Traditionally, macromolecular structure determination is performed ex situ, that is, with purified materials. But, there are strong incentives to develop approaches to study them in situ in their native functional context. In recent years, cryo-electron tomography (cryo-ET) has emerged as a powerful method for visualizing the molecular organization of unperturbed cellular landscapes with the potential to attain near-atomic resolution. Here, we review recent work on several macromolecular assemblies, demonstrating the power of in situ studies. We also highlight technical challenges and discuss ways to meet them
The long prevailing view of a cell as a membrane-bound reaction compartment filled with freely diffu...
Cryo-electron tomography (cryo-ET) enables the three-dimensional (3D) structural characterization of...
Cryo-electron tomography (CET) provides unprecedented views into the native cellular environment at ...
Structural analysis of macromolecular assemblies and their remodeling during physiological processes...
The architecture of protein assemblies and their remodeling during physiological processes is fundam...
Structural analysis of macromolecular assemblies in their physiological environment is a challenging...
Structural analysis of macromolecular assemblies in their physiological environment is a challenging...
Cryo-electron tomography is a powerful technique that can faithfully image the native cellular envir...
Electron cryotomography is a rapidly evolving method for imaging macromolecules directly within the ...
Understanding the function of cellular machines requires a thorough analysis of the structural eleme...
Cryo-electron tomography (cryo-ET) provides unprecedented insights into the molecular constituents o...
Atomic resolution structures have provided us with fascinating views and insights into the molecular...
Electron microscopy played a key role in establishing cell biology as a discipline, by producing fun...
Macromolecular machines carry out many cellular functions. Cryo-electron microscopy (cryo-EM) is eme...
Electron cryotomography (ECT) provides three-dimensional views of macromolecular complexes inside ce...
The long prevailing view of a cell as a membrane-bound reaction compartment filled with freely diffu...
Cryo-electron tomography (cryo-ET) enables the three-dimensional (3D) structural characterization of...
Cryo-electron tomography (CET) provides unprecedented views into the native cellular environment at ...
Structural analysis of macromolecular assemblies and their remodeling during physiological processes...
The architecture of protein assemblies and their remodeling during physiological processes is fundam...
Structural analysis of macromolecular assemblies in their physiological environment is a challenging...
Structural analysis of macromolecular assemblies in their physiological environment is a challenging...
Cryo-electron tomography is a powerful technique that can faithfully image the native cellular envir...
Electron cryotomography is a rapidly evolving method for imaging macromolecules directly within the ...
Understanding the function of cellular machines requires a thorough analysis of the structural eleme...
Cryo-electron tomography (cryo-ET) provides unprecedented insights into the molecular constituents o...
Atomic resolution structures have provided us with fascinating views and insights into the molecular...
Electron microscopy played a key role in establishing cell biology as a discipline, by producing fun...
Macromolecular machines carry out many cellular functions. Cryo-electron microscopy (cryo-EM) is eme...
Electron cryotomography (ECT) provides three-dimensional views of macromolecular complexes inside ce...
The long prevailing view of a cell as a membrane-bound reaction compartment filled with freely diffu...
Cryo-electron tomography (cryo-ET) enables the three-dimensional (3D) structural characterization of...
Cryo-electron tomography (CET) provides unprecedented views into the native cellular environment at ...