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In silico based re-engineering of a computationally designed biosensor with altered signalling mode and improved
Dustin D Smith1, D Wade Abbott2, Hans-Joachim Wieden1
1Alberta RNA Research and Training Institute (ARRTI), University of Lethbridge, Lethbridge, AB, Canada; Department of Chemistry and Biochemistry, University of Lethbridge, Lethbridge, AB, Canada.
Archives of Biochemistry and Biophysics
|December 18, 2024
Summary
Researchers engineered a maltooligosaccharide (MOS)-detecting biosensor with custom binding affinities and detection modes. This advancement allows for precise control over biosensor function through in silico design, enabling tailored biomolecular tools.
Area of Science:
- Biomolecular Engineering
- Computational Biology
- Protein Design
Background:
- Rational design of biomolecular sensors requires custom control over binding affinities and detection mechanisms.
- Existing computational methods for biosensor design face challenges in fine-tuning these properties.
- Maltooligosaccharide (MOS)-detecting biosensors are valuable tools but require further engineering for specific applications.
Purpose of the Study:
- To re-engineer a computationally designed fluorescent MOS-detecting biosensor to alter its ligand-binding affinity.
- To analyze the underlying sensing mechanism of the re-engineered biosensors in silico.
- To demonstrate the utility of protein structural dynamics for rational biosensor design.
Main Methods:
- Amino acid substitutions were introduced into a protein scaffold (MalX) to create a set of biosensors with varied binding affinities.
- The Computational Identification of Non-disruptive Conjugation sites (CINC) pipeline was employed for in silico analysis.
- CINC utilizes molecular dynamics simulations and a custom algorithm to assess protein structural dynamics at the amino acid level.
Main Results:
- A biosensor set with binding affinities spanning over five orders of magnitude was generated.
- Two distinct output modes, 'ligand-sensing' and 'apo-sensing', were identified based on local conformational changes.
- The study demonstrated that individual amino acid residue dynamics can be engineered to control fluorescence reporting properties.
Conclusions:
- Protein structural dynamics are engineer-able features for rationally altering biosensor fluorescence reporting.
- The CINC workflow provides a platform for in silico design of custom biomolecular tools with specific dynamic properties.
- This work advances the rational design of biomolecular sensors with tunable affinities and detection mechanisms.

