Structure of human MDM4 N-terminal domain bound to a single-domain antibody

Grace W Yu1, Marina Vaysburd, Mark D Allen

  • 1Centre for Protein Engineering, Medical Research Council, Cambridge, UK.

Insights

Researchers developed a novel single-domain antibody (VH9) to overcome crystallization challenges for MDM4, a key target in anticancer therapy. This VH9 antibody facilitated structural studies of MDM4, aiding drug design for cancer treatment.

Area of Science:

  • Biochemistry
  • Structural Biology
  • Oncology

Background:

  • MDM4 negatively regulates the tumor suppressor p53, making their interaction a target for anticancer therapies.
  • Previous structural studies of MDM4 were hindered by difficulties in satisfactory protein crystallization.

Purpose of the Study:

  • To develop a method for obtaining high-resolution structures of the MDM4 N-terminal domain.
  • To investigate the structural differences between MDM4 bound to a p53 peptide and MDM4 bound to a single-domain antibody.

Main Methods:

  • Selection of a single-domain antibody (VH9) that binds to the human MDM4 N-terminal domain.
  • X-ray crystallography of the MDM4-VH9 complex.
  • Molecular dynamics simulations to analyze conformational changes.

Main Results:

  • The structure of the human MDM4 N-terminal domain complexed with VH9 was solved at 2.0-A resolution.
  • Differences in MDM4 conformation were observed when bound to VH9 compared to a p53 peptide.
  • Molecular dynamics simulations indicated induced fit mechanisms and conformational convergence upon ligand removal.

Conclusions:

  • VH9 antibody serves as an effective molecular scaffold for crystallizing MDM4, aiding structural studies.
  • The observed structural differences and induced fit mechanisms provide insights for rational drug design against MDM4.
  • Single-domain antibodies show potential as tools for facilitating structural studies of challenging protein targets.

Related Concept Videos

Antibody Structure01:10

Antibody Structure

Overview
Antibodies, also known as immunoglobulins (Ig), are essential players of the adaptive immune system. These antigen-binding proteins are produced by B cells and make up 20 percent of the total blood plasma by weight. In mammals, antibodies fall into five different classes, which each elicits a different biological response upon antigen binding.
The Y-Shaped Structure of Antibodies Consists of Four Polypeptide Chains
Antibodies consist of four polypeptide chains: two identical heavy...
Antibody Structure01:10

Antibody Structure

Overview
Antibodies, also known as immunoglobulins (Ig), are essential players of the adaptive immune system. These antigen-binding proteins are produced by B cells and make up 20 percent of the total blood plasma by weight. In mammals, antibodies fall into five different classes, which each elicits a different biological response upon antigen binding.
The Y-Shaped Structure of Antibodies Consists of Four Polypeptide Chains
Antibodies consist of four polypeptide chains: two identical heavy...
Antibody Structure and Classes01:25

Antibody Structure and Classes

Antibodies, also known as immunoglobulins, are produced by B cells in response to foreign substances, such as bacteria and viruses. These proteins are critical for recognizing and neutralizing these substances, protecting the body from potential harm.
The basic structure of an antibody consists of four protein chains: two identical heavy chains and two identical light chains. These chains are held together by disulfide bonds and other non-covalent interactions, forming a Y-shaped structure.
Conservation of Protein Domains Over Different Proteins02:26

Conservation of Protein Domains Over Different Proteins

Protein domains are small structurally independent units that are part of a single amino acid chain.  Although these domains are often structurally independent, they may rely on synergistic effects to perform their functions as part of a larger protein. Protein domains may be conserved within the same organism, as well as across different organisms.
A limited set of protein domains often duplicate and recombine during evolution. These domains can be organized in different combinations to form...
Mechanisms of Membrane Domain Formation00:59

Mechanisms of Membrane Domain Formation

Different physical properties of lipids and proteins allow them to localize and form distinct islands or domains in the membrane. Some membrane domains are formed due to protein-protein interactions, whereas others are formed due to the presence of specific lipids such as sphingolipids and sterols—for example, large proteins, such as bacteriorhodopsin, aggregate and create distinct domains.
Another mechanism for membrane domain formation involves membrane proteins interacting with cytoskeletal...
Membrane Domains01:18

Membrane Domains

The membrane domains concentrate specific lipids and proteins at one place within the membrane, which helps in cell signaling, adhesion, and other critical cellular processes. These domains can differ in size, composition, function, and lifespan.
Protein Domains
The membrane comprises a group of distinct proteins responsible for carrying out a cell's specific function. For example, the plasma membrane of the human sperm, or a single germ cell, contains a unique set of proteins in the anterior...