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Induction of Invasive Transitional Cell Bladder Carcinoma in Immune Intact Human MUC1 Transgenic Mice: A Model for Immunotherapy Development
Published on: October 30, 2013
Invasive Bladder Cancer: Genomic Insights and Therapeutic Promise
Jaegil Kim1, Rehan Akbani2, Chad J Creighton3
1The Eli and Edythe L. Broad Institute of Massachusetts Institute of Technology and Harvard University, Cambridge, Massachusetts. dk@rics.bwh.harvard.edu jaegil@broadinstitute.org.
Abstract:
Invasive bladder cancer, for which there have been few therapeutic advances in the past 20 years, is a significant medical problem associated with metastatic disease and frequent mortality. Although previous studies had identified many genetic alterations in invasive bladder cancer, recent genome-wide studies have provided a more comprehensive view. Here, we review those recent findings and suggest therapeutic strategies. Bladder cancer has a high mutation rate, exceeded only by lung cancer and melanoma. About 65% of all mutations are due to APOBEC-mediated mutagenesis. There is a high frequency of mutations and/or genomic amplification or deletion events that affect many of the canonical signaling pathways involved in cancer development: cell cycle, receptor tyrosine kinase, RAS, and PI-3-kinase/mTOR. In addition, mutations in chromatin-modifying genes are unusually frequent in comparison with other cancers, and mutation or amplification of transcription factors is also common. Expression clustering analyses organize bladder cancers into four principal groups, which can be characterized as luminal, immune undifferentiated, luminal immune, and basal. The four groups show markedly different expression patterns for urothelial differentiation (keratins and uroplakins) and immunity genes (CD274 and CTLA4), among others. These observations suggest numerous therapeutic opportunities, including kinase inhibitors and antibody therapies for genes in the canonical signaling pathways, histone deacetylase inhibitors and novel molecules for chromatin gene mutations, and immune therapies, which should be targeted to specific patients based on genomic profiling of their cancers.
Insights
Recent genomic studies reveal bladder cancer
Area of Science:
- Oncology
- Genetics
- Cancer Biology
Background:
- Invasive bladder cancer presents a significant unmet medical need with limited therapeutic progress.
- Previous genetic studies offered partial insights, but recent genome-wide analyses provide a more complete picture.
Purpose of the Study:
- To review recent comprehensive genomic findings in invasive bladder cancer.
- To propose targeted therapeutic strategies based on these genomic insights.
Main Methods:
- Review of recent genome-wide studies on bladder cancer genetics.
- Analysis of mutation rates, types (APOBEC-mediated mutagenesis), and affected signaling pathways (cell cycle, RTK, RAS, PI3K/mTOR).
- Examination of mutations in chromatin-modifying genes and transcription factors.
- Application of expression clustering to classify bladder cancers into subtypes (luminal, immune undifferentiated, luminal immune, basal).
Main Results:
- Bladder cancer exhibits a high mutation rate, with APOBEC contributing significantly.
- Canonical cancer signaling pathways and chromatin-modifying genes are frequently altered.
- Four distinct molecular subtypes (luminal, immune undifferentiated, luminal immune, basal) were identified based on gene expression.
- These subtypes differ in urothelial differentiation and immune gene expression (e.g., CD274, CTLA4).
Conclusions:
- Genomic profiling reveals numerous therapeutic targets in bladder cancer.
- Targeted therapies include kinase inhibitors, antibody therapies, and histone deacetylase inhibitors.
- Immune therapies should be personalized based on specific cancer genomic subtypes.
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