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1 s does not alter 5-HT1A segregation into the liquid disordered phase.
2 that electropores form preferentially in the liquid disordered phase.
3 talline and a gel, or a liquid-ordered and a liquid-disordered phase.
4 at EqtII pores form predominantly within the liquid-disordered phase.
5 ed state versus cholesterol-free LUVs in the liquid-disordered phase.
6 main boundaries before it accumulates in the liquid-disordered phase.
7 ndensed phases as well as liquid-ordered and liquid-disordered phases.
8 re is coexistence between liquid-ordered and liquid-disordered phases.
9 ble blue shift in liquid-ordered relative to liquid-disordered phases.
10 antly higher than for extracting it from the liquid-disordered phases.
11  diffusion of fluorescently tagged lipids in liquid-disordered phase 1-palmitoyl-2-oleoyl-sn-glycero-
12  the different lipid membranes (DOPC for the liquid disordered phase and DPPC for the gel phase), and
13  These liquid-ordered domains coexist with a liquid-disordered phase and form in monolayers prepared
14 rresponding to the liquid-ordered phase, the liquid-disordered phase, and coexistence of the two phas
15 60 nm in liquid-ordered phases compared with liquid-disordered phases, and shows strong second harmon
16                Coexisting liquid-ordered and liquid-disordered phases are observed at temperatures be
17 undulations of membranes with liquid ordered/liquid disordered phase coexistence and near-critical co
18 ch differentiates liquid-ordered phases from liquid-disordered phases coexisting in model membranes u
19 ows strong second harmonic generation in the liquid-disordered phase compared with the liquid-ordered
20   Upon collapse, bilayer folds formed in the liquid (disordered) phase; curved domains shifted the nu
21 e diffusion of lipids is similar in l(o) and liquid-disordered phase domains and is not affected by t
22 ning membranes shows that liquid-ordered and liquid-disordered phase domains coexist.
23           Dye preferentially adsorbed to the liquid-disordered phase during immiscible liquid-liquid
24 ing of n-alcohols between liquid-ordered and liquid-disordered phases evolves as the chain length of
25        Further, the TCR was localized in the liquid disordered phase in giant unilamellar vesicles.
26  liquid phases similar to the liquid-ordered/liquid-disordered phases in phospholipid/cholesterol mon
27 branes made from DPPC and cholesterol in the liquid-disordered phase (ld), in the liquid-ordered phas
28 regation of 5-HT1A into the cholesterol-poor liquid disordered phase of the membrane, contradicting p
29 the coexistence region of liquid-ordered and liquid-disordered phases of cholesterol containing terna
30  are 90 s and 11 s in the liquid-ordered and liquid-disordered phases, respectively.
31 a novel analysis, and are found to connect a liquid-disordered phase rich in diphytanoyl PC with a li
32 e of domain registration in a liquid-ordered/liquid-disordered phase-separating lipid mixture consist
33 ickness of the coexisting liquid-ordered and liquid-disordered phases, suggesting a dominant role for
34 C showed no evidence for a liquid-ordered to liquid-disordered phase transition.
35  various chain anchors in liquid-ordered and liquid-disordered phases utilizing a theoretical model o
36                                          The liquid (disordered) phase was preferentially transferred
37 erties of liquid-ordered, solid-ordered, and liquid-disordered phases were investigated by steady-sta
38 vidual tethered proteins colocalize with the liquid-disordered phase, whereas ordered protein domains

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