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Автор Kusumi, Akihiro
Автор Nakada, Chieko
Автор Ritchie, Ken
Автор Murase, Kotono
Автор Suzuki, Kenichi
Автор Murakoshi, Hideji
Автор Kasai, Rinshi S.
Автор Kondo, Junko
Автор Fujiwara, Takahiro
Дата выпуска 2005
dc.description ▪ Abstract  Recent advancements in single-molecule tracking methods with nanometer-level precision now allow researchers to observe the movement, recruitment, and activation of single molecules in the plasma membrane in living cells. In particular, on the basis of the observations by high-speed single-particle tracking at a frame rate of 40,000 frames s<sup>−1</sup>, the partitioning of the fluid plasma membrane into submicron compartments throughout the cell membrane and the hop diffusion of virtually all the molecules have been proposed. This could explain why the diffusion coefficients in the plasma membrane are considerably smaller than those in artificial membranes, and why the diffusion coefficient is reduced upon molecular complex formation (oligomerization-induced trapping). In this review, we first describe the high-speed single-molecule tracking methods, and then we critically review a new model of a partitioned fluid plasma membrane and the involvement of the actin-based membrane-skeleton “fences” and anchored-transmembrane protein “pickets” in the formation of compartment boundaries.
Формат application.pdf
Издатель Annual Reviews
Копирайт Annual Reviews
Название PARADIGM SHIFT OF THE PLASMA MEMBRANE CONCEPT FROM THE TWO-DIMENSIONAL CONTINUUM FLUID TO THE PARTITIONED FLUID: High-Speed Single-Molecule Tracking of Membrane Molecules
DOI 10.1146/annurev.biophys.34.040204.144637
Print ISSN 1056-8700
Журнал Annual Review of Biophysics and Biomolecular Structure
Том 34
Первая страница 351
Последняя страница 378
Аффилиация Kusumi, Akihiro; Kusumi Membrane Organizer Project, Exploratory Research for Advanced Technology Organization (ERATO/SORST-JST), Department of Biological Science and Institute for Advanced Research, Nagoya University, Nagoya 464-8602, Japan; email: akusumi@bio.nagoya-u.ac.jp

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