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.

PubMed

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.