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Assessing Cellular Target Engagement by SHP2 (PTPN11) Phosphatase Inhibitors
Published on: July 17, 2020
HD-PTP is a catalytically inactive tyrosine phosphatase due to a conserved divergence in its phosphatase domain
Marie-Claude Gingras1, Yu Ling Zhang, Dmitri Kharitidi
1Goodman Cancer Centre and Department of Biochemistry, McGill University, Montréal, Québec, Canada.
Background:
The HD-PTP protein has been described as a tumor suppressor candidate and based on its amino acid sequence, categorized as a classical non-transmembrane protein tyrosine phosphatase (PTP). To date, no HD-PTP phosphorylated substrate has been identified and controversial results concerning its catalytic activity have been recently reported.
Methodology And Results:
Here we report a rigorous enzymatic analysis demonstrating that the HD-PTP protein does not harbor tyrosine phosphatase or lipid phosphatase activity using the highly sensitive DiFMUP substrate and a panel of different phosphatidylinositol phosphates. We found that HD-PTP tyrosine phosphatase inactivity is caused by an evolutionary conserved amino acid divergence of a key residue located in the HD-PTP phosphatase domain since its back mutation is sufficient to restore the HD-PTP tyrosine phosphatase activity. Moreover, in agreement with a tumor suppressor activity, HD-PTP expression leads to colony growth reduction in human cancer cell lines, independently of its catalytic PTP activity status.
Conclusion:
In summary, we demonstrate that HD-PTP is a catalytically inactive protein tyrosine phosphatase. As such, we identify one residue involved in its inactivation and show that its colony growth reduction activity is independent of its PTP activity status in human cancer cell lines.
Insights
The HD-PTP protein is a catalytically inactive tyrosine phosphatase. Its tumor suppressor activity, reducing cancer cell growth, is independent of its phosphatase function.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- HD-PTP protein: a candidate tumor suppressor.
- Classified as a non-transmembrane protein tyrosine phosphatase (PTP).
- No identified substrates or confirmed catalytic activity.
Purpose of the Study:
- To rigorously analyze HD-PTP's enzymatic activity.
- To investigate the basis of its catalytic inactivity.
- To determine if tumor suppressor function relates to PTP activity.
Main Methods:
- Enzymatic assays using DiFMUP substrate.
- Testing activity against phosphatidylinositol phosphates.
- Site-directed mutagenesis to restore catalytic activity.
- Assessing HD-PTP expression effects on cancer cell colony growth.
Main Results:
- HD-PTP lacks tyrosine phosphatase and lipid phosphatase activity.
- Inactivity due to conserved amino acid divergence in the phosphatase domain.
- Restoring a key residue re-establishes tyrosine phosphatase activity.
- HD-PTP expression reduces cancer cell colony growth irrespective of PTP activity.
Conclusions:
- HD-PTP is a catalytically inactive protein tyrosine phosphatase.
- A specific residue is identified as responsible for inactivating PTP activity.
- HD-PTP's tumor-suppressive role in human cancer cell lines is independent of its PTP catalytic activity.
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