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Updated: Mar 19, 2026

An Enzyme- and Serum-free Neural Stem Cell Culture Model for EMT Investigation Suited for Drug Discovery
Published on: August 23, 2016
Motility and stem cell properties induced by the epithelial-mesenchymal transition require destabilization of lipid
Michael J Tisza1, Weina Zhao1, Jessie S R Fuentes1
1Department of Integrative Biology and Pharmacology, The University of Texas Health Science Center at Houston, Houston, TX, USA.
Abstract:
The Epithelial-Mesenchymal Transition (EMT) is a developmental program that provides cancer cells with the characteristics necessary for metastasis, including increased motility and stem cell properties. The cellular and molecular mechanisms underlying this process are not yet fully understood, hampering efforts to develop therapeutics. In recent years, it has become apparent that EMT is accompanied by wholesale changes in diverse signaling pathways that are initiated by proteins at the plasma membrane (PM). The PM contains thousands of lipid and protein species that are dynamically and spatially organized into lateral membrane domains, an example of which are lipid rafts. Since one of the major functions of rafts is modulation of signaling originating at the PM, we hypothesized that the signaling changes occurring during an EMT are associated with alterations in PM organization. To test this hypothesis, we used Giant Plasma Membrane Vesicles (GPMVs) to study the organization of intact plasma membranes isolated from live cells. We observed that induction of EMT significantly destabilized lipid raft domains. Further, this reduction in stability was crucial for the maintenance of the stem cell phenotype and EMT-induced remodeling of PM-orchestrated pathways. Exogenously increasing raft stability by feeding cells with ω-3 polyunsaturated fatty acid docosahexaenoic acid (DHA) repressed these phenotypes without altering EMT markers, and inhibited the metastatic capacity of breast cancer cells. Hence, modulating raft properties regulates cell phenotype, suggesting a novel approach for targeting the impact of EMT in cancer.
Insights
Epithelial-Mesenchymal Transition (EMT) destabilizes plasma membrane lipid rafts, promoting cancer stem cell traits and metastasis. Restoring raft stability with docosahexaenoic acid (DHA) inhibits cancer cell spread.
Area of Science:
- Cell Biology
- Cancer Research
- Biochemistry
Background:
- Epithelial-Mesenchymal Transition (EMT) confers cancer cells metastatic properties like motility and stemness.
- Understanding EMT mechanisms is crucial for developing effective cancer therapeutics.
- Signaling pathways initiated at the plasma membrane (PM) undergo significant changes during EMT.
Purpose of the Study:
- To investigate the association between EMT-induced signaling changes and alterations in PM organization.
- To determine the role of lipid rafts in maintaining cancer stem cell phenotype during EMT.
Main Methods:
- Utilized Giant Plasma Membrane Vesicles (GPMVs) to analyze intact plasma membranes from live cells.
- Induction of EMT and observation of lipid raft domain organization.
- Intervention with ω-3 polyunsaturated fatty acid docosahexaenoic acid (DHA) to modulate raft stability.
Main Results:
- EMT induction led to significant destabilization of lipid raft domains in the plasma membrane.
- Reduced raft stability was essential for sustaining the stem cell phenotype and PM-orchestrated signaling during EMT.
- Exogenous administration of DHA stabilized lipid rafts, repressed stem cell phenotypes, and inhibited breast cancer cell metastasis without altering EMT markers.
Conclusions:
- Plasma membrane organization, specifically lipid raft stability, plays a critical role in regulating cell phenotype during EMT.
- Modulating lipid raft properties presents a novel therapeutic strategy for targeting EMT-driven cancer progression.
- Docosahexaenoic acid (DHA) demonstrates potential in inhibiting cancer metastasis by influencing membrane raft dynamics.
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