A protocol for the protein quantification in complex biological fluids using automated immuno-MALDI (iMALDI) technology is presented.
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Method Article
A protocol for the protein quantification in complex biological fluids using automated immuno-MALDI (iMALDI) technology is presented.
Mass spectrometry (MS) is one of the most commonly used technologies for quantifying proteins in complex samples, with excellent assay specificity as a result of the direct detection of the mass-to-charge ratio of each target molecule. However, MS-based proteomics, like most other analytical techniques, has a bias towards measuring high-abundance analytes, so it is challenging to achieve detection limits of low ng/mL or pg/mL in complex samples, and this is the concentration range for many disease-relevant proteins in biofluids such as human plasma. To assist in the detection of low-abundance analytes, immuno-enrichment has been integrated into the assay to concentrate and purify the analyte before MS measurement, significantly improving assay sensitivity. In this work, the immuno- Matrix-Assisted Laser Desorption/Ionization (iMALDI) technology is presented for the quantification of proteins and peptides in biofluids, based on immuno-enrichment on beads, followed by MALDI-MS measurement without prior elution. The anti-peptide antibodies are functionalized on magnetic beads, and incubated with samples. After washing, the beads are directly transferred onto a MALDI target plate, and the signals are measured by a MALDI-Time of Flight (MALDI-TOF) instrument after the matrix solution has been applied to the beads. The sample preparation procedure is simplified compared to other immuno-MS assays, and the MALDI measurement is fast. The whole sample preparation is automated with a liquid handling system, with improved assay reproducibility and higher throughput. In this article, the iMALDI assay is used for determining the peptide angiotensin I (Ang I) concentration in plasma, which is used clinically as readout of plasma renin activity for the screening of primary aldosteronism (PA).
Mass spectrometry has become an indispensable tool in quantitative proteomics. Mass spectrometry can determine the masses of target proteins or peptides, therefore the obtained analyte signals can be highly specific compared to immunoassays. Two ionization methods, electrospray and MALDI, are most commonly used for detecting proteins and peptides1,2,3,4. A major challenge in MS-based protein quantification lies in the detection of low-abundance proteins in complex samples at ng/mL or pg/mL concentrations in the presence of high-abundance pro....
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The amounts of the reagents described below are based on the measurement of 20 patient plasma samples. The protocol presented below follows the guidelines of the University of Victoria's human research ethics committee.
1. Generation of Ang I in Human Plasma
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An automated iMALDI procedure for measuring Ang I is shown in Figure 1. Target peptides (either endogenous peptides or peptides from digested proteins) are enriched on anti-peptide magnetic beads, and then the beads are transferred to a target plate for MALDI measurement. The whole procedure is simplified compared to other immuno-MS technologies that require additional peptide elution steps. Automation of the iMALDI assay allows for high-throughput analysis o.......
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Compared to conventional MS-based protein quantification, iMALDI uses antibodies to enrich the analytes and purify them from complex samples, therefore making it possible to quantify proteins or peptides at low concentrations. A critical step in the iMALDI protocol is the immuno-enrichment of the target peptides. For this purpose, antibodies with high specificity and affinity should be selected. In SISCAPA, it has been reported that antibody affinities at 10-9 M or better would be needed to achieve high sensit.......
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C.H.B holds the patent on the iMALDI technology.
We thank the financial support from Genome Canada and Genome British Columbia for operations (204PRO) and technology development (214PRO) through the Genome Innovations Network (GIN). We thank the Drug Discovery Platform at the Research Institute of the McGill University Health Center for the use of the MALDI-TOF instrument for filming. H.L. is grateful for support from a postdoctoral fellowship from the National Science and Engineering Research Council of Canada (NSERC). C.H.B is grateful for support from the Leading Edge Endowment Fund (LEEF). C.H.B. is grateful for support from the Segal McGill Chair in Molecular Oncology at McGill University (Montreal, Quebec, Can....
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| Name | Company | Catalog Number | Comments |
|---|---|---|---|
| Healthy control human plasma | Bioreclamation | HMPLEDTA2 | |
| Ammonium bicarbonate | Sigma Aldrich | 09830 | |
| Ammonium citrate dibasic | Sigma Aldrich | 09833 | |
| CHAPS (>=98%) | Sigma Aldrich | C9426 | |
| Albumin from chicken egg white (>98%) | Sigma Aldrich | A5503 | |
| Ethylenediaminetetraacetic acid | Sigma Aldrich | EDS | |
| Alpha-cyano-4-hydroxycinnamic acid | Sigma Aldrich | 70990 | |
| Phosphate buffered saline | Sigma Aldrich | P4417 | |
| Phenylmethanesulfonyl fluoride | Sigma Aldrich | 78830 | |
| Trifluoroacetic acid | Thermo Fisher Scientific | 85172 | LC-MS grade |
| acetonitrile | Fluka | 34967 | LC-MS grade |
| water | Fluka | 39253 | LC-MS grade |
| acetic acid | Fluka | 320099 | LC-MS grade |
| Tris(hydroxymethyl)aminomethane | Roche Diagnostics | 3118169001 | |
| Dynabeads Protein G magnetic beads | Thermo Fisher Scientific | 10003D | 2.8 μm, 30 mg/mL |
| anti-Ang I goat polyclonal antibody | Santa Cruz Biotechnology | sc-7419 | |
| Nat and SIS Ang I | synthesized at the University of Victoria-Genome BC Proteomics Centre | ||
| Automated liquid handling system | Agilent | 16050-102 | Agilent Bravo robotic workstation |
| Magnet | Thermo Fisher Scientific | 12321D | Invitrogen DynaMag-2 magnet |
| Tube rotator | Theromo Scientific | 400110Q | Labquake Tube Rotator |
| Magnet | Thermo Fisher Scientific | 12027 | DynaMag-96 side skirted magnet |
| Magnet | VP Scientific | 771RM-1 | used to pull the beads to the bottom of the well |
| MALDI-TOF | Bruker | Bruker Microflex LRF instrument |
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