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Updated: Sep 25, 2025

Cell Co-culture Patterning Using Aqueous Two-phase Systems
Published on: March 26, 2013
Heptanol-mediated phase separation determines phase preference of molecules in live cell membranes
Anjali Gupta1, Danqin Lu2, Harikrushnan Balasubramanian1
1Department of Biological Sciences and Centre for Bioimaging Sciences (CBIS), National University of Singapore (NUS), Singapore, Singapore.
Abstract:
The localization of many membrane proteins within cholesterol- and sphingolipid-containing microdomains is essential for proper cell signaling and function. These membrane domains, however, are too small and dynamic to be recorded, even with modern super-resolution techniques. Therefore, the association of membrane proteins with these domains can only be detected with biochemical assays that destroy the integrity of cells require pooling of many cells and take a long time to perform. Here, we present a simple membrane fluidizer-induced clustering approach to identify the phase-preference of membrane-associated molecules in individual live cells within 10-15 min. Experiments in phase-separated bilayers and live cells on molecules with known phase preference show that heptanol hyperfluidizes the membrane and stabilizes phase separation. This results in a transition from nanosized to micronsized clusters of associated molecules allowing their identification using routine microscopy techniques. Membrane fluidizer-induced clustering is an inexpensive and easy to implement method that can be conducted at large-scale and allows easy identification of protein partitioning in live cell membranes.
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