EGF and NRG induce phosphorylation of HER3/ERBB3 by EGFR using distinct oligomeric mechanisms

Bettina van Lengerich1, Christopher Agnew1, Elias M Puchner2

  • 1Cardiovascular Research Institute, University of California, San Francisco, CA 94158.

Insights

Ligands like EGF and neuregulin induce distinct human epidermal growth factor receptor 3 (HER3) clustering, influencing its phosphorylation and signaling pathways. Receptor organization is key to ligand-specific HER3 activation and cross-talk.

Area of Science:

  • Cellular biology
  • Molecular biology
  • Biophysics

Background:

  • Heteromeric interactions between human epidermal growth factor receptor 3 (HER3/ERBB3) and active homologs (EGFR, HER2) are crucial for signaling.
  • Ligand-induced activation of these receptor pairs leads to varied signaling outcomes via poorly understood mechanisms.

Purpose of the Study:

  • To investigate how different ligands (EGF, neuregulin) modulate HER3 clustering and phosphorylation.
  • To elucidate the role of higher-order receptor organization in ligand-specific HER3 signaling.

Main Methods:

  • Stochastic optical reconstruction microscopy (STORM) with pair-correlation analysis.
  • Analysis of HER3 clustering and phosphorylation patterns in response to EGF and neuregulin stimulation.
  • Investigation of kinase dimer formation and higher-order oligomerization.

Main Results:

  • EGF and neuregulin induce differential HER3 clustering dependent on coexpressed HER receptors.
  • Ligand-induced clustering correlates with distinct phosphorylation patterns and mechanisms.
  • Neuregulin-induced HER3 phosphorylation involves asymmetric EGFR dimerization, while EGF stimulation leads to large HER3 clusters and noncanonical phosphorylation.
  • HER2-mediated phosphorylation with neuregulin involves clusters and asymmetric dimerization.

Conclusions:

  • The higher-order organization of HER receptors is essential for ligand-induced behavior and lateral cross-activation.
  • HER receptor ligands uniquely modulate signaling by controlling receptor organization and cross-activation mechanisms.

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