Molecular effects of oestrogen deprivation in breast cancer
William R Miller1, Alexey Larionov
1Breast Research Group, University of Edinburgh, Western General Hospital, Edinburgh, United Kingdom. bill@aromil.co.uk
Abstract:
This paper reviews the effects of oestrogen deprivation by third generation aromatase inhibitors on molecular profiles in breast cancers. It particularly focuses on results obtained as a result of pre-operative and neoadjuvant therapy in which primary breast cancers have been biopsied or excised before and during treatment with letrozole, anastrozole or exemestane. Studies may be subdivided into those evaluating early (10-14 days) or late (3-4 months) changes; a single investigation charted sequential changes. Early changes involved downregulation of genes classically induced by oestrogen or associated with cell cycle and proliferation. In contrast, expressions of genes associated with stromal signatures were upregulated. Considerably more genes were changed at later time-points; these probably represent not only primary effects on cellular expression but secondary consequences of cell death and clonal selection. Thus, after 3-4 months of treatment mitochondrial-related genes and those associated with cell cycle and cell division were downregulated whereas genes associated with extracellular matrix (ECM) remodelling, vascularization, inflammatory responses and cell adhesion were upregulated. Recently, observations have been reported from a study in which tumours were sequentially sampled to include pretreatment and both early and later time-points. This allowed direct monitoring of the dynamic changes in gene expression. Different patterns of changes in gene expression were identified which were also associated with general differences in sub-cellular distribution of corresponding proteins. The effect of treatment on expression of specific genes and processes such as aromatase, oestrogen receptor (ER), oestrogen-regulated genes, HER2, p53, ribosomal proteins, markers of proliferation, oxidative phosphorylation and stromal response are summarized.
Insights
Third-generation aromatase inhibitors alter breast cancer molecular profiles by downregulating cell cycle genes and upregulating stromal genes. These dynamic changes evolve over time, impacting cellular processes and tumor microenvironment.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Breast cancer treatment often involves hormonal therapies targeting estrogen.
- Aromatase inhibitors (AIs) are crucial in estrogen deprivation therapy for hormone-sensitive breast cancer.
- Understanding molecular changes induced by AIs is key to optimizing treatment strategies.
Purpose of the Study:
- To review the effects of third-generation aromatase inhibitors on molecular profiles in breast cancers.
- To focus on molecular changes during pre-operative and neoadjuvant therapy.
- To summarize the dynamic gene expression changes over time.
Main Methods:
- Review of studies on letrozole, anastrozole, or exemestane in breast cancer.
- Analysis of molecular profiles from pre-treatment, early (10-14 days), and late (3-4 months) tumor samples.
- Examination of gene expression patterns and protein distribution.
Main Results:
- Early changes: downregulation of estrogen-induced and proliferation genes; upregulation of stromal genes.
- Late changes: downregulation of mitochondrial and cell cycle genes; upregulation of ECM remodeling, vascularization, inflammatory, and cell adhesion genes.
- Sequential sampling revealed dynamic gene expression patterns linked to protein localization.
Conclusions:
- Aromatase inhibitors induce significant, time-dependent molecular alterations in breast cancer.
- These changes reflect not only direct drug effects but also tumor response, cell death, and clonal selection.
- Molecular profiling provides insights into treatment efficacy and resistance mechanisms.
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