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Mochrie, S. G. J.

Publications and source records attributed to Mochrie, S. G. J..

2 recordsLinked to original sources

Cohesin distribution alone predicts chromatin organization in yeast via conserved-current loop extrusion.

Inhomogeneous patterns of enhanced chromatin-chromatin contacts within 10-100 kb-sized regions of the genome are a generic feature of chromatin spatial organization. These features, termed topologically associating domains (TADs), have led to the loop extrusion factor (LEF) model, where TADs arise from loop extrusion by cohesin complexes. Currently, our ability to model TADs relies on the observation that in vertebrates TAD boundaries are correlated with DNA sequences that bind CTCF, which therefore is inferred to block loop extrusion. However, although TADs feature prominently in their Hi-C maps, non-vertebrate eukaryotes either do not express CTCF or show few TAD boundaries that correlate with CTCF sites. In all of these organisms, the counterparts of CTCF remain unknown, frustrating comparisons between Hi-C data and simulations. To extend the LEF model across the tree of life, here, we propose the conserved-current loop extrusion (CCLE) model that interprets loop-extruding cohesin as a nearly-conserved probability current. From cohesin ChIP-seq data alone, we thus derive a position-dependent loop extrusion rate, allowing for a modified paradigm for loop extrusion, that goes beyond solely discrete, localized barriers to also include loop extrusion rates that vary more continuously across the genome. To demonstrate its utility in organisms lacking CTCF, we applied the CCLE model to the Hi-C maps of interphase Schizosaccharomyces pombe, as well as to those of meiotic and mitotic Saccharomyces cerevisiae. In all cases, even though their Hi-C maps appear quite different, the model accurately predicts the TAD-scale Hi-C maps. It follows that loop extrusion by cohesin is indeed the primary mechanism underlying TADs in these systems. CCLE allows us to obtain loop extrusion parameters such as the LEF density and processivity, which compare well to independent estimates. The model also provides new insights into in vivo LEF composition and function.

biophysics↗

Imaging proteins sensitive to direct fusions using transient peptide-peptide interactions

Fluorescence microscopy enables specific visualization of proteins in living cells and has played an important role in our understanding of protein subcellular location and function. Some proteins, however, show altered localization and/or function when labeled using direct fusions to fluorescent proteins, making them difficult to study in live cells. Additionally, the resolution of fluorescence microscopy is limited to [~]200 nm, which is two orders of magnitude larger than the size of most proteins. To circumvent these challenges, we previously developed LIVE-PAINT, a live-cell super-resolution approach that takes advantage of short interacting peptides to transiently bind a fluorescent protein to the protein-of-interest. Here, we successfully use LIVE-PAINT to image yeast membrane proteins that do not tolerate the direct fusion of a fluorescent protein by using peptide tags as short as 5-residues. We also demonstrate that it is possible to resolve multiple proteins at the nanoscale concurrently using orthogonal peptide interaction pairs. FOR TABLE OF CONTENTS ONLY O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=116 SRC="FIGDIR/small/547312v1_ufig1.gif" ALT="Figure 1"> View larger version (29K): org.highwire.dtl.DTLVardef@ce1d9borg.highwire.dtl.DTLVardef@1f9b5c8org.highwire.dtl.DTLVardef@10d92ccorg.highwire.dtl.DTLVardef@20ad5d_HPS_FORMAT_FIGEXP M_FIG C_FIG

biophysics↗