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Computational design of matrix metalloprotenaise-9 (MMP-9) resistant to auto-cleavage
Alessandro Bonadio1, Solomon Oguche1, Tali Lavy2
1Department of Biological Chemistry, The Alexander Silberman Institute of Life Sciences, The Hebrew University of Jerusalem, Jerusalem, Israel.
Abstract:
Matrix metalloproteinase-9 (MMP-9) is an endopeptidase that remodels the extracellular matrix. MMP-9 has been implicated in several diseases including neurodegeneration, arthritis, cardiovascular diseases, fibrosis and several types of cancer, resulting in a high demand for MMP-9 inhibitors for therapeutic purposes. For such drug design efforts, large amounts of MMP-9 are required. Yet, the catalytic domain of MMP-9 (MMP-9Cat) is an intrinsically unstable enzyme that tends to auto-cleave within minutes, making it difficult to use in drug design experiments and other biophysical studies. We set our goal to design MMP-9Cat variant that is active but stable to auto-cleavage. For this purpose, we first identified potential auto-cleavage sites on MMP-9Cat using mass spectroscopy and then eliminated the auto-cleavage site by predicting mutations that minimize auto-cleavage potential without reducing enzyme stability. Four computationally designed MMP-9Cat variants were experimentally constructed and evaluated for auto-cleavage and enzyme activity. Our best variant, Des2, with 2 mutations, was as active as the wild-type enzyme but did not exhibit auto-cleavage after 7 days of incubation at 37°C. This MMP-9Cat variant, with an identical with MMP-9Cat WT active site, is an ideal candidate for drug design experiments targeting MMP-9 and enzyme crystallization experiments. The developed strategy for MMP-9CAT stabilization could be applied to redesign other proteases to improve their stability for various biotechnological applications.
Insights
Researchers engineered a stable matrix metalloproteinase-9 catalytic domain (MMP-9Cat) variant, Des2, for drug design. This stable MMP-9Cat variant maintains activity and resists auto-cleavage, overcoming limitations in therapeutic development.
Area of Science:
- Biochemistry
- Enzymology
- Drug Discovery
Background:
- Matrix metalloproteinase-9 (MMP-9) is crucial in extracellular matrix remodeling and implicated in diseases like cancer and arthritis.
- The catalytic domain of MMP-9 (MMP-9Cat) is unstable, auto-cleaving rapidly, which hinders its use in drug design and biophysical studies.
- High demand exists for MMP-9 inhibitors for therapeutic applications, necessitating stable enzyme variants.
Purpose of the Study:
- To design and validate an active yet auto-cleavage-resistant variant of the MMP-9 catalytic domain (MMP-9Cat).
- To overcome the inherent instability of MMP-9Cat for improved utility in drug discovery and biophysical research.
Main Methods:
- Identified auto-cleavage sites on MMP-9Cat using mass spectrometry.
- Designed mutations to minimize auto-cleavage potential while preserving enzyme stability and activity.
- Constructed and evaluated four computationally designed MMP-9Cat variants experimentally.
Main Results:
- The best variant, Des2, with two mutations, exhibited activity comparable to wild-type MMP-9Cat.
- Des2 demonstrated remarkable stability, showing no auto-cleavage after 7 days of incubation at 37°C.
- The active site of Des2 remained identical to wild-type MMP-9Cat.
Conclusions:
- The stabilized MMP-9Cat variant (Des2) is suitable for drug design targeting MMP-9 and for enzyme crystallization.
- The strategy for stabilizing MMP-9Cat can be applied to other proteases, enhancing their stability for biotechnological applications.
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