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Updated: Aug 5, 2025

Phosphopeptide Enrichment Coupled with Label-free Quantitative Mass Spectrometry to Investigate the Phosphoproteome in Prostate Cancer
Published on: August 2, 2018
Principles of phosphoproteomics and applications in cancer research
Luke Higgins1, Henry Gerdes1, Pedro R Cutillas1,2,3
1Cell Signaling and Proteomics Group, Centre for Genomics and Computational Biology, Barts Cancer Institute, Queen Mary University of London, London, U.K.
Abstract:
Phosphorylation constitutes the most common and best-studied regulatory post-translational modification in biological systems and archetypal signalling pathways driven by protein and lipid kinases are disrupted in essentially all cancer types. Thus, the study of the phosphoproteome stands to provide unique biological information on signalling pathway activity and on kinase network circuitry that is not captured by genetic or transcriptomic technologies. Here, we discuss the methods and tools used in phosphoproteomics and highlight how this technique has been used, and can be used in the future, for cancer research. Challenges still exist in mass spectrometry phosphoproteomics and in the software required to provide biological information from these datasets. Nevertheless, improvements in mass spectrometers with enhanced scan rates, separation capabilities and sensitivity, in biochemical methods for sample preparation and in computational pipelines are enabling an increasingly deep analysis of the phosphoproteome, where previous bottlenecks in data acquisition, processing and interpretation are being relieved. These powerful hardware and algorithmic innovations are not only providing exciting new mechanistic insights into tumour biology, from where new drug targets may be derived, but are also leading to the discovery of phosphoproteins as mediators of drug sensitivity and resistance and as classifiers of disease subtypes. These studies are, therefore, uncovering phosphoproteins as a new generation of disruptive biomarkers to improve personalised anti-cancer therapies.
Insights
Phosphoproteomics reveals signaling pathway disruptions in cancer. Advances in mass spectrometry and computational tools are uncovering new drug targets and biomarkers for personalized cancer therapies.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Phosphorylation is a key regulatory post-translational modification crucial for cellular signaling.
- Disrupted kinase signaling pathways are implicated in nearly all cancer types.
- Phosphoproteomics offers insights into signaling pathway activity and kinase networks beyond genetic data.
Purpose of the Study:
- To review methods and tools in phosphoproteomics for cancer research.
- To highlight current and future applications of phosphoproteomics in oncology.
- To discuss challenges and advancements in phosphoproteomic data acquisition and interpretation.
Main Methods:
- Mass spectrometry-based phosphoproteomics.
- Biochemical sample preparation techniques.
- Computational pipelines for data analysis.
Main Results:
- Phosphoproteomics provides unique biological information on signaling pathways and kinase networks.
- Technological improvements are enhancing the depth and scope of phosphoproteome analysis.
- Phosphoproteins are emerging as mediators of drug sensitivity/resistance and disease classifiers.
Conclusions:
- Phosphoproteomics is a powerful tool for understanding tumor biology and identifying novel therapeutic strategies.
- Advancements in phosphoproteomics are driving the discovery of new biomarkers for personalized cancer treatment.
- Phosphoproteins represent a new class of biomarkers for improving anti-cancer therapies.
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