The glycolipid GM1 reshapes asymmetric biomembranes and giant vesicles by curvature generation

被引:100
作者
Dasgupta, Raktim [1 ,2 ]
Miettinen, Markus S. [1 ]
Fricke, Nico [1 ,3 ]
Lipowsky, Reinhard [1 ]
Dimova, Rumiana [1 ]
机构
[1] Max Planck Inst Colloids & Interfaces, Dept Theory & Biosyst, D-14424 Potsdam, Germany
[2] Raja Ramanna Ctr Adv Technol, Laser Biomed Applicat Sect, Indore 452013, India
[3] Vanderbilt Univ, Dept Mol Physiol & Biophys, Nashville, TN 37232 USA
关键词
lipid nanotubes; gangliosides; giant vesicle; spontaneous curvature; membrane; MARTINI FORCE-FIELD; GANGLIOSIDE; PHASE; MEMBRANES; MODEL; ORGANIZATION; SEPARATION; CHEMISTRY; BEHAVIOR; DOMAINS;
D O I
10.1073/pnas.1722320115
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
070301 [无机化学]; 070403 [天体物理学]; 070507 [自然资源与国土空间规划学]; 090105 [作物生产系统与生态工程];
摘要
The ganglioside GM1 is present in neuronal membranes at elevated concentrations with an asymmetric spatial distribution. It is known to generate curvature and can be expected to strongly influence the neuron morphology. To elucidate these effects, we prepared giant vesicles with GM1 predominantly present in one leaflet of the membrane, mimicking the asymmetric GM1 distribution in neuronal membranes. Based on pulling inward and outward tubes, we developed a technique that allowed the direct measurement of themembrane spontaneous curvature. Using vesicle electroporation and fluorescence intensity analysis, we were able to quantify the GM1 asymmetry across the membrane and to subsequently estimate the local curvature generated by the molecule in the bilayer. Molecular-dynamics simulations confirm the experimentally determined dependence of the membrane spontaneous curvature as a function of GM1 asymmetry. GM1 plays a crucial role in connection with receptor proteins. Our results on curvature generation of GM1 point to an additional important role of this ganglioside, namely in shaping neuronal membranes.
引用
收藏
页码:5756 / 5761
页数:6
相关论文
共 56 条
[1]
Gromacs: High performance molecular simulations through multi-level parallelism from laptops to supercomputers [J].
Abraham, Mark James ;
Murtola, Teemu ;
Schulz, Roland ;
Páll, Szilárd ;
Smith, Jeremy C. ;
Hess, Berk ;
Lindah, Erik .
SoftwareX, 2015, 1-2 :19-25
[2]
Sterol structure determines the separation of phases and the curvature of the liquid-ordered phase in model membranes [J].
Bacia, K ;
Schwille, P ;
Kurzchalia, T .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2005, 102 (09) :3272-3277
[3]
Fluorescence correlation spectroscopy relates rafts in model and native membranes [J].
Bacia, K ;
Scherfeld, D ;
Kahya, N ;
Schwille, P .
BIOPHYSICAL JOURNAL, 2004, 87 (02) :1034-1043
[4]
Membrane Nanotubes Increase the Robustness of Giant Vesicles [J].
Bhatia, Tripta ;
Agudo-Canalejo, Jaime ;
Dimova, Rumiana ;
Lipowsky, Reinhard .
ACS NANO, 2018, 12 (05) :4478-4485
[5]
Curvature-driven membrane lipid and protein distribution [J].
Callan-Jones, Andrew ;
Bassereau, Patricia .
CURRENT OPINION IN SOLID STATE & MATERIALS SCIENCE, 2013, 17 (04) :143-150
[6]
Curvature-Driven Lipid Sorting in Biomembranes [J].
Callan-Jones, Andrew ;
Sorre, Benoit ;
Bassereau, Patricia .
COLD SPRING HARBOR PERSPECTIVES IN BIOLOGY, 2011, 3 (02) :1-14
[7]
Structural aspects of ganglioside-containing membranes [J].
Cantu, Laura ;
Corti, Mario ;
Brocca, Paola ;
Del Favero, Elena .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOMEMBRANES, 2009, 1788 (01) :202-208
[8]
Curvature Sensing by the Epsin N-Terminal Homology Domain Measured on Cylindrical Lipid Membrane Tethers [J].
Capraro, Benjamin R. ;
Yoon, Youngdae ;
Cho, Wonhwa ;
Baumgart, Tobias .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2010, 132 (04) :1200-+
[9]
Microfluidic sorting with blinking optical traps [J].
Dasgupta, R. ;
Verma, R. S. ;
Gupta, P. K. .
OPTICS LETTERS, 2012, 37 (10) :1739-1741
[10]
Inward and outward membrane tubes pulled from giant vesicles [J].
Dasgupta, Raktim ;
Dimova, Rumiana .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2014, 47 (28)