Kyoto University · Biochemistry, Genetics and Molecular Biology
Professor Akihiro Kusumi's research lab specializes in the dynamic organization and functional mechanisms of the plasma membrane at the nanoscale. Using advanced single-molecule imaging and spectroscopic techniques, the lab investigates membrane heterogeneity, lipid rafts, and the role of cholesterol in organizing membrane domains that regulate signal transduction and molecular diffusion. Their work challenges and refines the classical fluid-mosaic model by revealing the time- and space-dependent nanostructures underlying plasma membrane function. The lab emphasizes quantitative, physics-based approaches to understand how membrane organization governs cellular signaling and membrane protein dynamics in living cells.
Figures are computed from collected data and may differ slightly.
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(1), the partitioning of the fluid plasma membrane into submicron compartments throughout the cell membrane and the hop diffusion of virtually all the molecu
The recent rapid accumulation of knowledge on the dynamics and structure of the plasma membrane has prompted major modifications of the textbook fluid-mosaic model. However, because the new data have been obtained in a variety of research contexts using various biological paradigms, the impact of the critical conceptual modifications on biomedical research and development has been limited. In this review, we try to synthesize our current biological, chemical, and physical knowledge about the pla
We have evaluated the sizes and lifetimes of rafts in the plasma membrane from the existing literature, with a special attention paid to their intrinsically broad distributions and the limited time and space scales that are covered by the observation methods used for these studies. Distinguishing the rafts in the steady state (reserve rafts) from those after stimulation or unintentional crosslinking of raft molecules (stabilized receptor-cluster rafts) is critically important. In resting cells,
Single-molecule tracking and fluorescence correlation spectroscopy (FCS) applied to the plasma membrane in living cells have allowed a number of unprecedented observations, thus fostering a new basic understanding of molecular diffusion, interaction, and signal transduction in the plasma membrane. It is becoming clear that the plasma membrane is a heterogeneous entity, containing diverse structures on nano-meso-scales (2-200 nm) with a variety of lifetimes, where certain membrane molecules stay
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