4.6 Review

The 2018 correlative microscopy techniques roadmap

Journal

JOURNAL OF PHYSICS D-APPLIED PHYSICS
Volume 51, Issue 44, Pages -

Publisher

IOP PUBLISHING LTD
DOI: 10.1088/1361-6463/aad055

Keywords

correlative microscopy; fluorescence microscopy; x-ray microscopy; electron microscopy; magnetic resonance imaging; atomic force microscopy; super-resolution microscopy

Funding

  1. German Science Foundation (DFG) [SFB 755, SFB 937]
  2. Volkswagen foundation within the Niedersachsen Israel framework [MWK-VWZN2722]
  3. BMBF [05K16MG2]
  4. MRC [MR/K01577X/1, MC_UU_12010/9, MC_UU_00008/9] Funding Source: UKRI

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Developments in microscopy have been instrumental to progress in the life sciences, and many new techniques have been introduced and led to new discoveries throughout the last century. A wide and diverse range of methodologies is now available, including electron microscopy, atomic force microscopy, magnetic resonance imaging, small-angle x-ray scattering and multiple super-resolution fluorescence techniques, and each of these methods provides valuable read-outs to meet the demands set by the samples under study. Yet, the investigation of cell development requires a multi-parametric approach to address both the structure and spatio-temporal organization of organelles, and also the transduction of chemical signals and forces involved in cell-cell interactions. Although the microscopy technologies for observing each of these characteristics are well developed, none of them can offer read-out of all characteristics simultaneously, which limits the information content of a measurement. For example, while electron microscopy is able to disclose the structural layout of cells and the macromolecular arrangement of proteins, it cannot directly follow dynamics in living cells. The latter can be achieved with fluorescence microscopy which, however, requires labelling and lacks spatial resolution. A remedy is to combine and correlate different readouts from the same specimen, which opens new avenues to understand structure-function relations in biomedical research. At the same time, such correlative approaches pose new challenges concerning sample preparation, instrument stability, region of interest retrieval, and data analysis. Because the field of correlative microscopy is relatively young, the capabilities of the various approaches have yet to be fully explored, and uncertainties remain when considering the best choice of strategy and workflow for the correlative experiment. With this in mind, the Journal of Physics D: Applied Physics presents a special roadmap on the correlative microscopy techniques, giving a comprehensive overview from various leading scientists in this field, via a collection of multiple short viewpoints.

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