The phosphatase Shp1 interacts with and dephosphorylates cortactin to inhibit invadopodia function

Alessia Varone1, Chiara Amoruso2, Marcello Monti2

  • 1Institute of Biochemistry and Cell Biology, National Research Council, Via Pietro Castellino 111, 80131, Naples, Italy. alessia.varone@ibbc.cnr.it.

Abstract

Insights

The tyrosine phosphatase Shp1 dephosphorylates cortactin, inhibiting melanoma cell invasion by reducing extracellular matrix degradation. This identifies Shp1 as a key regulator of melanoma invasiveness and a potential target for antimetastatic drugs.

Area of Science:

  • Cell Biology
  • Cancer Research
  • Biochemistry

Background:

  • Invadopodia are crucial for cancer cell invasion and extracellular matrix degradation.
  • Protein tyrosine kinases regulate invadopodia, but the role of protein tyrosine phosphatases is less understood.
  • Shp1 (tyrosine phosphatase 1) is implicated in cancer development and was investigated for its role in invadopodia assembly.

Purpose of the Study:

  • To investigate the role of Shp1 in invadopodia formation and melanoma cell invasion.
  • To identify Shp1 substrates involved in regulating invadopodia activity.
  • To explore the potential of Shp1 as a therapeutic target for antimetastatic drugs.

Main Methods:

  • Co-immunoprecipitation and immunofluorescence to identify Shp1 substrates.
  • Assessment of cortactin phosphorylation using immunoprecipitation, in vitro phosphatase, and western blot assays.
  • Utilized short interference RNA and a catalytically-dead Shp1 mutant in melanoma cells.
  • Evaluated the anti-invasive properties of glycerophosphoinositol using in vitro and in vivo models.

Main Results:

  • Shp1 was recruited to invadopodia and dephosphorylated cortactin at tyrosine 421.
  • This Shp1-mediated cortactin dephosphorylation attenuated melanoma cell extracellular matrix degradation.
  • Glycerophosphoinositol enhanced Shp1 localization to invadopodia, promoting cortactin dephosphorylation and impairing tumor dissemination.
  • Experimental controls confirmed the specific role of Shp1-mediated cortactin dephosphorylation in reducing invasion.

Conclusions:

  • Cortactin is a specific substrate of Shp1, and its phosphorylation state regulates invadopodia formation and melanoma cell invasiveness.
  • Shp1 acts as a regulator of melanoma cell invasiveness.
  • Shp1 represents a potential therapeutic target for developing antimetastatic drugs.

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