Hierarchical phosphorylation of the TNF-alpha receptor, TNF-R1, by p42Mapk/Erk at basic Pro-directed kinase sites

Annemie A Van Linden1, Vincent Cottin, Stephen K Frankel

  • 1Program in Cell Biology, Department of Pediatrics, National Jewish Medical and Research Center, Denver, Colorado 80206, USA.

Biochemistry
|May 4, 2005
PubMed

Insights

p42 mitogen-activated protein kinase/extracellular signal-regulated kinase 2 (MAPK/ERK2) promotes hierarchical phosphorylation of the TNF-alpha receptor 1 (TNF-R1) cytoplasmic domain. This extensive phosphorylation occurs at both consensus and non-consensus sites, influencing receptor signaling and localization.

Area of Science:

  • Cellular signaling pathways
  • Protein phosphorylation
  • Receptor biology

Background:

  • Tumor Necrosis Factor-alpha Receptor 1 (TNF-R1) phosphorylation regulates its signaling and localization.
  • p42 MAPK/ERK2 phosphorylates specific serine and threonine residues (T236, S240, S244, S270) in TNF-R1's membrane-proximal region.
  • Mutating these residues (TNF-R1.4D/E) mimics phosphorylation's effects.

Purpose of the Study:

  • To investigate if p42 MAPK/ERK2-mediated phosphorylation of TNF-R1 promotes further hierarchical phosphorylation at additional sites.
  • To identify the location of these additional phosphorylation sites within TNF-R1's cytoplasmic domain.

Main Methods:

  • In vitro kinase assays using GST-mutant cytoplasmic domain fusion proteins as substrates.
  • Expression of mutant TNF-R1 receptors in intact cells.
  • Deletional and point mutagenesis to identify phosphorylation sites.

Main Results:

  • p42 MAPK/ERK2 phosphorylated additional Ser and Thr residues in the GST-TNF-R1(207-425).4D/E fusion protein beyond the known sites.
  • Deletional mutagenesis identified a 14-amino acid stretch (residues 256-267) containing additional phosphorylation sites.
  • Point mutagenesis confirmed T257, S262, and T267 as direct phosphorylation targets of p42 MAPK/ERK2.

Conclusions:

  • p42 MAPK/ERK2 initiates a hierarchical phosphorylation cascade on TNF-R1.
  • This cascade leads to extensive phosphorylation of the receptor's membrane-proximal region.
  • Both consensus and non-consensus phosphorylation sites are targeted, impacting TNF-R1 function.

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