Jan Niclas Wolf

dblp:293/8687 · DBLP profile ↗
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2ranked-venue papers
1as first author
2since 2021 · last 2024
0000-0002-0536-9400ORCID · corroborated

Domains — the database's venue-derived domains; a paper can count in several

Applied, interdisciplinary, general and emerging computing · 2 · 1 first-author · 2 since 2021

Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.

Interdisciplinary, comprehensive, and emerging computing
2 papers
Bioinformatics and computational biology · 100%

Topics — the 3 heaviest of 3, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Bioinformatics and computational biology
protein structure analysis
1.322024
Graph-theoretical prediction of biological modules in quaternary structures of large protein complexes · Bioinform. 2024
PTGL: extension to graph-based topologies of cryo-EM data for large protein structures · Bioinform. 2021
Bioinformatics and computational biology
protein function prediction
0.812024
Graph-theoretical prediction of biological modules in quaternary structures of large protein complexes · Bioinform. 2024
Bioinformatics and computational biology
structural bioinformatics
0.512021
PTGL: extension to graph-based topologies of cryo-EM data for large protein structures · Bioinform. 2021

Methods — techniques the papers use, named apart from their topics

leiden clustering · 0.8graph modeling · 0.8mmCIF parsing · 0.5graph-based representations · 0.5
YearPublicationVenuePosition
2024 Graph-theoretical prediction of biological modules in quaternary structures of large protein complexes
abstract
MOTIVATION: The functional complexity of biochemical processes is strongly related to the interplay of proteins and their assembly into protein complexes. In recent years, the discovery and characterization of protein complexes have substantially progressed through advances in cryo-electron microscopy, proteomics, and computational structure prediction. This development results in a strong need for computational approaches to analyse the data of large protein complexes for structural and functional characterization. Here, we aim to provide a suitable approach, which processes the growing number of large protein complexes, to obtain biologically meaningful information on the hierarchical organization of the structures of protein complexes. RESULTS: We modelled the quaternary structure of protein complexes as undirected, labelled graphs called complex graphs. In complex graphs, the vertices represent protein chains and the edges spatial chain-chain contacts. We hypothesized that clusters based on the complex graph correspond to functional biological modules. To compute the clusters, we applied the Leiden clustering algorithm. To evaluate our approach, we chose the human respiratory complex I, which has been extensively investigated and exhibits a known biological module structure experimentally validated. Additionally, we characterized a eukaryotic group II chaperonin TRiC/CCT and the head of the bacteriophage Φ29. The analysis of the protein complexes correlated with experimental findings and indicated known functional, biological modules. Using our approach enables not only to predict functional biological modules in large protein complexes with characteristic features but also to investigate the flexibility of specific regions and coformational changes. The predicted modules can aid in the planning and analysis of experiments. AVAILABILITY AND IMPLEMENTATION: Jupyter notebooks to reproduce the examples are available on our public GitHub repository: https://github.com/MolBIFFM/PTGLtools/tree/main/PTGLmodulePrediction.
Florian J. Gisdon, Mariella Zunker, Jan Niclas Wolf, Kai Prüfer, Jörg Ackermann 0001, Christoph Welsch, Ina Koch
Bioinform.3
2021 PTGL: extension to graph-based topologies of cryo-EM data for large protein structures
abstract
SUMMARY: We provide a software to describe the topology of large protein complexes based mainly on cryo-EM data and stored as macromolecular Crystallographic Information Files (mmCIFs) in the PDB. The software extends the Protein Topology Graph Library and implements an efficient file parser to analyze mmCIFs. The extended Protein Topology Graph Library includes a graph-based representation of the topology of protein complexes on the supersecondary and quaternary structure level. The library holds topology graphs of 151 837 PDB files; 921 of them are large structures. The abstraction of protein structure complexes to undirected labeled graphs enables classification and comparison of large protein complexes on quaternary structure level. AVAILABILITY AND IMPLEMENTATION: Online access at http://ptgl.uni-frankfurt.de. Source code in Java under GNU public license 2.0 at https://github.com/MolBIFFM/vplg. SUPPLEMENTARY INFORMATION: Supplementary data are available at Bioinformatics online.
Jan Niclas Wolf, Marcus Keßler, Jörg Ackermann 0001, Ina Koch
Bioinform.1