Method Article

Peptide Scanning-assisted Identification of a Monoclonal Antibody-recognized Linear B-cell Epitope

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DOI:

10.3791/55417

March 24th, 2017

In This Article

Summary

Here, the authors present a simple and efficient protocol to define a linear antigenic epitope using a purified monoclonal antibody and peptide scanning through dot-blot hybridization. The identified epitope can then be used in therapeutic and diagnostic applications.

Abstract

The identification of an antigenic epitope by the immune system allows for the understanding of the protective mechanism of neutralizing antibodies that may facilitate the development of vaccines and peptide drugs. Peptide scanning is a simple and efficient method that straightforwardly maps the linear epitope recognized by a monoclonal antibody (mAb). Here, the authors present an epitope determination methodology involving serially truncated recombinant proteins, synthetic peptide design, and dot-blot hybridization for the antigenic recognition of nervous necrosis virus coat protein using a neutralizing mAb. This technique relies on the dot-blot hybridization of synthetic peptides and mAbs on a polyvinylidene fluoride (PVDF) membrane. The minimum antigenic region of a viral coat protein recognized by the RG-M56 mAb can be narrowed down by step-by-step trimmed peptide mapping onto a 6-mer peptide epitope. In addition, alanine scanning mutagenesis and residue substitution can be performed to characterize the binding significance of each amino acid residue making up the epitope. The residues flanking the epitope site were found to play critical roles in peptide conformation regulation. The identified epitope peptide may be used to form crystals of epitope peptide-antibody complexes for an x-ray diffraction study and functional competition, or for therapeutics.

Introduction

In the immune system, the recombination of V, D, and J segments allows for antibodies to create tremendous variations of complementarity determining regions (CDRs) for binding to various antigens to protect the host from pathogenic infection. The neutralizing defense of antibodies against antigens depends on the spatial complementarity between the CDRs of the antibodies and the epitopes of the antigens. Therefore, an understanding of this molecular interaction will assist prophylactic vaccine design and therapeutic peptide drug development. However, this neutralization interaction may be influenced both by multiple antigenic domains from one single antigen and by multiple CDRs of antibodies, which consequently make the epitope determination process more complex. Fortunately, the development of hybridoma technology, which fuses individual antibody-producing cells with myeloma cells, allows for a constantly dividing batch of cells to secrete one specific antibody, known as a monoclonal antibody (mAb)1. Hybridoma cells produce these pure, high-affinity mAbs to bind to a single antigenic domain of a specific antigen. With the relationship of the antigen-antibody established, several approaches, including peptide scanning, can be used to determine the epitope of an antigen using its corresponding mAb. Recent developments in synthetic peptide technology have made the peptide scanning technique more accessible and more convenient to perform. Briefly, a set of overlapping synthetic peptides are produced according to a target antigen sequence and are associated to a solid-supported membrane for mAb hybridization. Peptide scanning not only offers a simple way to map the antibody binding region, but also facilitates amino acid (aa) mutagenesis through residue scanning or substitution to evaluate the binding interaction between each aa residue of the epitope peptide and the CDRs of the antibody.

Here, the present study describes a protocol for the efficient identification of the linear epitope of the yellow grouper nervous necrosis virus (YGNNV) coat protein using a neutralizing mAb2,3,4. The protocol includes mAb preparation, construction and expression of serially truncated recombinant proteins, synthetic overlapping peptide design, dot-blot hybridization, alanine scanning, and substitution mutagenesis. Considering the high cost of peptide synthesis, the step of serially truncating the recombinant proteins of a desired target protein was modified, and the antigenic region was narrowed down to around 100 to 200 aa residues before the synthetic peptide array dot-blot analysis was performed.

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Protocol

1. Preparation of Monoclonal Antibody

  1. Culture the RG-M56 mouse monoclonal hybridoma cells2 in serum-free medium in 175T flasks at 37 ºC with 5% CO2 supplement. Collect the supernatant when the color of the medium turns yellow after five days of incubation.
    NOTE: Hybridoma cells were cultured in serum-free medium to avoid antibody contamination from fetal bovine serum.
  2. Centrifuge the supernatant at 4,500 x g for 30 min at 4 ºC and discard the cell debris pellet.
  3. Add 2 mL of protein G agarose (supplied as a 50% slurry) to a 5 mL column and equilibrate with 10 resin volumes (10 mL) of ice-cold PBS.
  4. Load 200 mL of the antibody supernatant (step 1.2) onto the column and discard the pass-through.
  5. Add 10 mL of ice-cold PBS to the column to wash it. Repeat twice.
  6. Add 10 mL of 50 mM glycine, pH 2.7 to the column to elute the protein G-associated antibody. Collect 900 µL fractions in a microcentrifuge tube containing 100 µL of 10x neutralization buffer (1 M Tris, 1.5 M NaCl, and 1 mM EDTA, pH 8.0).
  7. Store the purified antibody in 50% glycerol with 0.03% NaN3 at -20 ºC.

2. Construction and Expression of Serially Truncated Recombinant Proteins

  1. Prepare a PCR reaction mixture: 5 µL of 10x Pfu buffer, 0.2 mM of each dNTP, 0.2 µM forward primer3, 0.2 µM reverse primer3, 2 mM MgSO4, 1 ng of pET20b-1A593 plasmid DNA, and 2.5 U (unit) of Pfu DNA polymerase; add ddH2O to a final volume of 50 µL.
    1. Run samples in an automatic thermal cycler using the following parameters: Cycle 1 (94 ºC for 5 min); cycles 2-36 (94 ºC for 30 s, 63 ºC for 30 s, and 72 ºC for 60 s); and cycle 37 (72 ºC for 7 min).
  2. Extract the polymerase chain reaction (PCR) products by using a PCR purification kit5 to facilitate the following restriction enzyme digestion.
  3. Digest the PCR-amplified DNA fragments with NdeI and XhoI restriction enzymes and ligate each of these DNA fragments into NdeI and XhoI enzyme-cleaved pET-20b(+) vector. Transform the constructs into Escherichia coli DH-5α-competent cells6.
    1. Prepare the digestion mixture in digestion buffer (20 mM Tris-acetate, 10 mM Mg(CH3COO)2, 50 mM KCH3COO, and 1 mM DTT, pH 7.9) with 1 µg of PCR-amplified DNA or pET-20b(+) vector DNA, and 2 U of NdeI and XhoI restriction enzymes in a final volume of 20 µL.
    2. Mix the digestion mixture gently and quickly spin down. Incubate at 37 ºC for 2 h in a dry bath to ensure the complete cutting of the restriction sites.
    3. Extract the restriction enzyme-digested DNA fragments using a PCR purification kit5 to facilitate the following plasmid construction.
    4. Prepare the ligation mixture in ligation buffer (66 mM Tris, 5 mM MgCl2, 1 mM ATP, and 5 mM DTT, pH 7.5) with 100 ng of predigested, PCR-amplified DNA, 10 ng of predigested pET-20b(+) vector DNA, and 5 U of T4 DNA ligase in a final volume of 10 µL.
    5. Mix the ligation mixture gently and quickly spin down. Incubate at 16 ºC for 18 h in a water bath.
    6. Put 10 µL of the ligation samples into 100 µL of the DH-5α-competent cells and mix gently before placing the microcentrifuge tube on ice for 30 min. Put the microcentrifuge tube in a dry bath at 42 ºC for 90 s to induce heat shock7. Immediately transfer the tube onto ice for 2 min.
    7. Add 900 µL of Luria-Bertani (LB) broth (1% Bacto tryptone, 0.5% Bacto yeast extract, and 0.5% NaCl, pH 7.0) to the tube. Incubate at 37 ºC with 150 rpm shaking for 45 min. Pellet the cells by centrifugation at 4,000 x g for 10 min and discard the supernatant.
    8. Resuspend the pellet with 50 µL of LB broth and spread each transformation onto pre-warmed LB plates containing 100 µg/mL ampicillin. Incubate the plates at 37 ºC for 16 h.
    9. Pick up a single colony using a 200 µL tip and place it into 3 mL of LB broth containing 100 µg/mL ampicillin in a loosely capped 15 mL tube. Incubate at 37 ºC with 150 rpm shaking for 12 h.
    10. Extract the plasmid DNA8 from each culture and sequence it using T7 promoter and T7 terminator primers to confirm the sequence9.
  4. After sequence confirmation, transform 10 ng of DNA from these pET-20b(+) plasmids with varying lengths of YGNNV coat protein gene into the BL-21 (DE3) strain of E. coli by using the heat-shock method7. Follow steps 2.3.6-2.3.8 to perform the transformation.
  5. Transfer a single colony from each transformed E. coli BL-21 cell into 3 mL of LB broth containing 100 µg/mL ampicillin in a loosely capped 15 mL tube. Incubate the culture at 37 ºC with 150 rpm shaking.
  6. Cool the culture to 25 ºC when the OD600 of the culture is about 0.6 and add IPTG to a final concentration of 0.4 mM to induce the expression of the recombinant protein. Incubate the culture for an extra 4 h at 25 ºC with 200 rpm shaking.
  7. Transfer 1 mL of the culture into a microcentrifuge tube. Pellet the cells by centrifugation at 12,000 x g for 1 min and discard the supernatant.
  8. Resuspend the cell pellet in 100 µL of denaturation buffer (8 M urea, 20 mM sodium phosphate, and 0.5 M NaCl, pH 7.4) by pipetting up and down with a micropipette. Mix by vigorous vortexing.
    NOTE: The sample solutions should now be semi-transparent, a little sticky, and ready for the dot-blot hybridization assay.

3. Design and Synthesis of Overlapping Peptides

  1. Design and synthesize3 serial 20-mer peptides that each overlap with its successor by 10 aa residues from the 195-338 aa region of the YGNNV coat protein to narrow down the epitope region of RG-M56 mAb by dot blotting.
  2. Design and synthesize3 three 8-mer peptides (195VNVSVLCR202, 197VSVLCRWS204, and 199VLCRWSVR206) with an overlap of 6 aa residues onto the next synthetic peptide to narrow down the epitope region of 195-206 aa by dot blotting.
  3. Design and synthesize3 7-mer (196NVSVLCR202 and 195VNVSVLC201), 6-mer (195VNVSVL200, 196NVSVLC201, and 197VSVLCR202), and 5-mer peptides (195VNVSV199, 196NVSVL200, 197VSVLC201, and 198SVLCR202) with an overlap of 6, 5, and 4 aa residues, respectively, onto their neighboring peptides to minimize the epitope region by dot blotting.

4. Dot-blot Hybridization

  1. Dissolve each synthesized peptide in dimethyl sulfoxide (DMSO) to a final concentration of 10 mg/mL.
    NOTE: To overcome the varied solubility of synthetic peptides, all synthetic peptides should be dissolved in DMSO. DMSO is a good solvent to completely dissolve hydrophobic or hydrophilic peptides.
  2. Soak the polyvinylidene fluoride (PVDF) membrane with methanol for 2 min.
    NOTE: PVDF membrane is up to 100% resistant to DMSO; others may not be so.
  3. Equilibrate the PVDF membrane with modified Towbin buffer (25 mM Tris, 192 mM glycine, and 0.1% SDS, pH 8.3) for 2 min.
    NOTE: 10-20% (v/v) of methanol can be added to modified Towbin buffer to improve the transfer results.
  4. Rinse a piece of chromatography paper with the modified Towbin buffer. Place the PVDF membrane onto the chromatography paper. Wait until the modified Towbin buffer has disappeared from the PVDF membrane surface before continuing to the next step.
  5. Add 2 µL of each peptide sample to the membrane with a 10 µL tip. Air-dry the PVDF membrane on the chromatography paper for 10 min. Add each peptide sample slowly and gradually onto the membrane to avoid too much diffusion.
  6. Block the membrane in TBST buffer (0.05% (v/v) Tween-20, 20 mM Tris, and 150 mM NaCl, pH 7.4) with 5% nonfat milk for 30 min at room temperature with gentle shaking.
  7. Add RG-M56 mAb at a final dilution of 1:1,000 in TBST buffer with 5% nonfat milk to the membrane. Incubate the membrane at 37 ºC for 1 h with gentle shaking.
  8. Remove the antibody solution. Wash the membrane in TBST buffer for 5 min with gentle shaking. Repeat twice.
  9. Add the secondary antibody (goat anti-mouse IgG, Fc, conjugated alkaline phosphatase) at a final dilution of 1:5,000 in TBST buffer with 5% nonfat milk to the membrane. Incubate the membrane at 37 ºC for 1 h with gentle shaking.
  10. Discard the antibody solution. Wash the membrane in TBST buffer for 5 min with gentle shaking. Repeat the wash step twice.
  11. Develop the membrane with BCIP/NBT substrate solution at room temperature for 15 min in the dark. Stop the developing by washing the membrane with ddH2O when the signal appears.
  12. Air-dry the membrane and capture the dot-blot image using an image system.
  13. Measure the intensity of each dot blot using image analysis software3.

5. Alanine Scanning and Substitution

  1. Design and synthesize3 alanine and methionine substitution peptides. Replace each aa residue with alanine for the 8-mer peptide 195VNVSVLCR202 and synthesize peptides 195ANVSVLCR202, 195VAVSVLCR202, 195VNASVLCR202, 195VNVAVLCR202, 195VNVSALCR202, 195VNVSVACR202, 195VNVSVLAR202, and 195VNVSVLCA202. Replace aa residue leucine 200 to methionine to create the SJNNV genotype epitope peptide 195VNVSVMCR202.
  2. Follow Section 4 to perform alanine scanning and substitution mutagenesis dot blotting.

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Results

The goal of this experiment was to identify an epitope through dot blotting using mAb. To rapidly and efficiently narrow down the antigenic region recognized by mAb, the full-length and serially truncated YGNNV recombinant coat proteins with a 6xHis fusion tag at the C-terminus were expressed from an E. coli PET expression system10 (Figure 1A). The resulting recombinant proteins were spotted onto the PVDF membrane using RG-M56 mAb and anti...

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Discussion

This protocol offers a rapid and straightforward technique to identify a mAb-recognized linear epitope. Taking into consideration the cost of peptide synthesis and the production efficiency of synthesizing peptides, the antigenic region of the virus coat protein was reduced by expressing serially truncated recombinant proteins before peptide scanning analysis. As such, the reliable and efficient E. coli pET expression system was used to produce these serially truncated recombinant proteins, as recombinant protei...

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Disclosures

The authors have no conflicts of interest related to this report.

Acknowledgements

The authors thank Miss Ching-Chun Lin and Miss Diana Lin of the Core Facility of the Institute of Cellular and Organismic Biology (ICOB) of Academia Sinica for offering their expertise on peptide synthesis and DNA sequencing, respectively. This study was supported by Academia Sinica.

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Materials

List of materials used in this article
NameCompanyCatalog NumberComments
Hybrid-SFM mediumGibco12045-076
Dulbeccos's Phophate-Buffered Saline (PBS)Gibco21600-069
Pfu DNA Polymerase Thermo Scientific EP0502 Including buffers
T4 DNA LigaseRoche10799009001Including buffers
NdeI New England BiolabsR0111SIncluding buffers
XhoI New England BiolabsR0146SIncluding buffers
pET-20b(+) vectorNovagen, Merck Millipore69739
E. coli DH-5α competent cellRBC BioscienceRH617
E. coli BL-21(DE3) competent cellRBC BioscienceRH217
AmpicillinAmresco0339-25G
LB broth Invitrongen12780-052
Isopropylthio-β-D-thiogalactoside (IPTG)MDBio, Inc.101-367-93-1
MethanolMerck Millipore106009
Polyoxyethylene 20 Sorbitan Monolaurate (Tween-20)J.T.BakerX251-07
Dimethyl sulfoxide (DMSO)SigmaD2650
GlycineAmresco0167-5KG
TrisAffymetrix, USB75825
NaClAmresco0241-1KG
EDTAAmresco0105-1KG
GlycerolAmresco0854-1L
NaN3SigmaS2002-500G
BCIP/NBTPerkinElmerNEL937001PK
Goat Anti-Mouse IgG, Fc fragment antibodyJackson ImmunoResearch115-055-008
Immobilon-P (Polyvinylidene fluoride, PVDF)Merck MilliporeIPVH00010
Protein G Agarose Fast FlowMerck Millipore16-266
QIAquick PCR Purification kitQiagen28106
UVP BioSpectrum 600 Image SystemUVPn/a
VisionWorks LS Analysis Software Ver 6.8UVPn/a
MyCycler thermal cyclerBioRad1709713

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Tags

Dot blot HybridizationSerially Truncated ProteinsAlanine ScanningNervous Necrosis VirusRecombinant Protein ExpressionPVDF MembraneEpitope Mapping

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