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The c-erbB-2 protein in oncogenesis: molecular structure to molecular epidemiology
P W Brandt-Rauf1, M R Pincus, W P Carney
1Department of Medicine and Comprehensive Cancer Center, Columbia University, New York, N.Y. 10032.
Abstract:
The c-erbB-2 (HER-2, neu) oncogene has been implicated frequently in many human tumors. This oncogene codes for a 185-kDa protein that functions as a transmembrane growth factor receptor. Overexpression of the normal protein or point mutations in the transmembrane domain of the protein have been shown to have a transforming effect. Molecular structure studies of the transmembrane domain provide a plausible explanation for this transforming effect in both cases and relate this to the process of receptor dimerization in the membrane, degradation of the protein with release of the extracellular domain (ECD) into the extracellular environment, and aberrant signal transduction. The release of the ECD into the extracellular environment provides a potential biomarker for the study of signal transduction at the molecular level in vivo. The ECD can be quantitated immunologically in the serum of individuals with cancers associated with p185 overexpression and in individuals at risk for the development of such cancers and can be used to distinguish these individuals from normal, healthy controls. Identification of such individuals by their serum ECD levels combined with specific chemotherapeutic/chemoprophylactic interventions could allow for improvement treatment and prevention of c-erbB-2-related cancers.
Insights
The c-erbB-2 (HER-2, neu) oncogene
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- The c-erbB-2 (HER-2, neu) oncogene is frequently implicated in human tumors.
- It encodes a 185-kDa transmembrane growth factor receptor protein.
- Overexpression or mutations in this protein can lead to cancer transformation.
Purpose of the Study:
- To investigate the molecular mechanisms underlying the transforming effect of c-erbB-2.
- To explore the potential of the extracellular domain (ECD) as a biomarker for cancer detection and monitoring.
Main Methods:
- Molecular structure studies of the transmembrane domain.
- Analysis of receptor dimerization, protein degradation, and signal transduction pathways.
- Immunological quantification of serum ECD levels.
Main Results:
- Structural studies explain the transforming effects of c-erbB-2 overexpression and mutations.
- Receptor dimerization, protein degradation, and aberrant signal transduction are key mechanisms.
- Serum ECD levels can distinguish cancer patients from healthy individuals.
Conclusions:
- The release of the ECD is a potential biomarker for in vivo signal transduction studies.
- Quantifying serum ECD can aid in identifying individuals with c-erbB-2-related cancers or at risk.
- Early identification via serum ECD levels may improve treatment and prevention strategies for c-erbB-2-driven cancers.