Generation of novel cytoplasmic forms of protein tyrosine phosphatase epsilon by proteolytic processing and

H Gil-Henn1, G Volohonsky, H Toledano-Katchalski

  • 1Department of Molecular Genetics, The Weizmann Institute of Science, Rehovot 76100, Israel.

Oncogene
|September 12, 2000
PubMed

Insights

Tyrosine phosphatase epsilon (PTPepsilon) exists as four forms, including newly identified cytoplasmic p67 and p65. These forms regulate PTPepsilon activity and localization, impacting cellular signaling pathways.

Area of Science:

  • Molecular Biology
  • Cell Biology
  • Biochemistry

Background:

  • Two known forms of tyrosine phosphatase epsilon (PTPepsilon) include receptor-like (tm-PTPepsilon) and non-receptor-like (cyt-PTPepsilon).
  • These forms exhibit distinct tissue expression, subcellular localization, and physiological functions.

Purpose of the Study:

  • To identify and characterize novel forms of PTPepsilon protein.
  • To investigate the mechanisms of their production and their functional and localization differences compared to full-length PTPepsilon.

Main Methods:

  • Analysis of PTPepsilon mRNA and protein expression.
  • Investigation of protein production via internal translation initiation and proteolytic cleavage.
  • Biochemical assays to assess catalytic activity and protein interactions.
  • Subcellular localization studies using cell imaging techniques.

Main Results:

  • Two novel PTPepsilon forms, p67 and p65, were identified.
  • p67 arises from internal translation initiation, while p65 results from specific proteolytic cleavage.
  • p67 and p65 are exclusively cytoplasmic, catalytically active, and reduce Src-mediated Kv2.1 channel phosphorylation.
  • Full-length cyt-PTPepsilon localizes to the cell membrane and nucleus, directed by its N-terminal 27 residues.

Conclusions:

  • PTPepsilon functions as a family of four proteins with complex regulation at multiple levels.
  • The novel cytoplasmic forms, p67 and p65, offer mechanisms for down-regulating PTPepsilon activity at the cell membrane.
  • These findings expand our understanding of PTPepsilon's diverse roles in cellular signaling.

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