Related Experiment Video
Updated: May 14, 2026

Tools to Study the Role of Architectural Protein HMGB1 in the Processing of Helix Distorting, Site-specific DNA Interstrand Crosslinks
Published on: November 10, 2016
Counteraction of HMGB1 at ss-dsDNA junctions maintains liquidity of protamine-DNA co-condensates
Vikhyaat Ahlawat1,2, Divya Kota1, Huan-Xiang Zhou1,2
1Department of Chemistry, University of Illinois Chicago, Chicago IL 60607, USA.
Abstract:
In the sperm nucleus, protamine replaces histones to mediate extreme DNA compaction. The histone-to-protamine transition involves the occurrence of double-strand breaks, and is facilitated by transition proteins including those containing high-mobility-group (HMG) boxes. Here we used optical tweezers and microscopy to study the actions of HMGB1 and protamine on DNA. Confocal scans of GFP-HMGB1 on overstretched λ-DNA show 2-3 foci that spread on the DNA upon retraction. Spreading of foci coincides with reannealing of ssDNA tracks, confirming their localization at ss-dsDNA junctions. Whereas the force-extension curves of protamine-bound λ-DNA show tangles that withstand forces > 60 pN, premixing protamine with HMGB1 produces only bends and bridges (~ 20 pN). The counteraction of HMGB1 involves its acidic C-terminal tail, as HMGB1-ΔC fails to prevent tangle formation. In line with these single-molecule results, brightfield and confocal imaging shows that HMGB1 converts protamine-dsDNA aggregates into liquid droplets whereas HMGB1-ΔC fails to do so. Together, these observations support our hypothesis that chromatin-associated proteins like HMGB1 help maintain early protamine-mediated DNA condensates in a liquid state, enabling the recruitment of the repair machinery to restore the duplex structure.
Related Concept Videos
Single-Strand DNA Binding Proteins
Homologous Recombination
Restarting Stalled Replication Forks
Fixing Double-strand Breaks

