Atomistic Simulation of Cholesterol Effects on Miscibility of Saturated and Unsaturated Phospholipids: Implications for Liquid-Ordered/Liquid-Disordered Phase Coexistence Jason de Joannis Patrick S. Coppock Fuchang Yin Makoto Mori Absalom Zamorano James T. Kindt 10.1021/ja110425s.s001 https://acs.figshare.com/articles/journal_contribution/Atomistic_Simulation_of_Cholesterol_Effects_on_Miscibility_of_Saturated_and_Unsaturated_Phospholipids_Implications_for_Liquid_Ordered_Liquid_Disordered_Phase_Coexistence/2682961 Mixed MD/MC simulation at fixed difference in chemical potential (Δμ) between two lipid types provides a computational indicator of the relative affinities of the two lipids for different environments. Applying this technique to ternary DPPC/DOPC/cholesterol bilayers yields a DPPC/DOPC ratio that increases with increasing cholesterol content at fixed Δμ, consistent with the known enrichment of DPPC and cholesterol-rich in liquid-ordered phase domains in the fluid−fluid coexistence region of the ternary phase diagram. Comparison of the cholesterol-dependence of PC compositions at constant Δμ with experimentally measured coexistence tie line end point compositions affords a direct test of the faithfulness of the atomistic model to experimental phase behavior. DPPC/DOPC ratios show little or no dependence on cholesterol content at or below 16% cholesterol in the DOPC-rich region of the composition diagram, indicating cooperativity in the favorable interaction between DPPC and cholesterol. The relative affinity of DPPC and DOPC for high cholesterol bilayer environments in simulations is explicitly shown to depend on the degree of cholesterol alignment with the bilayer normal, suggesting that a source of the cooperativity is the composition dependence of cholesterol tilt angle distributions. 2011-03-16 00:00:00 PC cholesterol content cholesterol bilayer environments cholesterol tilt angle distributions MD coexistence tie line end point compositions ternary phase diagram DPPC DOPC