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Transit of hormonal and EGF receptor-dependent signals through cholesterol-rich membranes
Michael R Freeman1, Bekir Cinar, Jayoung Kim
1Urological Diseases Research Center, Department of Urology, Children's Hospital Boston, Boston, MA 02115, United States. michael.freeman@childrens.harvard.edu
Abstract:
The functional consequences of changes in membrane lipid composition that coincide with malignant growth are poorly understood. Sufficient data have been acquired from studies of lipid binding proteins, post-translational modifications of signaling proteins, and biochemical inhibition of lipidogenic pathways to indicate that growth and survival pathways might be substantially re-directed by alterations in the lipid content of membranes. Cholesterol and glycosphingolipids segregate into membrane patches that exhibit a liquid-ordered state in comparison to membrane domains containing relatively lower amounts of these classes of lipids. These "lipid raft" structures, which may vary in size and stability in different cell types, both accumulate and exclude signaling proteins and have been implicated in signal transduction through a number of cancer-relevant pathways. In prostate cancer cells, signaling from epidermal growth factor receptor (EGFR) to the serine-threonine kinase Akt1, as well as from IL-6 to STAT3, have been demonstrated to be influenced by experimental interventions that target cholesterol homeostasis. The recent finding that classical steroid hormone receptors also reside in these microdomains, and thus may function within these structures in a signaling capacity independent of their role as nuclear factors, suggests a novel means of cross-talk between receptor tyrosine kinase-derived and steroidogenic signals. Potential points of intersection between components of the EGFR family of receptor tyrosine kinases and androgen receptor signaling pathways, which may be sensitive to disruptions in cholesterol metabolism, are discussed. Understanding the manner in which these pathways converge within cholesterol-rich membranes may present new avenues for therapeutic intervention in hormone-dependent cancers.
Insights
Changes in membrane lipids, particularly cholesterol, impact cancer cell growth pathways. Targeting these lipid-rich membrane domains offers new therapeutic strategies for hormone-dependent cancers.
Area of Science:
- Biochemistry
- Cell Biology
- Cancer Research
Background:
- Membrane lipid composition changes are linked to malignant growth, but functional consequences are unclear.
- Lipid rafts, cholesterol-rich membrane domains, influence signaling proteins and cancer-relevant pathways.
- Alterations in membrane lipids can redirect cell growth and survival pathways.
Purpose of the Study:
- To explore the functional consequences of altered membrane lipid composition in cancer.
- To investigate the role of lipid rafts in cancer signaling pathways.
- To identify potential therapeutic targets by understanding pathway convergence in cholesterol-rich membranes.
Main Methods:
- Analysis of lipid binding proteins and post-translational modifications.
- Biochemical inhibition of lipidogenic pathways.
- Investigating signaling pathways like EGFR to Akt1 and IL-6 to STAT3 in prostate cancer cells.
Main Results:
- Cholesterol and glycosphingolipids form liquid-ordered membrane patches (lipid rafts) that sequester signaling proteins.
- Experimental interventions targeting cholesterol homeostasis affect EGFR-Akt1 and IL-6-STAT3 signaling in prostate cancer.
- Steroid hormone receptors function within lipid rafts, suggesting cross-talk between receptor tyrosine kinase and steroidogenic signals.
Conclusions:
- Lipid rafts play a crucial role in mediating cancer cell signaling.
- Cross-talk between receptor tyrosine kinase and steroid hormone receptor pathways occurs within cholesterol-rich membrane microdomains.
- Disruptions in cholesterol metabolism and understanding pathway convergence in lipid rafts may offer novel therapeutic strategies for hormone-dependent cancers.
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