Ralf Bundschuh
Biochemistry, Genetics and Molecular Biology · The Ohio State University
Publications
274
Citations
4,869
Est. group size
~15
Recurring co-author estimate
Active years
36
Publishing since 1991
Ralf Bundschuh develops computational and biophysical models to understand how RNA and DNA molecules interact with proteins and fold into three-dimensional structures, including how genetic variation affects these interactions. His work combines quantitative modeling, bioinformatics, and nanotechnology-based experiments (such as DNA force spectrometers) to study things like chromatin packaging, RNA-protein binding, and nucleosome structure.
Publication output has fluctuated over the last decade, with a peak in 2019 and 2025, a dip in 2024, and an average of about 10 papers per year over the last 5 years, suggesting variable but ongoing activity rather than steady growth or decline.
Generated by claude-sonnet-5 from public bibliographic data · Jul 20, 2026
- BPS2026 – Computational modeling of RNA-protein binding interactions under an external force
Biophysical Journal · 2026
- Computational modeling of RNA-protein binding interactions under an external force
arXiv (Cornell University) · 2026
- BPS2025 - Revealing the energetics of chromatin compaction with DNA nanotechnology
Biophysical Journal · 2025
- BPS2025 - Revealing the energetics of chromatin compaction with DNA nanotechnology
Biophysical Journal · 2025
- Free energy spectroscopy reveals the mechanistic landscape of chromatin compaction
bioRxiv (Cold Spring Harbor Laboratory) · 2025
- The structural effects of indel polymorphisms outside the binding site on RNA-protein interactions are shaped by selection
PLoS Computational Biology · 2025
- High-Force Application by a Nanoscale DNA Force Spectrometer
ACS Nano · 2022
- RBPBind: Quantitative Prediction of Protein-RNA Interactions
Journal of Molecular Biology · 2022
- RBPamp: Quantitative Modeling of Protein-RNA Interactions <i>in vitro</i> Predicts <i>in vivo</i> Binding
bioRxiv (Cold Spring Harbor Laboratory) · 2022
- dsRBPBind: modeling the effect of RNA secondary structure on double-stranded RNA–protein binding
Bioinformatics · 2021
- A quantitative model for a nanoscale switch accurately predicts thermal actuation behavior
Nanoscale · 2021
- A quantitative model for a nanoscale switch accurately predicts thermal\n actuation behavior
arXiv (Cornell University) · 2021
- Single nucleotide polymorphisms affect RNA-protein interactions at a distance through modulation of RNA secondary structures
PLoS Computational Biology · 2020
- Inhibition of cytoplasmic cap methylation identifies 5′ TOP mRNAs as recapping targets and reveals recapping sites downstream of native 5′ ends
Nucleic Acids Research · 2020
- A quantitative model of temperature actuated DNA origami nanocaliper constructs
Bulletin of the American Physical Society · 2020
- Figshare×13
- Nucleic Acids Research×8
- bioRxiv (Cold Spring Harbor Laboratory)×8
- Biophysical Journal×6
- arXiv (Cornell University)×6
- Venkat Gopalan
Biochemistry, Genetics and Molecular Biology · The Ohio State University
- Michael Ibba
Biochemistry, Genetics and Molecular Biology · The Ohio State University
- Kurt Fredrick
Biochemistry, Genetics and Molecular Biology · The Ohio State University
- Murphy Angelo
Biochemistry, Genetics and Molecular Biology · Indiana University
- Juan Xie
Biochemistry, Genetics and Molecular Biology · The Ohio State University
This profile was generated automatically from public scholarly data (OpenAlex). Group size and activity levels are estimates derived from co-authorship patterns.
Last updated Jul 19, 2026.
Claim or correct this profile