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Published on: March 8, 2022
Genomic landscape of metastatic breast cancer identifies preferentially dysregulated pathways and targets
Matt R Paul1,2,3, Tien-Chi Pan1,2,3, Dhruv K Pant1,2,3
1Secondary Prevention through Surveillance and Intervention (2-PREVENT) Translational Center of Excellence.
Abstract:
Nearly all breast cancer deaths result from metastatic disease. Despite this, the genomic events that drive metastatic recurrence are poorly understood. We performed whole-exome and shallow whole-genome sequencing to identify genes and pathways preferentially mutated or copy-number altered in metastases compared with the paired primary tumors from which they arose. Seven genes were preferentially mutated in metastases - MYLK, PEAK1, SLC2A4RG, EVC2, XIRP2, PALB2, and ESR1 - 5 of which are not significantly mutated in any type of human primary cancer. Four regions were preferentially copy-number altered: loss of STK11 and CDKN2A/B, as well as gain of PTK6 and the membrane-bound progesterone receptor, PAQR8. PAQR8 gain was mutually exclusive with mutations in the nuclear estrogen and progesterone receptors, suggesting a role in treatment resistance. Several pathways were preferentially mutated or altered in metastases, including mTOR, CDK/RB, cAMP/PKA, WNT, HKMT, and focal adhesion. Immunohistochemical analyses revealed that metastases preferentially inactivate pRB, upregulate the mTORC1 and WNT signaling pathways, and exhibit nuclear localization of activated PKA. Our findings identify multiple therapeutic targets in metastatic recurrence that are not significantly mutated in primary cancers, implicate membrane progesterone signaling and nuclear PKA in metastatic recurrence, and provide genomic bases for the efficacy of mTORC1, CDK4/6, and PARP inhibitors in metastatic breast cancer.
Insights
Genomic analysis reveals key mutations and copy-number alterations driving breast cancer metastasis. These findings identify novel therapeutic targets for metastatic recurrence, including membrane progesterone signaling and nuclear PKA.
Area of Science:
- Oncology
- Genomics
- Molecular Biology
Background:
- Metastatic breast cancer is the primary cause of cancer-related deaths.
- The genomic underpinnings of metastatic recurrence remain largely unknown.
Purpose of the Study:
- To identify genes and pathways preferentially altered in metastatic breast cancer compared to primary tumors.
- To uncover novel therapeutic targets for metastatic disease.
Main Methods:
- Whole-exome and shallow whole-genome sequencing of paired primary and metastatic tumors.
- Immunohistochemical analysis to validate pathway alterations in metastases.
Main Results:
- Identified seven genes (e.g., MYLK, PALB2, ESR1) and four genomic regions (e.g., STK11 loss, PAQR8 gain) preferentially altered in metastases.
- PAQR8 gain showed mutual exclusivity with nuclear hormone receptor mutations, suggesting a role in treatment resistance.
- Metastases showed preferential inactivation of pRB, upregulation of mTORC1 and WNT pathways, and nuclear PKA localization.
Conclusions:
- Discovered novel therapeutic targets for metastatic breast cancer not typically altered in primary tumors.
- Highlighted the roles of membrane progesterone signaling and nuclear protein kinase A (PKA) in metastatic progression.
- Provided a genomic rationale for using mTORC1, CDK4/6, and PARP inhibitors in metastatic breast cancer treatment.
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