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Interdomain Contacts and the Stability of Serralysin Protease from Serratia marcescens
Liang Zhang1, Anneliese J Morrison1, Patrick H Thibodeau1
1Department of Microbiology and Molecular Genetics, University of Pittsburgh, School of Medicine, Pittsburgh, PA 15219, United States of America.
Abstract:
The serralysin family of bacterial metalloproteases is associated with virulence in multiple modes of infection. These extracellular proteases are members of the Repeats-in-ToXin (RTX) family of toxins and virulence factors, which mediated virulence in E. coli, B. pertussis, and P. aeruginosa, as well as other animal and plant pathogens. The serralysin proteases are structurally dynamic and their folding is regulated by calcium binding to a C-terminal domain that defines the RTX family of proteins. Previous studies have suggested that interactions between N-terminal sequences and this C-terminal domain are important for the high thermal and chemical stabilities of the RTX proteases. Extending from this, stabilization of these interactions in the native structure may lead to hyperstabilization of the folded protein. To test this hypothesis, cysteine pairs were introduced into the N-terminal helix and the RTX domain and protease folding and activity were assessed. Under stringent pH and temperature conditions, the disulfide-bonded mutant showed increased protease activity and stability. This activity was dependent on the redox environment of the refolding reaction and could be blocked by selective modification of the cysteine residues before protease refolding. These data demonstrate that the thermal and chemical stability of these proteases is, in part, mediated by binding between the RTX domain and the N-terminal helix and demonstrate that stabilization of this interaction can further stabilize the active protease, leading to additional pH and thermal tolerance.
Insights
Stabilizing interactions in serralysin proteases enhances their stability and activity. This research shows that disulfide bonds can increase protease tolerance to extreme pH and temperature conditions.
Area of Science:
- Microbiology
- Biochemistry
- Structural Biology
Background:
- Serralysins are bacterial metalloproteases linked to virulence.
- These proteases belong to the Repeats-in-ToXin (RTX) family, known for toxin and virulence functions.
- RTX protein stability is regulated by calcium binding and interactions between N-terminal and C-terminal domains.
Purpose of the Study:
- To investigate if stabilizing N-terminal and RTX domain interactions can hyperstabilize serralysin proteases.
- To assess the impact of engineered disulfide bonds on protease folding, activity, and stability.
Main Methods:
- Introduction of cysteine pairs into the N-terminal helix and RTX domain of serralysin.
- Assessment of protease folding and activity under stringent pH and temperature conditions.
- Evaluation of disulfide bond formation's dependence on the redox environment.
Main Results:
- A disulfide-bonded mutant exhibited increased protease activity and stability under harsh conditions.
- Enhanced protease activity was dependent on the redox environment during refolding.
- Cysteine modification prior to refolding blocked the observed protease activity.
Conclusions:
- The thermal and chemical stability of serralysin proteases is partly mediated by N-terminal helix and RTX domain binding.
- Stabilizing this interaction via disulfide bonds leads to hyperstabilized active proteases.
- Engineered stabilization confers enhanced pH and thermal tolerance to serralysin proteases.
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