4.6 Article

Anaplastic lymphoma kinase is activated through the Pleiotrophin/Receptor protein-tyrosine phosphatase β/ζ signaling pathway -: An alternative mechanism of receptor tyrosine kinase activation

期刊

JOURNAL OF BIOLOGICAL CHEMISTRY
卷 282, 期 39, 页码 28683-28690

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AMER SOC BIOCHEMISTRY MOLECULAR BIOLOGY INC
DOI: 10.1074/jbc.M704505200

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  1. NCI NIH HHS [CA84400] Funding Source: Medline
  2. NIDDK NIH HHS [2 T32 DK007022-26] Funding Source: Medline

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Anaplastic lymphoma kinase (ALK) is a receptor tyrosine kinase (RTK) first discovered as the constitutively active nucleophosmin ALK oncoprotein in anaplastic large cell lymphomas (ALCL). Fulllength ALK has a critical role in normal development and differentiation. Activated full-length ALK also is found in different malignant cancers. Nevertheless, the ligand to activate ALK remained unknown until recently, when ALK was proposed to be the physiological receptor of the cytokine pleiotrophin (PTN, Ptn). However, earlier studies had demonstrated that receptor protein tyrosine phosphatase (RPTP) beta/zeta is a physiological PTN receptor. We now demonstrate that phosphorylation of ALK in PTN-stimulated cells is mediated through the PTN/ RPTP beta/zeta signaling pathway. ALK is phosphorylated independently of a direct interaction of PTN with ALK. The data thus support a unique model of ALK activation. In cells not stimulated by PTN, RPTP beta/zeta dephosphorylates ALK at the site(s) in ALK that is undergoing autophosphorylation through autoactivation. In contrast, when RPTP beta/zeta is inactivated in PTN-stimulated cells, the sites that are autophosphorylated in ALK no longer can be dephosphorylated by RPTP beta/zeta; thus, autoactivation and tyrosine phosphorylation of ALK rapidly increase. The data indicate that the PTN/ RPTP beta/zeta signaling pathway is a critical regulator of the steady state levels of tyrosine phosphorylation and activation of ALK; the data support the conclusion that ALK phosphorylation and activation in PTN-stimulated cells are increased through a unique alternative mechanism of RTK activation.

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