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Updated: May 9, 2026

A Mass Spectrometry-Based Approach to Identify Phosphoprotein Phosphatases and their Interactors
Published on: April 29, 2022
PTP-central: a comprehensive resource of protein tyrosine phosphatases in eukaryotic genomes
Teri Hatzihristidis1, Shaq Liu2, Leszek Pryszcz3
1Goodman Cancer Research Center, McGill University, 1160 Pine Avenue, Montreal H3A 1A3, QC, Canada; Department of Biochemistry, McGill University, Montreal, QC, Canada.
Abstract:
Reversible tyrosine phosphorylation is a fundamental signaling mechanism controlling a diversity of cellular processes. Whereas protein tyrosine kinases have long been implicated in many diseases, aberrant protein tyrosine phosphatase (PTP) activity is also increasingly being associated with a wide spectrum of conditions. PTPs are now regarded as key regulators of biochemical processes instead of simple "off" switches operating in tyrosine kinase signaling pathways. Despite the central importance that PTPs play in the cell's biochemistry, the tyrosine phosphatomes of most species remain uncharted. Here we present a highly sensitive and specific sequence-based method for the automatic classification of PTPs. As proof of principle we re-annotated the human tyrosine phosphatome, and discovered four new PTP genes that had not been reported before. Our method and the predicted tyrosine phosphatomes of 65 eukaryotic genomes are accessible online through the user-friendly PTP-central resource (http://www.PTP-central.org/), where users can also submit their own sequences for prediction. PTP-central is a comprehensive and continually developing resource that currently integrates the predicted tyrosine phosphatomes with structural data and genetic association disease studies, as well as homology relationships. PTP-central thus fills an important void for the systematic study of PTPs, both in model organisms and from an evolutionary perspective.
Insights
Scientists developed a new method to identify protein tyrosine phosphatases (PTPs), crucial regulators of cell signaling. This research re-annotated the human PTPome and identified novel PTP genes, aiding disease research.
Area of Science:
- Biochemistry
- Molecular Biology
- Genomics
Background:
- Reversible tyrosine phosphorylation is a key cellular signaling mechanism.
- Aberrant protein tyrosine phosphatase (PTP) activity is linked to various diseases.
- The full extent of PTPs (tyrosine phosphatomes) across species is largely unknown.
Purpose of the Study:
- To develop a sensitive and specific sequence-based method for automatic PTP classification.
- To re-annotate the human tyrosine phosphatome and identify novel PTP genes.
- To create a comprehensive online resource for PTP research.
Main Methods:
- A novel sequence-based computational method for PTP classification.
- Application of the method to re-annotate the human tyrosine phosphatome.
- Prediction of tyrosine phosphatomes for 65 eukaryotic genomes.
Main Results:
- Identification of four previously unreported human PTP genes.
- Creation of the PTP-central resource, an online platform for PTP data.
- PTP-central integrates predicted phosphatomes, structural data, and disease associations.
Conclusions:
- The developed method enables accurate and efficient PTP identification.
- PTP-central provides a valuable, continuously updated resource for studying PTPs.
- This work facilitates systematic PTP research across model organisms and evolutionary scales.
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