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Published on: April 27, 2018
PI3K: A master regulator of brain metastasis-promoting macrophages/microglia
Raquel Blazquez1,2, Darius Wlochowitz3, Alexander Wolff4
1Department of Internal Medicine III, University Hospital Regensburg, Regensburg, Germany.
Abstract:
Mutations and activation of the PI3K signaling pathway in breast cancer cells have been linked to brain metastases. However, here we describe that in some breast cancer brain metastases samples the protein expression of PI3K signaling components is restricted to the metastatic microenvironment. In contrast to the therapeutic effects of PI3K inhibition on the breast cancer cells, the reaction of the brain microenvironment is less understood. Therefore we aimed to quantify the PI3K pathway activity in breast cancer brain metastasis and investigate the effects of PI3K inhibition on the central nervous system (CNS) microenvironment. First, to systematically quantify the PI3K pathway activity in breast cancer brain metastases, we performed a prospective biomarker study using a reverse phase protein array (RPPA). The majority, namely 30 out of 48 (62.5%) brain metastatic tissues examined, revealed high PI3K signaling activity that was associated with a median overall survival (OS) of 9.41 months, while that of patients, whose brain metastases showed only moderate or low PI3K activity, amounted to only 1.93 and 6.71 months, respectively. Second, we identified PI3K as a master regulator of metastasis-promoting macrophages/microglia during CNS colonization; and treatment with buparlisib (BKM120), a pan-PI3K Class I inhibitor with a good blood-brain-barrier penetrance, reduced their metastasis-promoting features. In conclusion, PI3K signaling is active in the majority of breast cancer brain metastases. Since PI3K inhibition does not only affect the metastatic cells but also re-educates the metastasis-promoting macrophages/microglia, PI3K inhibition may hold considerable promise in the treatment of brain metastasis and the respective microenvironment.
Insights
High PI3K pathway activity in breast cancer brain metastases correlates with shorter survival. PI3K inhibition targets cancer cells and brain microenvironment immune cells, offering a promising treatment strategy.
Area of Science:
- Oncology
- Neuro-oncology
- Molecular Biology
Background:
- PI3K pathway activation in breast cancer is linked to brain metastases.
- The role of PI3K signaling in the brain's microenvironment during metastasis is not well understood.
- Understanding PI3K activity in brain metastases is crucial for effective treatment.
Purpose of the Study:
- To quantify PI3K pathway activity in breast cancer brain metastases.
- To investigate the effects of PI3K inhibition on the central nervous system (CNS) microenvironment.
Main Methods:
- Prospective biomarker study using reverse phase protein array (RPPA) on 48 brain metastatic tissues.
- Assessment of PI3K pathway activity and correlation with overall survival (OS).
- In vivo study using buparlisib (BKM120), a pan-PI3K inhibitor, to evaluate effects on CNS microenvironment.
Main Results:
- 62.5% (30/48) of brain metastases showed high PI3K signaling activity, associated with shorter OS (9.41 months) compared to moderate/low activity (1.93-6.71 months).
- PI3K was identified as a key regulator of metastasis-promoting macrophages/microglia in the CNS.
- Buparlisib treatment reduced pro-metastatic features of these immune cells in the CNS.
Conclusions:
- PI3K signaling is highly active in most breast cancer brain metastases.
- PI3K inhibition impacts both cancer cells and the pro-metastatic CNS microenvironment.
- Targeting PI3K may offer a dual therapeutic benefit for treating brain metastases.
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