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Assessing Cellular Target Engagement by SHP2 PTPN11 Phosphatase Inhibitors
Published on: July 17, 2020
Cholesterol biogenesis is a PTEN-dependent actionable node for the treatment of endocrine therapy-refractory cancers
Irmak Kaysudu1, Taha Bugra Gungul1, Sena Atici1
1Department of Molecular Biology and Genetics, Bilkent University, Ankara, Turkey.
Abstract:
PTEN and PIK3CA mutations are the most prevalent PI3K pathway alterations in prostate, breast, colorectal, and endometrial cancers. p110β becomes the prominent PI3K isoform upon PTEN loss. In this study, we aimed to understand the molecular mechanisms of PI3K dependence in the absence of PTEN. Using online bioinformatical tools, we examined two publicly available microarray datasets with aberrant PI3K activation. We found that the rate-limiting enzyme of cholesterol biogenesis, SQLE, was significantly upregulated in p110β-hyperactivated or PTEN-deficient mouse prostate tumors. Concomitantly, the expression of cholesterol biosynthesis pathway enzymes was directly correlated with PI3K activation status in microarray datasets and diminished upon PTEN re-expression in PTEN-null prostate cancer cells. Particularly, PTEN re-expression decreased SQLE protein levels in PTEN-deficient prostate cancer cells. We performed targeted metabolomics and detected reduced levels of cholesteryl esters as well as free cholesterol upon PTEN re-expression. Notably, PTEN-null prostate and breast cancer cell lines were more sensitive to pharmacological intervention with the cholesterol pathway than PTEN-replete cancer cells. Since steroid hormones use sterols as structural precursors, we studied whether cholesterol biosynthesis may be a metabolic vulnerability that enhances antihormone therapy in PTEN-null castration-resistant prostate cancer cells. Coinhibition of cholesterol biosynthesis and the androgen receptor enhanced their sensitivity. Moreover, PTEN suppression in endocrine therapy-resistant luminal-A breast cancer cells leads to an increase in SQLE expression and a corresponding sensitization to the inhibition of cholesterol synthesis. According to our data, targeting cholesterol biosynthesis in combination with the hormone receptor signaling axis can potentially treat hormone-resistant prostate and breast cancers.
Insights
Loss of PTEN tumor suppressor gene elevates PI3K pathway activity, driving cancer. This study reveals targeting cholesterol synthesis alongside hormone therapy can treat PTEN-deficient, hormone-resistant prostate and breast cancers.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- PTEN and PIK3CA mutations are common in various cancers, activating the PI3K pathway.
- Loss of PTEN leads to increased activity of the PI3K p110β isoform.
- Understanding PI3K dependence in PTEN-deficient cancers is crucial for therapeutic strategies.
Purpose of the Study:
- To elucidate molecular mechanisms of PI3K dependence in PTEN-deficient cancers.
- To investigate the role of cholesterol biosynthesis in PTEN-null tumors.
- To explore combined therapeutic strategies targeting PI3K and cholesterol pathways.
Main Methods:
- Bioinformatic analysis of microarray datasets with aberrant PI3K activation.
- In vitro studies involving PTEN re-expression in cancer cells.
- Targeted metabolomics to assess cholesterol levels.
- Pharmacological inhibition of cholesterol biosynthesis and androgen receptor signaling.
Main Results:
- Cholesterol biosynthesis enzyme SQLE is upregulated in PTEN-deficient or p110β-hyperactivated tumors.
- Cholesterol pathway enzyme expression correlates with PI3K activation and decreases upon PTEN re-expression.
- PTEN-null cancer cells show increased sensitivity to cholesterol pathway inhibition.
- Combined inhibition of cholesterol biosynthesis and androgen receptor enhances anti-hormone therapy efficacy.
Conclusions:
- Cholesterol biosynthesis is a metabolic vulnerability in PTEN-deficient cancers.
- Targeting cholesterol synthesis combined with hormone receptor signaling offers a potential therapeutic approach for hormone-resistant prostate and breast cancers.
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