Atomic force microscopy (AFM) was used to investigate the native plasma membrane of Xenopus laevis (X. laevis) oocyte purified by means of ultracentrifugation on sucrose gradient and subsequently adsorbed on mica leaves through a physisorption process. Reproducible AFM topography images were collected, analyzed, and compared. AFM images showed the presence of large single or double bilayer membrane sheets covered with protein complexes. The lateral dimension and height of protein complexes imaged in air showed a normal distribution centred on 15.4 +/- 0.4 nm (mean +/- SE; n = 59) and 3.9 +/- 0.2 nm (mean +/- SE; n = 57), respectively. A density of about 270 protein complexes per square micron was calculated. Less frequently, ordered nanomet...
Plasma membranes purified from spinach leaves by aqueous two-phase partitioning were examined by ato...
The function of bioenergetic membranes is strongly influenced by the spatial arrangement of their co...
Visualizing life on biomembranes by atomic force microscopy. Since its invention in 1986, the atomic...
This paper describes the use of Atomic Force Microscopy (AFM) to investigate the plasma membrane of ...
Xenopus laevis oocytes are an interesting model for the study of many developmental mechanisms becau...
We used atomic force microscopy (AFM) to characterize the plasma membrane of Xenopus laevis oocytes...
Intermittent contact mode atomic force microscopy (AFM) was used to visualize the native plasma memb...
Proteins are known to form functional clusters in plasma membranes. In order to identify individual ...
Atomic force microscopy (AFM) is a unique tool for imaging membrane proteins in near-native environm...
In this study we report an atomic force microscopy (AFM) investigation of the actin cortical cytosk...
Studies of cell membrane structure by atomic force microscopy (AFM) have been limited because of the...
Fundamental biological processes such as cell-cell communication, signal transduction, molecular tra...
ABSTRACT. Two well-characterized regular membrane protein arrays are imaged in aqueous solutions wit...
Proceedings of the NATO Advanced Research Workshop: Scanning Probe Microscopies and Molecular Mater...
Atomic force microscopy (AFM) proved to be able to obtain high‐resolution three‐dimensional images o...
Plasma membranes purified from spinach leaves by aqueous two-phase partitioning were examined by ato...
The function of bioenergetic membranes is strongly influenced by the spatial arrangement of their co...
Visualizing life on biomembranes by atomic force microscopy. Since its invention in 1986, the atomic...
This paper describes the use of Atomic Force Microscopy (AFM) to investigate the plasma membrane of ...
Xenopus laevis oocytes are an interesting model for the study of many developmental mechanisms becau...
We used atomic force microscopy (AFM) to characterize the plasma membrane of Xenopus laevis oocytes...
Intermittent contact mode atomic force microscopy (AFM) was used to visualize the native plasma memb...
Proteins are known to form functional clusters in plasma membranes. In order to identify individual ...
Atomic force microscopy (AFM) is a unique tool for imaging membrane proteins in near-native environm...
In this study we report an atomic force microscopy (AFM) investigation of the actin cortical cytosk...
Studies of cell membrane structure by atomic force microscopy (AFM) have been limited because of the...
Fundamental biological processes such as cell-cell communication, signal transduction, molecular tra...
ABSTRACT. Two well-characterized regular membrane protein arrays are imaged in aqueous solutions wit...
Proceedings of the NATO Advanced Research Workshop: Scanning Probe Microscopies and Molecular Mater...
Atomic force microscopy (AFM) proved to be able to obtain high‐resolution three‐dimensional images o...
Plasma membranes purified from spinach leaves by aqueous two-phase partitioning were examined by ato...
The function of bioenergetic membranes is strongly influenced by the spatial arrangement of their co...
Visualizing life on biomembranes by atomic force microscopy. Since its invention in 1986, the atomic...