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Catalytically Perfect Enzymes01:07

Catalytically Perfect Enzymes

The theory of catalytically perfect enzymes was first proposed by W.J. Albery and J. R. Knowles in 1976. These enzymes catalyze biochemical reactions at high-speed. Their catalytic efficiency values range from 108-109 M-1s-1. These enzymes are also called 'diffusion-controlled' as the only rate-limiting step in the catalysis is that of the substrate diffusion into the active site. Examples include triose phosphate isomerase, fumarase, and superoxide dismutase.
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Related Experiment Video

Updated: Jul 14, 2026

Application of I TASSER, trRosetta, UCSF Chimera, HADDOCK server, and HEX loria for De Novo and In Silico Design of Proteins
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Application of I TASSER, trRosetta, UCSF Chimera, HADDOCK server, and HEX loria for De Novo and In Silico Design of Proteins

Published on: July 8, 2025

Evo-EquiGPS: Synergizing Dynamic Geometry, Global Topology, and Explicit Evolution for High-Precision Enzyme Active

Xinyu Fei1, Jiali Gu2, Cheng Zhou1

  • 1School of Information Engineering, Huzhou Normal University, Huzhou, Zhejiang 313000, China.

Journal of Chemical Information and Modeling
|July 13, 2026
PubMed
Summary

Accurate enzyme active site identification is crucial for understanding protein function and engineering. Evo-EquiGPS, a new multimodal graph neural network, precisely predicts these sites by integrating sequence, structure, and evolutionary data.

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A Protocol for Computer-Based Protein Structure and Function Prediction
16:41

A Protocol for Computer-Based Protein Structure and Function Prediction

Published on: November 3, 2011

Area of Science:

  • Biochemistry and Structural Biology
  • Computational Biology
  • Bioinformatics

Background:

  • Accurate enzyme active site identification is essential for protein function elucidation and enzyme engineering.
  • Next-generation sequencing has led to the discovery of novel enzymes with low sequence similarity, posing challenges for existing computational methods.
  • Current methods struggle with static geometric representations, limited graph encoder receptive fields, and evolutionary semantic dilution.

Purpose of the Study:

  • To develop a novel computational framework for precise enzyme active site prediction.
  • To address the limitations of existing methods in identifying active sites for novel enzymes with low sequence similarity.
  • To integrate multidimensional features for enhanced prediction accuracy.

Main Methods:

  • Introduction of Evo-EquiGPS, a multimodal graph neural network framework.
  • Implementation of a three-branch parallel encoding architecture: dynamic geometric flow, global topological flow, and explicit evolutionary flow.
  • Synergistic integration of enzyme sequence semantics, 3D structures, and explicit evolutionary constraints.

Main Results:

  • Evo-EquiGPS demonstrated superior performance on datasets with high structural diversity.
  • Achieved a significant margin in area under the precision-recall curve (AUPRC) on the TS124 dataset, outperforming SCREEN and GraphEC.
  • Showcased strong generalization capabilities on the independent test set CSA112.

Conclusions:

  • The Evo-EquiGPS framework significantly enhances the precision of enzyme active site prediction.
  • Provides a robust foundation for computational protein functional annotation.
  • Advances the field of enzyme engineering and functional genomics.