research on peptide epitopes and T-cell assays. JPT Peptide Technologies+1
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Cloning and construct design with c-Myc tag
N-terminal, C-terminal, and internal tag placement
When designing expression constructs, the c-Myc tag is typically fused:
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N-terminally (Myc–Protein)
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C-terminally (Protein–Myc)
Guidance from institutional protein expression facilities, such as EMBL’s Protein Expression and Purification Core and university courses on construct design, stresses careful consideration of tag placement relative to signal peptides, transmembrane segments, and catalytic domains:
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EMBL – Strategy and construct design for protein expression embl.org
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NCSU BIT 464/564 Protein Purification course biotech.ncsu.edu
For secreted proteins, the c-Myc tag should not immediately follow the signal peptide, since it may interfere with ER translocation; instead it is placed downstream of the signal peptide cleavage site or at the C-terminus of the mature protein, echoing recommendations for other epitope tags. Thermo Fisher Scientific
Epitope tagging of endogenous loci
Endogenous CRISPR-based knock-in of c-Myc tags into native gene loci allows physiological expression levels and native regulation while still enabling detection. This strategy is well described in epitope tagging methods for endogenous genes in human cells:
Experimental applications of c-Myc tag peptide
Western blotting of c-Myc-tagged proteins
In Western blot, proteins are separated by SDS-PAGE, transferred to PVDF or nitrocellulose membranes, and probed with primary antibodies against the c-Myc tag. Standard Western protocols are detailed in many open university resources:
In this context, the c-Myc tag peptide is used to:
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Validate specificity by peptide competition: incubate the anti-Myc antibody with an excess of synthetic EQKLISEEDL before probing. Loss of signal confirms epitope-specific binding.
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Optimize antibody dilution and blocking conditions using defined peptide concentrations and reference Western blotting protocols from academic labs and core facilities. Boston University+2chem.sites.mtu.edu+2
Immunoprecipitation and co-immunoprecipitation
Immunoprecipitation (IP) uses an anti-Myc antibody bound to Protein A/G beads to enrich the tagged protein from cell lysates. Co-immunoprecipitation (co-IP) then identifies interacting partners. Detailed protocols are widely available:
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Immunoprecipitation protocol – University of Pennsylvania Médecine UPenn
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Immunoprecipitation – CSH Protocols (Cold Spring Harbor) cshprotocols.cshlp.org
The c-Myc peptide itself can be used to competitively elute c-Myc-tagged complexes from anti-Myc beads under mild conditions, preserving protein–protein interactions for downstream analysis by mass spectrometry or ELISA.
Immunofluorescence and live-cell imaging
Epitope tags are powerful tools for cellular localization and fluorescence microscopy, letting researchers track trafficking, membrane insertion, and nuclear/cytoplasmic shuttling. Reviews on epitope tags and fluorescent labeling give numerous examples of such applications:
The small size of the c-Myc tag makes it especially suitable for membrane proteins and receptors where large fusions (e.g., GFP) may affect trafficking or function.
ELISA and quantitative assays
Anti-Myc ELISAs can be developed to quantify the amount of c-Myc-tagged protein in cell lysates, supernatants, or column fractions:
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The synthetic c-Myc peptide can be coated onto microplates as a calibrator or used to generate a standard curve.
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Detection is performed using HRP- or AP-conjugated anti-Myc antibodies and colorimetric substrates, following general ELISA design principles from university assay courses and core-facility manuals (for example, the ELISA and assay sections of WOU’s protein chapter and protein-analysis courses like Cooper Union BIO-422). Western Oregon University+1
c-Myc tag in protein purification workflows
While the c-Myc tag is primarily an epitope tag (for antibody-based detection), it can also be integrated into purification workflows:
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Immunoaffinity purification
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c-Myc-tagged proteins are captured on columns or beads coated with anti-Myc antibodies.
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Elution is achieved either by low-pH buffers or by competition with free c-Myc peptide, enabling gentle recovery of complexes.
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Combination with other affinity tags
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c-Myc can be combined with His6, FLAG, StrepII, or other tags for tandem affinity purification or multi-stage strategies, as illustrated in affinity-tag reviews:
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University and training-center course materials (e.g., Cold Spring Harbor “Expression, Purification & Analysis of Proteins” and Cytiva training in tagged protein purification) provide detailed examples of how epitope tags fit into multi-step purification schemes.
Quality control and peptide handling
For reproducible c-Myc-based assays, the synthetic tag peptide should meet rigorous quality criteria:
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Purity: Analytical HPLC purity ≥95% (or higher for quantitative assays).
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Identity verification: Confirmed by mass spectrometry and, ideally, by peptide mapping, in line with general biochemical QC practices outlined in protein-purification lecture notes and lab handbooks from universities such as LSUHSC – Protein expression and purification slides. medschool.lsuhsc.edu+1
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Storage:
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Lyophilized peptide stored at –20 °C or below, desiccated, protected from light.
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Reconstituted peptide aliquoted in sterile buffer (e.g., PBS or Tris) with carrier protein if required; avoid multiple freeze–thaw cycles.
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Adhering to these guidelines ensures that blocking controls, calibration curves, and affinity elution steps are consistent across experiments and compatible with standard Western blotting and immunoprecipitation workflows described in academic protocols.
Summary for c-Myc tag peptide applications
The c-Myc tag peptide (EQKLISEEDL) is a compact, acidic epitope derived from the human MYC proto-oncogene, widely used to label recombinant proteins for Western blot, immunoprecipitation, co-immunoprecipitation, immunofluorescence, flow cytometry, and ELISA. Its small size and hydrophilic character minimize steric hindrance while enabling highly sensitive detection with validated monoclonal antibodies. When used as a synthetic peptide, c-Myc functions as a competitive blocking reagent, positive control, and calibration standard in assay development and antibody validation.
By integrating the c-Myc epitope tag into expression constructs designed according to best practices from university protein-expression courses and NIH-backed affinity-tag literature, researchers can implement robust workflows for epitope-tagged protein expression, tag-based protein purification, and multiplexed protein-protein interaction profiling across bacterial, yeast, insect, and mammalian systems. All applications of the c-Myc tag peptide are strictly for research use only, supporting basic and translational studies in molecular and cell biology—without constituting diagnostic or therapeutic procedures.



