Structure-mechanics statistical learning uncovers mechanical relay in proteins.
Nixon Raj1, Timothy H Click1, Haw Yang2
1Institute of Bioinformatics and Systems Biology, National Yang Ming Chiao Tung University Hsinchu 30010 Taiwan Republic of China.
Chemical Science
|April 18, 2022
Summary
Proteins adapt to substrates via mechanical rigidity changes. This study reveals how residue networks transmit these mechanical signals, explaining protein dynamics and allostery.
Area of Science:
- Molecular physics and physical chemistry
- Structural biology
- Biophysics
Background:
- Understanding protein adaptation to substrates is crucial in molecular physics and physical chemistry.
- Proteins undergo conformational changes and exhibit allostery, but the underlying mechanisms are not fully understood.
Purpose of the Study:
- To establish a mechanical perspective on protein adaptive responses to substrates.
- To investigate how mechanical rigidity changes propagate through protein structures.
Main Methods:
- Employed a structure-mechanics statistical learning method.
- Mapped all-atom molecular dynamics simulations to an elastic network model.
- Assembled a rigidity graph representing inter-residue coupling strength using chemical moiety-specific force constants.
Main Results:
- Identified chains of spatially contiguous residues exhibiting significant mechanical rigidity changes upon substrate binding/dissociation in S1A protease and PDZ3 domain.
- Demonstrated that changes in mechanical rigidity propagate through the protein structure.
- Localized responsive mechanical hotspots to residues with important biological functions or high mutation sensitivity.
Conclusions:
- A mechanical-relay mechanism underpins protein conformational changes, long-range communication, and allostery.
- Protein rigidity changes upon substrate interaction provide a mechanistic explanation for these phenomena.
- Key residues acting as mechanical hotspots are critical for protein function and stability.
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