Structural basis for activation of ZAP-70 by phosphorylation of the SH2-kinase linker

Qingrong Yan1, Tiago Barros, Patrick R Visperas

  • 1Department of Molecular and Cell Biology, University of California, Berkeley, CA, USA.

Insights

The study reveals distinct roles for tyrosine residues 315 and 319 in ZAP-70 kinase regulation. Phosphorylation by Lck strongly activates ZAP-70, while SH2 domain engagement offers weaker activation.

Area of Science:

  • Immunology
  • Structural Biology
  • Biochemistry

Background:

  • T cell receptor (TCR) signaling is initiated by serial activation of tyrosine kinases Lck and ZAP-70.
  • Previous ZAP-70 structures utilized mutations at Tyr 315 and Tyr 319, obscuring their native regulatory roles.

Purpose of the Study:

  • To present a crystal structure of ZAP-70 with unmutated Tyr 315 and Tyr 319.
  • To elucidate the distinct functions of Tyr 315 and Tyr 319 in ZAP-70 regulation and TCR signaling.

Main Methods:

  • X-ray crystallography to determine the structure of ZAP-70 with unmutated regulatory tyrosines.
  • Comparative analysis with existing Syk and ZAP-70 structures.
  • In vitro kinase activity assays to assess activation levels.

Main Results:

  • A five-residue sequence register error in a previous ZAP-70 model was identified and corrected.
  • Tyr 315 forms a hydrophobic interface critical for ZAP-70 autoinhibition, disrupted by SH2 domain binding.
  • Tyr 319 actively suppresses ZAP-70 activity even after SH2 domain engagement, requiring Lck phosphorylation for full activation.

Conclusions:

  • ZAP-70 regulation involves distinct contributions from Tyr 315 and Tyr 319.
  • Lck-mediated phosphorylation of Tyr 319 provides stringent control over ZAP-70 activity downstream of the T cell receptor.

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