Human cancer cells exhibit protein kinase C-dependent c-erbB-2 transmodulation that correlates with phosphatase

X Ouyang1, T Gulliford, H Zhang

  • 1Division of Cell, Molecular and Oncology Research, Charing Cross and Westminster Medical School, University of London.

Insights

Overexpression of c-erbB-2 in tumors is common, but its function is unclear. This study shows that Thr686 phosphorylation by protein kinase C (PKC) does not abolish c-erbB-2 activity, suggesting complex interactions in cancer cells.

Area of Science:

  • Oncology
  • Molecular Biology
  • Biochemistry

Background:

  • c-erbB-2 receptor tyrosine kinase is frequently overexpressed in human tumors.
  • The functional consequences of c-erbB-2 overexpression and its regulation are not fully understood.
  • Protein kinase C (PKC)-dependent transmodulation is a potential regulatory mechanism.

Purpose of the Study:

  • To investigate the relationship between c-erbB-2 tyrosine phosphorylation and PKC-dependent transmodulation.
  • To determine the impact of Thr686 phosphorylation on c-erbB-2 kinase activity.
  • To explore the implications of these findings in human tumor cell lines.

Main Methods:

  • Utilized phosphorylation-specific antibodies to analyze c-erbB-2 phosphorylation states.
  • Treated cells with PKC agonists to study transmodulation.
  • Examined c-erbB-2 phosphorylation in cell lines with activated c-erbB-2 and human cancer cell lines (SK-Ov-3, BT-474).

Main Results:

  • PKC activation led to tyrosine-dephosphorylation of wild-type c-erbB-2 at Thr686.
  • Thr686 phosphorylation alone did not abolish c-erbB-2 tyrosine phosphorylation in activated receptor cells.
  • Human cancer cell lines (SK-Ov-3, BT-474) showed constitutively Thr686-phosphorylated receptors, with varying kinase activity.
  • SK-Ov-3 cells had kinase-inactive c-erbB-2 with Thr686 phosphorylation, suggesting heterologous origin.
  • BT-474 cells had constitutively autophosphorylated c-erbB-2 despite Thr686 phosphorylation.

Conclusions:

  • Thr686 phosphorylation does not directly inhibit c-erbB-2 kinase activity.
  • Constitutive Thr686 phosphorylation may reflect persistent PKC activity.
  • This activity could be induced by receptor-activating mutations or heterologous growth factors, implying interactions with other growth factor receptors in tumors.

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