Observing membrane protein diffusion at subnanometer resolution

被引:60
作者
Müller, DJ
Engel, A
Matthey, U
Meier, T
Dimroth, P
Suda, K
机构
[1] Max Planck Inst Mol Cell Biol & Genet, Ctr Biotechnol, D-01307 Dresden, Germany
[2] ETH, Inst Microbiol, CH-8092 Zurich, Switzerland
[3] M E Muller Inst, Biozentrum, CH-4056 Basel, Switzerland
[4] Tech Univ Dresden, BIOTEC, D-01062 Dresden, Germany
关键词
atomic-force microscopy; ATP synthase; diffusion; single molecule dynamics; supported membrane;
D O I
10.1016/S0022-2836(03)00206-7
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Single sodium-driven rotors from a bacterial ATP synthase were embedded into a lipid membrane and observed in buffer solution at sub-nanometer resolution using atomic force microscopy (AFM). Time-lapse AFM topographs show the movement of single proteins within the membrane. Subsequent analysis of their individual trajectories, in consideration of the environment surrounding the moving protein, allow principal modes of the protein motion to be distinguished, Within one trajectory, individual proteins can undergo movements assigned to free as well as to obstacled diffusion. The diffusion constants of these two modes of motion are considerably different. Without the structural information about the membrane environment restricting the moving proteins, it would not be possible to reveal insight into these mechanisms. The high-resolution AFM topographs suggest that, in future studies, such data revealed under various physiological conditions will provide novel insights into molecular mechanisms that drive membrane protein assembly and supply excellent boundary conditions to model protein-protein arrangements. (C) 2003 Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:925 / 930
页数:6
相关论文
共 32 条
[1]  
*AM ASS ADV SCI, 1999, SCIENCE, V283, P1593
[2]   A high-speed atomic force microscope for studying biological macromolecules [J].
Ando, T ;
Kodera, N ;
Takai, E ;
Maruyama, D ;
Saito, K ;
Toda, A .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2001, 98 (22) :12468-12472
[3]   ATOMIC FORCE MICROSCOPE [J].
BINNIG, G ;
QUATE, CF ;
GERBER, C .
PHYSICAL REVIEW LETTERS, 1986, 56 (09) :930-933
[4]   Functions of lipid rafts in biological membranes [J].
Brown, DA ;
London, E .
ANNUAL REVIEW OF CELL AND DEVELOPMENTAL BIOLOGY, 1998, 14 :111-136
[5]   Mapping the mechanical pulse of single cardiomyocytes with the atomic force microscope [J].
Domke, J ;
Parak, WJ ;
George, M ;
Gaub, HE ;
Radmacher, M .
EUROPEAN BIOPHYSICS JOURNAL WITH BIOPHYSICS LETTERS, 1999, 28 (03) :179-186
[6]   IMAGING CRYSTALS, POLYMERS, AND PROCESSES IN WATER WITH THE ATOMIC FORCE MICROSCOPE [J].
DRAKE, B ;
PRATER, CB ;
WEISENHORN, AL ;
GOULD, SAC ;
ALBRECHT, TR ;
QUATE, CF ;
CANNELL, DS ;
HANSMA, HG ;
HANSMA, PK .
SCIENCE, 1989, 243 (4898) :1586-1589
[7]   Observing single biomolecules at work with the atomic force microscope [J].
Engel, A ;
Müller, DJ .
NATURE STRUCTURAL BIOLOGY, 2000, 7 (09) :715-718
[8]   MEMBRANE INSERTION AND LATERAL DIFFUSION OF FLUORESCENCE-LABELED CYTOCHROME-C-OXIDASE SUBUNIT-IV SIGNAL PEPTIDE IN CHARGED AND UNCHARGED PHOSPHOLIPID-BILAYERS [J].
FREY, S ;
TAMM, LK .
BIOCHEMICAL JOURNAL, 1990, 272 (03) :713-719
[9]   Phospholipids undergo hop diffusion in compartmentalized cell membrane [J].
Fujiwara, T ;
Ritchie, K ;
Murakoshi, H ;
Jacobson, K ;
Kusumi, A .
JOURNAL OF CELL BIOLOGY, 2002, 157 (06) :1071-1081
[10]   Biomolecular imaging using atomic force microscopy [J].
Mueller, Daniel J. ;
Anderson, Kurt .
TRENDS IN BIOTECHNOLOGY, 2002, 20 (08) :S45-S49