AbstractIntrinsic heterogeneities, represented as domain formations in biological membranes, are important to both the structure and function of the membranes. We observed domain formations in mixed lipid bilayers of dipalmitoylphosphatidylcholine (DPPC), dilauroylphosphatidylcholine (DLPC), and cholesterol (chol) in a fluid environment using an atomic force microscope (AFM). At room temperature, we demonstrated that both microscopic and nanoscopic domains coexist and the DPPC-rich domain is ∼1.4nm higher than the surrounding DLPC-rich membrane areas as a consequence of intrinsic phase differences. DPPC-rich microscopic domains became larger as DPPC concentration increased. In cholesterol-free mixtures, nanoscopic DPPC-rich domain sizes ran...
AbstractDirect visualization of the fluid-phase/ordered-phase domain structure in mica-supported bil...
The behaviour of biological components in cellular membranes is vital to the function of cells howev...
AbstractWe devise a methodology to fixate and image dynamic fluid domain patterns of giant unilamell...
AbstractIntrinsic heterogeneities, represented as domain formations in biological membranes, are imp...
The formation of domains in supported lipid membranes has been studied extensively as a model for th...
Much of lipid raft properties can be inferred from phase behavior of multicomponent lipid membranes....
Lipids are integral components of all biological membranes. Understanding the physical and chemical ...
Lipid model membranes are important tools in the study of biophysical processes such as lipid self-a...
AbstractCholesterol is believed to be an important component in compositionally distinct lipid domai...
A combination of atomic force microscopy (AFM) and near field scanning optical microscopy has been u...
AbstractEvidence is accumulating that in cell membranes microdomains exist, also referred to as raft...
Phospholipid ternary systems are useful model systems for understanding lipid-lipid interactions and...
金沢大学フロンティアサイエンス機構Cholesterols play key roles in controlling molecular fluidity in a biological membr...
AbstractCholesterol is involved in endocytosis, exocytosis, and the assembly of sphingolipid/cholest...
Cholesterol (Chol) plays the essential function of regulating the physical properties of the cell me...
AbstractDirect visualization of the fluid-phase/ordered-phase domain structure in mica-supported bil...
The behaviour of biological components in cellular membranes is vital to the function of cells howev...
AbstractWe devise a methodology to fixate and image dynamic fluid domain patterns of giant unilamell...
AbstractIntrinsic heterogeneities, represented as domain formations in biological membranes, are imp...
The formation of domains in supported lipid membranes has been studied extensively as a model for th...
Much of lipid raft properties can be inferred from phase behavior of multicomponent lipid membranes....
Lipids are integral components of all biological membranes. Understanding the physical and chemical ...
Lipid model membranes are important tools in the study of biophysical processes such as lipid self-a...
AbstractCholesterol is believed to be an important component in compositionally distinct lipid domai...
A combination of atomic force microscopy (AFM) and near field scanning optical microscopy has been u...
AbstractEvidence is accumulating that in cell membranes microdomains exist, also referred to as raft...
Phospholipid ternary systems are useful model systems for understanding lipid-lipid interactions and...
金沢大学フロンティアサイエンス機構Cholesterols play key roles in controlling molecular fluidity in a biological membr...
AbstractCholesterol is involved in endocytosis, exocytosis, and the assembly of sphingolipid/cholest...
Cholesterol (Chol) plays the essential function of regulating the physical properties of the cell me...
AbstractDirect visualization of the fluid-phase/ordered-phase domain structure in mica-supported bil...
The behaviour of biological components in cellular membranes is vital to the function of cells howev...
AbstractWe devise a methodology to fixate and image dynamic fluid domain patterns of giant unilamell...