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Cremer, C.

Publications and source records attributed to Cremer, C..

3 recordsLinked to original sources

Space-time dynamics of genome replication studied with super-resolved microscopy

Genome replication requires duplication of the complete set of DNA sequences together with nucleosomes and epigenetic signatures. Notwithstanding profound knowledge on mechanistic details of DNA replication, major problems of genome replication have remained unresolved. In this perspective article, we consider the accessibility of replication machines to all DNA sequences in due course, the maintenance of functionally important positional and structural features of chromatid domains during replication, and the rapid transition of CTs into prophase chromosomes with two chromatids. We illustrate this problem with EdU pulse-labeling (10 min) and chase experiments (80 min) performed with mouse myeloblast cells. Following light optical serial sectioning of nuclei with 3D structured illumination microscopy (SIM), seven DNA intensity classes were distinguished as proxies for increasing DNA compaction. In nuclei of cells fixed immediately after the pulse-label, we observed a relative under-representation of EdU-labeled DNA in low DNA density classes, representing the active nuclear compartment (ANC), and an over-representation in high density classes representing the inactive nuclear compartment (INC). Cells fixed after the chase revealed an even more pronounced shift to high DNA intensity classes. This finding contrasts with previous studies of the transcriptional topography demonstrating an under-representation of epigenetic signatures for active chromatin and RNAPII in high DNA intensity classes and their over-representation in low density classes. We discuss these findings in the light of current models viewing CDs either as structural chromatin frameworks or as phase-separated droplets, as well as methodological limitations that currently prevent an integration of this contrasting evidence for the spatial nuclear topography of replication and transcription into a common framework of the dynamic nuclear architecture.

cell biology↗

Ring Array Illumination Microscopy: Combination of Super-Resolution with Large Field of View Imaging and long Working Distances

Here we present a novel fluorescence microscopy concept which enables a direct integration of Super-Resolution Microscopy (SRM) approaches (SIM/Nanosizing, STED, SMLM, MINFLUX, SIMFLUX) into microscopy systems with working distances (WD) up to the multicentimeter range while still allowing nanometer scale resolution at selected sites. This becomes possible by a "synthetic aperture" illumination mode with multiple, constructively interfering excitation beams positioned in a "Ring-Array" arrangement around a beam free interior zone containing instrumentation involved in complementary imaging modes. The feasibility of such a direct correlative microscopy method is validated by extensive numerical simulations; on the basis of these calculations, experimental implementation options are discussed. Such "Ring Array" illumination modes may be useful for various correlative microscopy methods, such as a direct combination of correlative light and electron microscopy in the same device (dCLEM); or a direct combination of low NA/large field-of-view widefield microscopy and super-resolution of selected sites in the same device (direct Correlative Opical Microscopy/dCOLM). Ring-Array supported correlative microscopy modes will open novel imaging perspectives in a variety of disciplines, from material sciences to biomedical applications.

biophysics↗

True-to-scale DNA-density maps correlate with major accessibility differences between active and inactive chromatin

Chromatin compaction differences may have a strong impact on accessibility of individual macromolecules and macromolecular assemblies to their DNA target sites. Estimates based on fluorescence microscopy with conventional resolution, however, suggested only modest compaction differences ([~]2-10x) between active and inactive nuclear compartments (ANC and INC). Here, we present maps of nuclear landscapes with true-to-scale DNA-densities, ranging from <5 Mbp/{micro}m3 to >300 Mbp/{micro}m3. Maps were generated from individual human and mouse cell nuclei with single-molecule localization microscopy at [~]20 nm lateral and [~]100 nm axial resolution and supplemented by electron spectroscopic imaging. Microinjection of fluorescent nanobeads with sizes corresponding to macromolecular assemblies for transcription and replication into nuclei of living cells, demonstrated their localization and movements within the ANC and exclusion from the INC.

cell biology↗