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Enrichment of Mammalian Tissues and Xenopus Oocytes with Cholesterol
Published on: March 25, 2020
Cholesterol inhibits entotic cell-in-cell formation and actomyosin contraction
Banzhan Ruan1, Bo Zhang2, Ang Chen3
1School of Biology and Biological Engineering, South China University of Technology, Guangzhou 510000, PR China; Laboratory of Cell Engineering, Institute of Biotechnology, 20 Dongda Street, Beijing 100071, PR China.
Abstract:
Cell-in-cell structure is prevalent in human cancer, and associated with several specific pathophysiological phenomena. Although cell membrane adhesion molecules were found critical for cell-in-cell formation, the roles of other membrane components, such as lipids, remain to be explored. In this study, we attempted to investigate the effects of cholesterol and phospholipids on the formation of cell-in-cell structures by utilizing liposome as a vector. We found that Lipofectamine-2000, the reagent commonly used for routine transfection, could significantly reduce entotic cell-in-cell formation in a cell-specific manner, which is correlated with suppressed actomyosin contraction as indicated by reduced β-actin expression and myosin light chain phosphorylation. The influence on cell-in-cell formation was likely dictated by specific liposome components as some liposomes affected cell-in-cell formation while some others didn't. Screening on a limited number of lipids, the major components of liposome, identified phosphatidylethanolamine (PE), stearamide (SA), lysophosphatidic acid (LPA) and cholesterol (CHOL) as the inhibitors of cell-in-cell formation. Importantly, cholesterol treatment significantly inhibited myosin light chain phosphorylation, which resembles the effect of Lipofectamine-2000, suggesting cholesterol might be partially responsible for liposomes' effects on cell-in-cell formation. Together, our findings supporting a role of membrane lipids and cholesterol in cell-in-cell formation probably via regulating actomyosin contraction.
Insights
Membrane lipids, including cholesterol, can inhibit cell-in-cell structure formation in cancer. This process may involve regulating actomyosin contraction, a key cellular mechanism.
Area of Science:
- Cell Biology
- Cancer Research
- Biochemistry
Background:
- Cell-in-cell structures are common in human cancers and linked to pathological processes.
- While cell adhesion molecules are known to be involved, the role of membrane lipids in cell-in-cell formation is unexplored.
Purpose of the Study:
- To investigate the impact of cholesterol and phospholipids on cell-in-cell structure formation.
- To explore the potential of liposomes as vectors for delivering lipids to study their effects.
Main Methods:
- Utilized liposomes to deliver lipids and assess their effects on cell-in-cell formation.
- Measured changes in actomyosin contraction, including beta-actin expression and myosin light chain phosphorylation.
- Screened various lipid components for their influence on cell-in-cell formation.
Main Results:
- Lipofectamine-2000, a common transfection reagent, reduced entotic cell-in-cell formation by suppressing actomyosin contraction.
- Specific liposome components, including phosphatidylethanolamine (PE), stearamide (SA), lysophosphatidic acid (LPA), and cholesterol (CHOL), inhibited cell-in-cell formation.
- Cholesterol treatment notably reduced myosin light chain phosphorylation, mirroring Lipofectamine-2000's effects.
Conclusions:
- Membrane lipids, particularly cholesterol, play a role in regulating cell-in-cell formation.
- Cholesterol may exert its influence by modulating actomyosin contraction, a mechanism potentially shared with Lipofectamine-2000.
- Findings suggest a novel regulatory pathway for cell-in-cell structures involving membrane lipid composition.
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