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Updated: Mar 29, 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
Molecular Recognition of Platinated DNA from Chromosomal HMGB1
Trung Hai Nguyen1,2,3, Giulia Rossetti1,2,3,4,5,6, Fabio Arnesano7
1Computational Biophysics, German Research School for Simulation Sciences (joint venture of RWTH Aachen University and Forschungszentrum Jülich, Germany) , D-52425 Jülich, Germany.
Abstract:
Cisplatin cures testicular and ovarian cancers with unprecedented potency. It induces its beneficial activity by covalently binding to DNA. Repair enzymes, which remove the platinated lesions from DNA, cause drug resistance. Chromosomal High Mobility Group Box proteins (HMGB) may interfere with this process by binding to platinated DNA. Using 8 μs multiple-walker well-tempered metadynamics simulations, here, we investigated the structural and the energetic determinants of one of the HMGB proteins (HMGB1A) in complex with the platinated oligonucleotide [Pt(NH3)2](2+)-d(CCUCTCTG*G*ACCTTCC)-d(GGAGAGACCTGGAAGG) (*G are platinated guanines), for which experimental structural information is available. The calculated affinity is in good agreement with experiment. The process is predicted to be enthalpy-driven, as found for other protein/DNA complexes. The Lys7 residue, whose side-chain was not resolved in the X-ray structure, is found to interact with the C4 5'-phosphate and this interaction emerges as a key facet for the molecular recognition process. In addition, our calculations provide a molecular basis for the experimentally measured decreased affinity of HMGB1A for platinated DNA, as a consequence of Cys22-Cys44 S-S bridge formation (such an oxidation cannot take place in some members of this protein family present in the testis, where the drug is particularly effective). This decrease is likely to be caused by a small yet significant rearrangement of helices H1 and H2 with consequent alteration of the Phe37 juxtaposition.
Insights
High Mobility Group Box 1A (HMGB1A) protein interacts with cisplatin-damaged DNA, influencing cancer drug resistance. Simulations reveal key interactions and structural changes affecting HMGB1A
Area of Science:
- Biochemistry
- Molecular Biology
- Computational Chemistry
Background:
- Cisplatin is a potent chemotherapy drug for testicular and ovarian cancers.
- Drug resistance to cisplatin often arises from DNA repair mechanisms.
- High Mobility Group Box (HMGB) proteins may modulate cisplatin efficacy by binding to damaged DNA.
Purpose of the Study:
- To investigate the structural and energetic basis of HMGB1A binding to cisplatin-platinated DNA.
- To understand the molecular mechanisms underlying HMGB protein's role in cisplatin resistance.
Main Methods:
- Utilized 8 μs multiple-walker well-tempered metadynamics simulations.
- Focused on the complex of HMGB1A with a specific platinated oligonucleotide.
- Integrated computational findings with available experimental structural data.
Main Results:
- Simulations accurately predicted the binding affinity of HMGB1A to platinated DNA.
- Identified Lys7 residue interaction with the 5'-phosphate as crucial for molecular recognition.
- Explained reduced HMGB1A affinity due to Cys22-Cys44 S-S bridge formation, impacting drug resistance.
Conclusions:
- HMGB1A binding to cisplatin-damaged DNA is an enthalpy-driven process.
- Specific residue interactions and structural rearrangements in HMGB1A dictate its affinity for platinated DNA.
- These findings offer molecular insights into cisplatin resistance mechanisms in cancer therapy.
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