From the earliest work on regular arrays in negative stain, electron crystallography has contributed greatly to our understanding of the structure and function of biological macromolecules. The development of electron cryo-microscopy (cryo-EM) then lead to the first groundbreaking atomic models of the membrane proteins bacteriorhodopsin and light harvesting complex II within lipid bilayers. Key contributions towards cryo-EM and electron crystallography methods included specimen preparation and vitrification, liquid-helium cooling, data collection, and image processing. These methods are now applied almost routinely to both membrane and soluble proteins. Here we outline the advances and the breakthroughs that paved the way towards high-resol...
Membrane proteins play important roles for living cells. Structural studies of membrane proteins pro...
The structural investigation of biological macromolecules is indispensable in understanding the mole...
Electron crystallography of two-dimensional (2D) crystals determines the structure of membrane prote...
Electron crystallography is used to study membrane proteins in the form of planar, two-dimensional (...
Electron crystallography is used to study membrane proteins in the form of planar, two-dimensional (...
Electron crystallography is used to study membrane proteins in the form of planar, two-dimensional (...
Electron crystallography determines the structure of membrane embedded proteins in the two-dimension...
Electron crystallography is a powerful technique for studying the structure and function of membrane...
Electron crystallography is a powerful technique for studying the structure and function of membrane...
Dramatic improvements in experimental methods and computational techniques have revolutionized three...
Electron crystallography is a powerful technique for the study of membrane protein structure and fun...
Electron crystallography studies the structure of two-dimensional crystals of membrane proteins or o...
The structural investigation of biological macromolecules is indispensable in understanding the mole...
For the foreseeable future, progress in determining high-resolution structures of membrane proteins ...
Electron crystallography of two-dimensional (2D) crystals determines the structure of membrane prote...
Membrane proteins play important roles for living cells. Structural studies of membrane proteins pro...
The structural investigation of biological macromolecules is indispensable in understanding the mole...
Electron crystallography of two-dimensional (2D) crystals determines the structure of membrane prote...
Electron crystallography is used to study membrane proteins in the form of planar, two-dimensional (...
Electron crystallography is used to study membrane proteins in the form of planar, two-dimensional (...
Electron crystallography is used to study membrane proteins in the form of planar, two-dimensional (...
Electron crystallography determines the structure of membrane embedded proteins in the two-dimension...
Electron crystallography is a powerful technique for studying the structure and function of membrane...
Electron crystallography is a powerful technique for studying the structure and function of membrane...
Dramatic improvements in experimental methods and computational techniques have revolutionized three...
Electron crystallography is a powerful technique for the study of membrane protein structure and fun...
Electron crystallography studies the structure of two-dimensional crystals of membrane proteins or o...
The structural investigation of biological macromolecules is indispensable in understanding the mole...
For the foreseeable future, progress in determining high-resolution structures of membrane proteins ...
Electron crystallography of two-dimensional (2D) crystals determines the structure of membrane prote...
Membrane proteins play important roles for living cells. Structural studies of membrane proteins pro...
The structural investigation of biological macromolecules is indispensable in understanding the mole...
Electron crystallography of two-dimensional (2D) crystals determines the structure of membrane prote...