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The EGFR-HER2 module: a stem cell approach to understanding a prime target and driver of solid tumors
1Institute of Molecular Animal Breeding and Biotechnology, Gene Center, LMU Munich, Munich, Germany.
Abstract:
The epidermal growth factor receptor (EGFR) and a coreceptor denoted HER2/ERBB2 are frequently overexpressed or mutated in solid tumors, such as carcinomas and gliomas. In line with driver roles, cancer drugs intercepting EGFR or HER2 currently outnumber therapies targeting other hubs of signal transduction. To explain the roles for EGFR and HER2 as prime drivers and targets, we take lessons from invertebrates and refer to homeostatic regulation of several mammalian tissues. The model we infer ascribes to the EGFR-HER2 module pivotal functions in rapid clonal expansion of progenitors called transient amplifying cells (TACs). Accordingly, TACs of tumors suffer from replication stress, and hence accumulate mutations. In addition, several lines of evidence propose that in response to EGF and related mitogens, TACs might undergo dedifferentiation into tissue stem cells, which might enable entry of oncogenic mutations into the stem cell compartment. According to this view, antibodies or kinase inhibitors targeting EGFR-HER2 effectively retard some solid tumors because they arrest mutation-enriched TACs and possibly inhibit their dedifferentiation. Deeper understanding of the EGFR-HER2 module and relations between cancer stem cells and TACs will enhance our ability to control a broad spectrum of human malignancies.
Insights
Epidermal growth factor receptor (EGFR) and HER2 are key drivers in solid tumors. Targeting these pathways halts tumor growth by arresting mutated progenitor cells and preventing dedifferentiation.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Epidermal growth factor receptor (EGFR) and HER2 are frequently altered in solid tumors.
- Targeted therapies against EGFR and HER2 are crucial in cancer treatment.
- Understanding their roles in tumor development is essential.
Purpose of the Study:
- To elucidate the roles of the EGFR-HER2 module in solid tumor development.
- To explain why EGFR and HER2 are prime targets in cancer therapy.
- To propose a model for EGFR-HER2 function in tumor progression.
Main Methods:
- Inferred a model of EGFR-HER2 function.
- Examined roles in transient amplifying cells (TACs) and stem cells.
- Reviewed evidence from invertebrates and mammalian tissues.
Main Results:
- The EGFR-HER2 module drives rapid clonal expansion of progenitor TACs.
- Tumor TACs experience replication stress, leading to mutations.
- TACs may dedifferentiate into stem cells, allowing oncogenic mutations to enter the stem cell pool.
Conclusions:
- Targeting EGFR-HER2 with antibodies or kinase inhibitors slows tumor growth.
- These therapies arrest mutated TACs and may inhibit dedifferentiation.
- Further understanding of EGFR-HER2 and cancer stem cell interactions can improve cancer control.
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