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Studying the Stoichiometry of Epidermal Growth Factor Receptor in Intact Cells using Correlative Microscopy
Published on: September 11, 2015
Membrane-anchored growth factors, the epidermal growth factor family: beyond receptor ligands
Shigeki Higashiyama1, Hidehiko Iwabuki, Chie Morimoto
1Department of Biochemistry and Molecular Genetics, Center for Regenerative Medicine (CEREM), Ehime University Graduate School of Medicine, Shitsukawa, Toon, Ehime 791-0295, Japan. shigeki@m.ehime-u.ac.jp
Abstract:
The epidermal growth factor (EGF) family and the EGF receptor (EGFR, ErbB) tyrosine kinase family have been spearheading the studies of signal transduction events that determine cell fate and behavior in vitro and in vivo. The EGFR family and their signaling pathways are giving us tremendous advantages in developing fascinating molecular target strategies for cancer therapy. Currently, two important types of EGFR inhibitors are in clinical use: neutralizing antibodies of EGFR or ErbB2, and synthetic small compounds of tyrosine kinase inhibitors designed for receptors. On the other hand, basic research of the EGF family ligands presents new challenges as membrane-anchored growth factors. All members of the EGF family have important roles in development and diseases and are shed from the plasma membrane by metalloproteases. The ectodomain shedding of the ligands has emerged as a critical component in the functional transactivation of EGFRs in interreceptor cross-talk in response to various shedding stimulants such as G-protein coupled receptor agonists, growth factors, cytokines, and various physicochemical stresses. Among the EGFR-ligands, heparin-binding EGF-like growth factor (HB-EGF) is a prominent ligand in our understanding of the pathophysiological roles of ectodomain shedding in cancer, wound healing, cardiac diseases, etc. Here we focus on ectodomain shedding of the EGF family ligands, especially HB-EGF by disintegrin and metalloproteases, which are not only key events of receptor cross talk, but also novel intercellular signaling by their carboxy-terminal fragments to regulate gene expression directly.
Insights
Epidermal growth factor (EGF) family ligands are shed from cell membranes, influencing EGF receptor (EGFR) signaling. This ectodomain shedding, particularly of HB-EGF, is crucial for cancer therapy and understanding disease.
Area of Science:
- Cellular signaling and molecular biology.
- Cancer research and therapeutics.
- Biochemistry of growth factors and receptors.
Background:
- The epidermal growth factor (EGF) family and their receptors (EGFRs) are key regulators of cell behavior.
- EGFR inhibitors are established cancer therapies, but ligand behavior presents new challenges.
- EGF family ligands are membrane-anchored and shed by metalloproteases.
Purpose of the Study:
- To investigate the role of ectodomain shedding of EGF family ligands, focusing on HB-EGF.
- To explore how ectodomain shedding mediates EGFR transactivation and interreceptor cross-talk.
- To understand the novel intercellular signaling of ligand carboxy-terminal fragments.
Main Methods:
- Analysis of EGF family ligand shedding mechanisms.
- Studies on metalloprotease involvement in ectodomain shedding.
- Investigation of HB-EGF shedding and its signaling consequences.
- Examination of carboxy-terminal fragment signaling.
Main Results:
- Ectodomain shedding of EGF family ligands is a critical event for EGFR functional transactivation.
- Heparin-binding EGF-like growth factor (HB-EGF) shedding is significant in various diseases.
- Shedding stimulates interreceptor cross-talk via EGFR.
- Carboxy-terminal fragments of shed ligands act as novel signaling molecules.
Conclusions:
- Ectodomain shedding of EGF family ligands, especially HB-EGF, is a key mechanism in EGFR signaling and disease.
- Metalloprotease-mediated shedding regulates receptor cross-talk and provides new signaling pathways.
- Targeting ligand shedding may offer novel therapeutic strategies for cancer and other diseases.
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