Selene Roberts, Dave Clarke, Ioannis Galdadas, Marisa Martin-Fernandez
The epidermal growth factor receptor (EGFR) was cloned and identified as an oncogene 40 years ago, and since then has become the poster child for receptor tyrosine kinases in physiological and pathophysiological settings. Cell surface EGFRs bind growth factors secreted by adjacent cells and undergo conformational changes that transduce normal or dysregulated growth and division signals across the plasma membrane. It took more than two decades for atomic resolution of partial structures to become available, including the growth factor-bound ectodomain dimer, the active kinase monomer, the autoinhibited ectodomain monomer, the active asymmetric kinase dimer, the inactive symmetric dimer, transmembrane dimers and the inner juxtamembrane domain. These crystallographic structures paved the way for investigations of the architecture of EGFR assemblies on cells, which in the past decade have revealed the existence of oligomers, whose structure has been examined using high-resolution fluorescence microscopy combined with large-scale molecular dynamics simulations. Understanding the structure of EGFR monomers and dimers has already transformed our mechanistic understanding of cancer treatment, in some cases extending overall survival from months to a handful of years. It is eminently possible that the subsequent exploitation of information on oligomer structure will complement these achievements and overcome some of the current hurdles. This article is part of the discussion meeting issue 'Epidermal growth factor receptor after 40 years'.