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Novel Insights into the Catalytic Mechanism of Collagenolysis by Zn(II)-Dependent Matrix Metalloproteinase-1.
Gorantla, Koteswara Rao; Krishnan, Anandhu; Waheed, Sodiq O; Varghese, Ann; DiCastri, Isabella; LaRouche, Ciara; Paik, Meredith; Fields, Gregg B; Karabencheva-Christova, Tatyana G.
Affiliation
  • Gorantla KR; Department of Chemistry, Michigan Technological University, Houghton, Michigan 49931, United States.
  • Krishnan A; Department of Chemistry, Michigan Technological University, Houghton, Michigan 49931, United States.
  • Waheed SO; Department of Chemistry, Michigan Technological University, Houghton, Michigan 49931, United States.
  • Varghese A; Department of Chemistry, Michigan Technological University, Houghton, Michigan 49931, United States.
  • DiCastri I; Department of Chemical Engineering, Michigan Technological University, Houghton, Michigan 49931, United States.
  • LaRouche C; Department of Chemical Engineering, Michigan Technological University, Houghton, Michigan 49931, United States.
  • Paik M; Department of Chemistry, Michigan Technological University, Houghton, Michigan 49931, United States.
  • Fields GB; Department of Chemistry and Biochemistry and I-HEALTH, Florida Atlantic University, Jupiter, Florida 33458, United States.
  • Karabencheva-Christova TG; Department of Chemistry, Michigan Technological University, Houghton, Michigan 49931, United States.
Biochemistry ; 63(15): 1925-1940, 2024 Aug 06.
Article in En | MEDLINE | ID: mdl-38963231
ABSTRACT
Collagen hydrolysis, catalyzed by Zn(II)-dependent matrix metalloproteinases (MMPs), is a critical physiological process. Despite previous computational investigations into the catalytic mechanisms of MMP-mediated collagenolysis, a significant knowledge gap in understanding remains regarding the influence of conformational sampling and entropic contributions at physiological temperature on enzymatic collagenolysis. In our comprehensive multilevel computational study, employing quantum mechanics/molecular mechanics (QM/MM) metadynamics (MetD) simulations, we aimed to bridge this gap and provide valuable insights into the catalytic mechanism of MMP-1. Specifically, we compared the full enzyme-substrate complex in solution, clusters in solution, and gas-phase to elucidate insights into MMP-1-catalyzed collagenolysis. Our findings reveal significant differences in the catalytic mechanism when considering thermal effects and the dynamic evolution of the system, contrasting with conventional static potential energy surface QM/MM reaction path studies. Notably, we observed a significant stabilization of the critical tetrahedral intermediate, attributed to contributions from conformational flexibility and entropy. Moreover, we found that protonation of the scissile bond nitrogen occurs via proton transfer from a Zn(II)-coordinated hydroxide rather than from a solvent water molecule. Following C-N bond cleavage, the C-terminus remains coordinated to the catalytic Zn(II), while the N-terminus forms a hydrogen bond with a solvent water molecule. Subsequently, the release of the C-terminus is facilitated by the coordination of a water molecule. Our study underscores the pivotal role of protein conformational dynamics at physiological temperature in stabilizing the transition state of the rate-limiting step and key intermediates, compared to the corresponding reaction in solution. These fundamental insights into the mechanism of collagen degradation provide valuable guidance for the development of MMP-1-specific inhibitors.
Subject(s)

Full text: 1 Database: MEDLINE Main subject: Zinc / Collagen / Matrix Metalloproteinase 1 / Molecular Dynamics Simulation Limits: Humans Language: En Year: 2024 Type: Article

Full text: 1 Database: MEDLINE Main subject: Zinc / Collagen / Matrix Metalloproteinase 1 / Molecular Dynamics Simulation Limits: Humans Language: En Year: 2024 Type: Article