This protocol describes procedures to detect changes in phosphorylation modifications of target proteins using Phos-tag gel electrophoresis in clinical samples and in vitro kinase assays.
Method Article
This protocol describes procedures to detect changes in phosphorylation modifications of target proteins using Phos-tag gel electrophoresis in clinical samples and in vitro kinase assays.
Phosphorylation is a classic post-translational modification that regulates protein function. Proteins typically contain multiple potential phosphorylation sites, which can be modified by various kinases at different locations. Studying phosphorylation changes of target proteins in disease often requires phospho-specific antibodies. However, commercial options may be limited to a single site or entirely unavailable. Here, a method is described to detect changes in phosphorylation modifications of target proteins in clinical samples using the Phos-tag gel electrophoresis and to identify detailed phosphorylation sites through in vitro kinase assays. Phosphorylated proteins bound to Phos-tag exhibit slower migration rates in SDS-PAGE gel electrophoresis, enabling semi-quantitative analysis of phosphorylation changes in disease tissues based on the mean pixel intensity of the slowly migrating bands. By combining Phos-tag SDS-PAGE with immunoblotting using pan-specific antibodies against multiple candidate proteins, researchers can efficiently identify target proteins with phosphorylation changes. Following the screening of candidate kinases, in vitro kinase assays are performed with the target protein, and the resulting phosphorylated products are subjected to mass spectrometry for precise site identification. This method does not require specific phosphorylated protein antibodies, allowing large-scale screening of tissue samples to identify altered phosphorylation states in disease. Furthermore, the identified phosphorylation sites can be used to develop specific antibodies for quantitative and localization analysis in disease tissues, providing deeper insights into their functional roles.
Phosphorylation is a key post-translational modification for modulating the subcellular localization, kinase activity, and transcriptional activity of proteins. More than 500 protein kinase genes have been found in the human genome, which are involved in signal transduction, gene expression, and protein-protein interaction1. Phosphorylation and dephosphorylation are under the control of various kinases, which are quickly reversible to regulate cell adhesion, cell proliferation, and cell differentiation2. However, abnormal protein phosphorylation modifications are responsible for many human diseases, including tumorigenesis, autoimmune disorders, neurodegeneration, and subfertility3,4,5.
Phosphoproteomic profiling of clinical specimens yields multiple candidate differentially phosphorylated proteins6. To reveal the key phosphorylation modifications in human diseases, an easy and efficient method to detect the phosphorylation status of specific target proteins is necessary. Phosphorylation at different sites could lead to distinct functional alterations in the protein. Hence, using phosphorylation-specific antibodies targeting particular amino acid sites is undoubtedly the best method for detecting changes in protein phosphorylation. However, well-characterized phospho-specific antibodies are absent for many proteins. In addition, a more suitable approach is required to identify novel potential phosphorylation sites. Phosphorylation at specific amino acid residues often alters a protein's migration rate in gel electrophoresis, and slower-migrating bands can reflect changes in phosphorylation status7. However, these mobility shifts are usually subtle, making them difficult to distinguish. Phos-tag is a synthesized chemical compound designed from an alkaline phosphatase catalytic domain as a model, which can capture phosphorylated Ser/Thr/Tyr and His/Asp/Lys residues. Therefore, phos-tag conjugation effectively amplifies the migration rate differences between phosphorylated and non-phosphorylated proteins, while also distinguishing variations in the number of phosphorylation sites8.
This Phos-tag-based methodology for detecting target protein phosphorylation changes in tissue samples offers distinct advantages over conventional approaches. Crucially, it eliminates the requirement for phospho-specific antibodies, instead utilizing standard WB-grade protein-specific antibodies for detection. The phosphorylated and non-phosphorylated forms of target proteins are resolved as distinct bands during Phos-tag SDS-PAGE, enabling semi-quantitative assessment of phosphorylation level alterations in disease states through comparative band intensity analysis. The workflow in this protocol includes: (1) Phos-tag SDS-PAGE separation of protein samples, (2) immunoblot screening for phosphorylated targets, (3) in vitro kinase assays with candidate kinases verified by phospho-Ser/Thr antibodies. Subsequent mass spectrometry analysis (conducted by an external service platform) identifies phosphorylation sites to enable site-specific antibody development; the detailed methodology is not included in the current protocol. Notably, this approach was successfully applied to detect Nur77 phosphorylation changes in clinical samples, identifying Mst1 kinase as the upstream regulator of Nur77 phosphorylation and developing a site-specific phospho-antibody for clinical detection of phosphorylation at threonine 366 of Nur779. Therefore, this approach proves particularly valuable during preliminary research phases when investigating multiple candidate proteins, as it allows large-scale screening of phosphorylation status changes across numerous targets using commercially available antibodies.
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The Institutional Review Boards at Nanjing Drum Tower Hospital approved the human research (2013-408081-01). The current protocol is established using endometrial tissue as a representative model. With appropriate optimization, this methodology can be extended to other clinical specimens, including but not limited to tumor tissues for protein extraction and subsequent analyses. Endometrial biopsy is performed in the mid-secretory phase from fertile women (Control group) and women with recurrent embryo implantation failure undergoingin vitro fertilization-embryo transfer (Disease group). All patients provided informed consent prior to the sampling procedure. The reagents and the equipment used are listed in the Table of Materials.
1. Preparation of samples
2. Gel preparation of Phos-tag SDS-PAGE gel
3. Electrophoresis of Phos-tag SDS-PAGE
4. Immunoblotting and analysis
5. Immunoprecipitation of the target protein
6. In vitro kinase assay to identify phosphorylated amino acids
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The preliminary phosphoproteomic profiling of human samples from the control group and the disease group identified Nur77 as a candidate differentially phosphorylated protein. To evaluate the efficacy of Phos-tag SDS-PAGE in detecting Nur77 protein phosphorylation, a Mn2+-Phos-tag SDS-PAGE experiment was performed. After total protein extraction from tissue samples, 30 µg of protein was loaded and separated by Mn2+-Phos-tag gel electrophoresis, followed by transfer onto PVDF membrane. Immunoblotting...
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The Phos-tag-based approach for detecting phosphorylation changes of target proteins in clinical tissues offers significant advantages for protein phosphorylation research. Phosphorylated proteins exhibit reduced electrophoretic mobility due to Phos-tag binding, enabling high-throughput screening of the phosphorylation status of candidate proteins without requiring phospho-specific antibodies. This is particularly valuable for initial large-scale profiling of multiple candidate proteins. Proteins with altered phosphoryla...
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The authors declare no potential conflicts of interest.
This work was supported by the National Natural Science Foundation of China (82271698) and the Natural Science Foundation of Jiangsu Province (BK20231117).
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| Name | Company | Catalog Number | Comments |
|---|---|---|---|
| 10% SDS Solution | Sangon Biotech | B548118 | |
| 10x Tris/Glycine/SDS | BIO-RAD | 1610732 | |
| 4× Laemmli protein sample buffer | BIO-RAD | 1610747 | |
| Acrylamide | Sangon Biotech | A601032 | |
| Ammonium persulfate | Sangon Biotech | A100486 | |
| Anti-FLAG M2 affinity gel | Millipore | A2220 | |
| Enhanced chemiluminescence kit | ThermoFisher | 32106 | |
| FLAG antibody | CST | 14793 | |
| FLAG Peptide | Millipore | F3290 | |
| HRP-conjugated secondary antibody | Bioworld Technology | BS13278 | |
| Lipofectamine 3000 | ThermoFisher | L3000015 | |
| Mini Trans-Blot Cell | BIO-RAD | 1703930 | |
| Mini-PROTEAN Tetra Vertical Electrophoresis Cell | BIO-RAD | 1658005 | |
| Mst1 antibody | CST | 3682 | |
| N, N'-methylene-bisacrylamide | Sangon Biotech | A600025 | |
| N,N,N',N'-Tetramethylethylenediamine(TEMED) | Sangon Biotech | A610508 | |
| Nur77 antibody | CST | 3960 | |
| Phosphatase Inhibitor Cocktail 2 | Sigma | P5726 | For the inhibition of tyrosine protein phosphatases, acid and alkaline phosphatases |
| Phosphatase Inhibitor Cocktail 3 | Sigma | P0044 | For the inhibition of protein phosphatase 2A, alkaline phosphatases, protein phosphatases 1 and 2A |
| Phospho-serine antibody | Sigma | P5747 | |
| Phospho-threonine antibody | Sigma | P6623 | |
| Phos-tag Acrylamide | Wako | 304-93526 | For the preparation of Phos-tag SDS PAGE gel |
| Pierce BCA Protein Assay Kit | Thermo | 23227 | |
| Protease Inhibitor Cocktail | Sigma | S8830 | EDTA-Free, tablet, for the inhibition of serine, cysteine, aspartic and metalloproteases |
| PVDF membrane | Roche | 3010040001 | |
| ThermoMixer | Eppendorf | 2231001127 | |
| Tissue Disperser | IKA | T 10 | To obtain tissue homogenate |
| Tris-HCl Buffer (0.5M, pH 6.8) | Sangon Biotech | B546020 | |
| Tris-HCl Buffer (1.5M, pH 8.8) | Sangon Biotech | B546019 | |
| Vacuum desiccator | ThermoFisher | 5311-0250 | To degas the gel solution |
| β-Mercaptoethanol | Sigma | M3148 |
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