Computational design and cellular synthesis of two protein topological isomers: Solomon link vs. three-twist knot

Вычислительное проектирование и клеточный синтез двух топологических изомеров белка: соломонов узел и трёхкрутный узел
Xiao‐Dong Su, Wenbin Zhang, Lianjie Xu, Xiaohui Song, HJ Xu, Wenhao Wu
2026-06-16

Solomon linkcrystal structureorthogonal entangling motifsprotein topological isomersthree-twist knot
Chemical topology has emerged as a unique dimension in protein engineering, motivating the pursuit of topologically nontrivial protein architectures for functional advantages, such as enhanced stability and rich dynamics. However, the structural diversity of artificial mechanically interlocked proteins remains limited. Here, we report the computational design and cellular synthesis of a pair of topological isomers via symmetric assembly of orthogonal entangling motifs. By fusing two C 2 symmetric entangling motifs, i.e., p53dim and HP0242, in specific arrangements, we programmed the formation of multiple crossings, which upon cyclization yielded a protein Solomon link and a protein three-twist knot. The fusion patterns and linker lengths were systematically optimized to direct the formation of the intended topologies. Their successful cellular synthesis was validated through biophysical and structural analyses, including sodium dodecyl sulfate-polyacrylamide gel electrophoresis, size exclusion chromatography, and liquid chromatography-mass spectrometry. Notably, we report the crystal structure of an artificial protein three-twist knot. Both the Solomon link and the three-twist knot displayed increased structural compactness and stability relative to their controls with lower topological complexity (e.g., Hopf link, trefoil knot, and linear forms), as evidenced by their superior thermal stability and resistance to chemical denaturation. This modular design strategy provides a rational and extensible route to diverse mechanically interlocked proteins and could be generalized to access even more complex architectures, such as protein chainmail-like nanocages and woven protein frameworks.
1
A pair of protein topological isomers—a Solomon link and a three-twist knot—were computationally designed and synthesized in cells via symmetric assembly of orthogonal entangling motifs.
2
Both the Solomon link and the three-twist knot exhibited increased structural compactness and greater stability (higher thermal stability and resistance to chemical denaturation) compared with controls of lower topological complexity (Hopf link, trefoil knot, and linear forms).
3
Fusing two C2-symmetric entangling motifs (p53dim and HP0242) in specific arrangements and optimizing fusion patterns and linker lengths programmed multiple crossings that cyclize into the intended topologies.
4
Successful cellular synthesis and topology formation were validated by SDS-PAGE, size-exclusion chromatography, and liquid chromatography–mass spectrometry.
5
The crystal structure of an artificial protein three-twist knot was determined and reported.
6
The modular design strategy is rational, extensible, and could be generalized to create more complex mechanically interlocked protein architectures such as chainmail-like nanocages and woven protein frameworks.

A pair of designed and biosynthesized topologically distinct proteins: a protein Solomon link and a protein three-twist knot

Computational design, fusion-pattern and linker-length optimization, cellular synthesis, and structural/biophysical characterization (including crystallography, SEC, LC–MS, SDS–PAGE) of the two protein topological isomers, and comparison of their structural compactness and stability versus lower-topology controls

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2026-06-16
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Xiao‐Dong Su
Wenbin Zhang
Lianjie Xu
Xiaohui Song
HJ Xu
Wenhao Wu
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