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Biology subjects

Dahl Pinholt, H.

Publications and source records attributed to Dahl Pinholt, H..

3 recordsLinked to original sources

Cohesin bridging as a physical principle of enhancer-promoter communication

Central to genome function, enhancers are non-coding sequences that can control transcription from promoters hundreds of kilobases away. Yet the physical basis of this long-range communication remains unclear. A prevalent view is that enhancers activate promoters when the two elements come into spatial proximity through the 3D folding of chromatin. However, activation by spatial proximity alone has struggled to explain several core features of enhancer function. Here, we propose that the molecular motor cohesin transmits long-range enhancer action by forming bridges between enhancers and promoters during loop extrusion. In this view, rare and transient bridges carry regulatory communication, rather than mere spatial proximity. We develop a quantitative model that predicts transcriptional output from cohesin-bridging dynamics and validate it by engineering cells in which strategically positioned CTCF sites rewire loop extrusion trajectories. The model explains how enhancer action scales with genomic distance, and how it can be either facilitated or insulated by CTCF sites across two orders of magnitude-behaviors incompatible with proximity-based models. Finally, our framework reveals that CTCF sites can block enhancers bidirectionally, by either blocking or releasing cohesin loops, resolving longstanding paradoxes between their effects on transcriptional regulation and genome folding. Together, our results establish cohesin bridging as a mode of enhancer-promoter communication that can be modulated by genomic context to achieve selective and tunable transcriptional control over long genomic distances.

molecular biology↗

Smc5/6 association with microtubules controls dynamic pericentromeric chromatin folding

Centromeres and pericentromeres are specialized chromatin regions essential for accurate chromosome segregation. Smc5/6, which localizes at pericentromeres, can bind microtubules, yet its role in chromatin folding is unclear. Here, we investigate the functional relevance of Smc5/6- microtubule binding in yeast, by targeting two lysines (K624, K631) within the Smc5 hinge domain known to mediate this binding. Using high-temporal-resolution imaging, polymer modelling, and in vitro approaches with a separation-of-function mutant smc5-2KE, we demonstrate that microtubules binding by Smc5/6 constrains chromatin dynamics and promotes pericentromeric folding. The smc5-2KE mutant, combined with a hypomorphic kinetochore mutant (Mtw1-3xGFP), leads to spindle and cytokinesis defects and triggers the spindle checkpoint. Furthermore, homologous recombination repair in pericentromeres is compromised. Overall, our findings indicate that Smc5/6 - microtubules association safeguard pericentromeric architecture and genome stability during mitosis.

cell biology↗

Heterogeneous and Surface-Catalyzed Amyloid Aggregation Monitored by Spatially Resolved Fluorescence and Single Molecule Microscopy

Amyloid aggregation is associated with many diseases and may also occur in therapeutic protein formulations. Addition of co-solutes is a key strategy to modulate the stability of proteins in pharmaceutical formulations and select inhibitors for drug design in the context of diseases. However, the heterogeneous nature of this multi-component system in terms of structures and mechanisms poses a number of challenges for the analysis of the chemical reaction. Combining a spatially resolved fluorescence approach with single molecule microscopy and machine learning approaches, we disentangle the different contributions from multiple species within a single aggregation experiment. Moreover, we link the presence of interfaces to the degree of heterogeneity of the aggregation kinetics and retrieve the rate constants and underlying mechanisms for single aggregation events, providing a general tool for a comprehensive analysis of self-assembly reactions. Table of Contents O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=200 SRC="FIGDIR/small/510935v2_ufig1.gif" ALT="Figure 1"> View larger version (58K): org.highwire.dtl.DTLVardef@c678eaorg.highwire.dtl.DTLVardef@2c6decorg.highwire.dtl.DTLVardef@e4c2e4org.highwire.dtl.DTLVardef@b741aa_HPS_FORMAT_FIGEXP M_FIG C_FIG

biophysics↗