Terence R. Strick

6.4k total citations · 2 hit papers
68 papers, 4.9k citations indexed

About

Terence R. Strick is a scholar working on Molecular Biology, Atomic and Molecular Physics, and Optics and Biomedical Engineering. According to data from OpenAlex, Terence R. Strick has authored 68 papers receiving a total of 4.9k indexed citations (citations by other indexed papers that have themselves been cited), including 55 papers in Molecular Biology, 24 papers in Atomic and Molecular Physics, and Optics and 13 papers in Biomedical Engineering. Recurrent topics in Terence R. Strick's work include DNA and Nucleic Acid Chemistry (35 papers), Force Microscopy Techniques and Applications (23 papers) and Advanced biosensing and bioanalysis techniques (22 papers). Terence R. Strick is often cited by papers focused on DNA and Nucleic Acid Chemistry (35 papers), Force Microscopy Techniques and Applications (23 papers) and Advanced biosensing and bioanalysis techniques (22 papers). Terence R. Strick collaborates with scholars based in France, United States and United Kingdom. Terence R. Strick's co-authors include Vincent Croquette, David Bensimon, Jean‐François Allemand, Aaron Bensimon, Andrey Revyakin, Richard H. Ebright, Stephan Block, C. Bouchiat, Chenyu Liu and Achillefs N. Kapanidis and has published in prestigious journals such as Nature, Science and Proceedings of the National Academy of Sciences.

In The Last Decade

Terence R. Strick

66 papers receiving 4.7k citations

Hit Papers

The Elasticity of a Single Supercoiled DNA Molecule 1996 2026 2006 2016 1996 1999 250 500 750 1000

Peers

Terence R. Strick
Michelle D. Wang United States
Yann R. Chemla United States
Laura Finzi United States
Zev Bryant United States
Ralf Seidel Germany
Douglas E. Smith United States
Mark C. Leake United Kingdom
Michelle D. Wang United States
Terence R. Strick
Citations per year, relative to Terence R. Strick Terence R. Strick (= 1×) peers Michelle D. Wang

Countries citing papers authored by Terence R. Strick

Since Specialization
Citations

This map shows the geographic impact of Terence R. Strick's research. It shows the number of citations coming from papers published by authors working in each country. You can also color the map by specialization and compare the number of citations received by Terence R. Strick with the expected number of citations based on a country's size and research output (numbers larger than one mean the country cites Terence R. Strick more than expected).

Fields of papers citing papers by Terence R. Strick

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

This network shows the impact of papers produced by Terence R. Strick. Nodes represent research fields, and links connect fields that are likely to share authors. Colored nodes show fields that tend to cite the papers produced by Terence R. Strick. The network helps show where Terence R. Strick may publish in the future.

Co-authorship network of co-authors of Terence R. Strick

This figure shows the co-authorship network connecting the top 25 collaborators of Terence R. Strick. A scholar is included among the top collaborators of Terence R. Strick based on the total number of citations received by their joint publications. Widths of edges represent the number of papers authors have co-authored together. Node borders signify the number of papers an author published with Terence R. Strick. Terence R. Strick is excluded from the visualization to improve readability, since they are connected to all nodes in the network.

All Works

20 of 20 papers shown
1.
Garnier, Florence, et al.. (2025). Deciphering the human TopIIIα activity modulated by Rmi1 using magnetic tweezers. Nucleic Acids Research. 53(8).
2.
Fernández, I., Fidan Sumbul, Claire Valotteau, et al.. (2025). Modulation of SARS-CoV-2 spike binding to ACE2 through conformational selection. Nature Nanotechnology. 20(7). 926–934. 1 indexed citations
3.
Xiong, Ying, Weijing Han, Chunhua Xu, et al.. (2024). Single-molecule reconstruction of eukaryotic factor-dependent transcription termination. Nature Communications. 15(1). 5113–5113. 4 indexed citations
4.
Wang, Yong‐Jian, Claire Valotteau, Terence R. Strick, et al.. (2023). Combining DNA scaffolds and acoustic force spectroscopy to characterize individual protein bonds. Biophysical Journal. 122(12). 2518–2530. 8 indexed citations
5.
Wang, Jinglong, et al.. (2023). Shifted PAMs generate DNA overhangs and enhance SpCas9 post-catalytic complex dissociation. Nature Structural & Molecular Biology. 30(11). 1707–1718. 3 indexed citations
6.
Qayyum, M. Zuhaib, et al.. (2022). On the stability of stalled RNA polymerase and its removal by RapA. Nucleic Acids Research. 50(13). 7396–7405. 3 indexed citations
7.
Wang, Jinglong, Raphaël Guérois, Gaurav Goyal, et al.. (2021). Dynamics of Ku and bacterial non-homologous end-joining characterized using single DNA molecule analysis. Nucleic Acids Research. 49(5). 2629–2641. 22 indexed citations
8.
Savery, Nigel J., et al.. (2021). Cotranscriptional R-loop formation by Mfd involves topological partitioning of DNA. Proceedings of the National Academy of Sciences. 118(15). 21 indexed citations
9.
Sumbul, Fidan, Claire Valotteau, I. Fernández, et al.. (2021). Dynamics and Binding Strength of the Spike Protein of Sars-Cov-2 Probed by High-Speed Atomic Force Microscopy. Biophysical Journal. 120(3). 3a–3a. 2 indexed citations
10.
Laffeber, Charlie, H.H.K. Winterwerp, Titia K. Sixma, et al.. (2019). The unstructured linker arms of MutL enable GATC site incision beyond roadblocks during initiation of DNA mismatch repair. Nucleic Acids Research. 47(22). 11667–11680. 22 indexed citations
11.
Gosse, Charlie, et al.. (2019). Molecular scaffolds: when DNA becomes the hardware for single-molecule investigations. Current Opinion in Chemical Biology. 53. 192–203. 6 indexed citations
12.
Wang, Jinglong, Qian Wu, Takashi Ochi, et al.. (2018). Dissection of DNA double-strand-break repair using novel single-molecule forceps. Nature Structural & Molecular Biology. 25(6). 482–487. 76 indexed citations
13.
Lerner, Eitan, Sangyoon Chung, Benjamin L. Allen, et al.. (2016). Backtracked and paused transcription initiation intermediate of Escherichia coli RNA polymerase. Proceedings of the National Academy of Sciences. 113(43). E6562–E6571. 59 indexed citations
14.
Fan, Jun, et al.. (2015). A dynamic DNA-repair complex observed by correlative single-molecule nanomanipulation and fluorescence. Nature Structural & Molecular Biology. 22(6). 452–457. 56 indexed citations
15.
Sachidanandam, Ravi, et al.. (2011). Real-time detection of cruciform extrusion by single-molecule DNA nanomanipulation. Nucleic Acids Research. 39(10). 4275–4283. 19 indexed citations
16.
Strick, Terence R.. (2008). Optical investigations of the RNA polymerase molecular motor. Journal of Biophotonics. 1(4). 269–279. 2 indexed citations
17.
Revyakin, Andrey, Richard H. Ebright, & Terence R. Strick. (2005). Single-molecule DNA nanomanipulation: Improved resolution through use of shorter DNA fragments. Nature Methods. 2(2). 127–138. 56 indexed citations
18.
Strick, Terence R., Gilles Charvin, Nynke H. Dekker, et al.. (2002). Observation des cycles enzymatiques des ADN topoisomérases par micromanipulation de molécules individuelles. Comptes Rendus Physique. 3(5). 595–618. 11 indexed citations
19.
Strick, Terence R., Jean‐François Allemand, Vincent Croquette, & David Bensimon. (2000). Twisting and stretching single DNA molecules. Progress in Biophysics and Molecular Biology. 74(1-2). 115–140. 269 indexed citations
20.
Bouchiat, C., et al.. (1999). Estimating the Persistence Length of a Worm-Like Chain Molecule from Force-Extension Measurements. Biophysical Journal. 76(1). 409–413. 522 indexed citations breakdown →

Rankless uses publication and citation data sourced from OpenAlex, an open and comprehensive bibliographic database. While OpenAlex provides broad and valuable coverage of the global research landscape, it—like all bibliographic datasets—has inherent limitations. These include incomplete records, variations in author disambiguation, differences in journal indexing, and delays in data updates. As a result, some metrics and network relationships displayed in Rankless may not fully capture the entirety of a scholar's output or impact.

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