| Literature DB >> 33020915 |
Martin Turk1, Wolfgang Baumeister1.
Abstract
Structural biologists have traditionally approached cellular complexity in a reductionist manner in which the cellular molecular components are fractionated and purified before being studied individually. This 'divide and conquer' approach has been highly successful. However, awareness has grown in recent years that biological functions can rarely be attributed to individual macromolecules. Most cellular functions arise from their concerted action, and there is thus a need for methods enabling structural studies performed in situ, ideally in unperturbed cellular environments. Cryo-electron tomography (Cryo-ET) combines the power of 3D molecular-level imaging with the best structural preservation that is physically possible to achieve. Thus, it has a unique potential to reveal the supramolecular architecture or 'molecular sociology' of cells and to discover the unexpected. Here, we review state-of-the-art Cryo-ET workflows, provide examples of biological applications, and discuss what is needed to realize the full potential of Cryo-ET.Keywords: cellular structural biology; correlative light-electron microscopy; cryo-electron tomography; image processing workflow; sample preparation workflows; structural biology in situ
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Year: 2020 PMID: 33020915 DOI: 10.1002/1873-3468.13948
Source DB: PubMed Journal: FEBS Lett ISSN: 0014-5793 Impact factor: 4.124