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Protein Folding01:25

Protein Folding

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Proteins are chains of amino acids linked together by peptide bonds. Upon synthesis, a protein folds into a three-dimensional conformation, critical to its biological function. Interactions between its constituent amino acids guide protein folding, and hence the protein structure is primarily dependent on its amino acid sequence.
Protein Structure Is Critical to Its Biological Function
Proteins perform a wide range of biological functions such as catalyzing chemical reactions, providing...
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Protein Complexes with Interchangeable Parts01:57

Protein Complexes with Interchangeable Parts

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Groups of proteins may form a complex where each protein in this complex has a different role in the overall execution of the complex’s function. Often some of the proteins in the complex can be replaced by a closely related variant to give a complex that contains many of the same components yet is functionally distinct.
The SCF ubiquitin ligase is a protein complex of five individual proteins. This complex attaches ubiquitin to other target proteins to mark them for degradation. In order...
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Conserved Binding Sites01:49

Conserved Binding Sites

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Many proteins’ biological role depends on their interactions with their ligands, small molecules that bind to specific locations on the protein known as ligand-binding sites. Ligand-binding sites are often conserved among homologous proteins as these sites are critical for protein function.
Binding sites are often located in large pockets, and if their location on a protein’s surface is unknown, it can be predicted using various approaches. The energetic method computationally...
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Protein Organization01:24

Protein Organization

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Proteins are polymers of amino acid residues. They are versatile and responsible for different cellular functions, including DNA replication, molecular transport, catalysis, and structural support. Proteins have a hierarchical structure comprising at least three levels of organization: primary, secondary, and tertiary structure. Some large proteins have a quaternary structure where individual protein subunits are linked together.
The primary structure of a protein is its amino acid sequence....
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Protein-protein Interfaces02:04

Protein-protein Interfaces

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Many proteins form complexes to carry out their functions, making protein-protein interactions (PPIs) essential for an organism's survival. Most PPIs are stabilized by numerous weak noncovalent chemical forces. The physical shape of the interfaces determines the way two proteins interact. Many globular proteins have closely-matching shapes on their surfaces, which form a large number of weak bonds. Additionally, many PPIs occur between two helices or between a surface cleft and a...
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Protein Complex Assembly02:41

Protein Complex Assembly

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Proteins can form homomeric complexes with another unit of the same protein or heteromeric complexes with different types.  Most protein complexes self-assemble spontaneously via ordered pathways, while some proteins need assembly factors that guide their proper assembly. Despite the crowded intracellular environment, proteins usually interact with their correct partners and form functional complexes.
Many viruses self-assemble into a fully functional unit using the infected host cell to...
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Related Experiment Video

Updated: Apr 21, 2026

Protein WISDOM: A Workbench for In silico De novo Design of BioMolecules
10:58

Protein WISDOM: A Workbench for In silico De novo Design of BioMolecules

Published on: July 25, 2013

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Computationally assisted engineering of protein cages.

Maziar S Ardejani1, Brendan P Orner

  • 1Department of Chemistry, School of Natural and Mathematical Sciences, King's College London, London, UK.

Methods in Molecular Biology (Clifton, N.J.)
|November 1, 2014
PubMed
Summary

A new computational method combines surface topography and free-energy calculations to design stable protein nanocages. This approach enhances the structural integrity and assembly of engineered protein cages.

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Area of Science:

  • Computational biology
  • Structural biology
  • Biophysics

Background:

  • Protein nanocages are versatile nanostructures with applications in various fields.
  • Engineering protein cages for enhanced stability and controlled assembly remains a challenge.

Purpose of the Study:

  • To describe a hybrid computational method for designing protein nanocages.
  • To enhance the structural stability and assembly of protein cages through computational design.

Main Methods:

  • Hybrid computational method integrating topographic analysis of protein surfaces.
  • Free-energy calculations for protein-protein interactions within nanocage structures.

Main Results:

  • The described method enables the design of protein nanocages with improved structural stability.
  • The computational strategy facilitates enhanced assembly properties of engineered protein cages.

Conclusions:

  • The hybrid computational approach provides a powerful strategy for protein nanocage engineering.
  • This design methodology can lead to more robust and functional protein nanostructures.