The transmembrane domains of ErbB receptors do not dimerize strongly in micelles

Ann Marie Stanley1, Karen G Fleming

  • 1T.C. Jenkins Department of Biophysics, Johns Hopkins University, 3400 North Charles Street, Baltimore, MD 21218, USA.

Insights

Transmembrane domains of epidermal growth factor receptors (erbB) show minimal specific interactions. Hydrophobic effects, not direct binding, likely drive receptor dimerization and signal transduction.

Area of Science:

  • Molecular biology
  • Biochemistry
  • Cell signaling

Background:

  • Epidermal growth factor receptors (erbB) are crucial single-pass transmembrane proteins regulating cell growth.
  • Receptor dimerization is vital for signal transduction, but its molecular basis remains unclear.
  • Transmembrane helices are hypothesized to stabilize receptor complexes.

Purpose of the Study:

  • To investigate the thermodynamic driving forces for erbB receptor dimerization.
  • To determine if erbB transmembrane domains mediate specific homo- or hetero-interactions.
  • To assess the contribution of transmembrane domains to receptor complex stability.

Main Methods:

  • Thermodynamic studies of erbB transmembrane domains fused to staphylococcal nuclease.
  • SDS-PAGE analysis to detect protein interactions.
  • Sedimentation equilibrium analytical ultracentrifugation to quantify association thermodynamics.

Main Results:

  • No strong, specific homo- or hetero-interactions were detected between erbB transmembrane domains in micellar solutions.
  • Observed preferential interactions were extremely modest (≤ 1 kcal mol(-1)).
  • Hydrophobic transmembrane segments sufficiently anchor soluble domains, explaining increased dimerization affinity for ligand-bound EGFR.

Conclusions:

  • The transmembrane domains of erbB receptors do not appear to be major drivers of specific dimerization.
  • Hydrophobic interactions and confinement effects of transmembrane domains are sufficient to explain receptor dimerization.
  • This finding clarifies the molecular mechanisms underlying erbB-mediated cell signaling.

Related Concept Videos

Insertion of Multi-pass Transmembrane Proteins in the RER01:29

Insertion of Multi-pass Transmembrane Proteins in the RER

The rough ER membrane synthesizes, assembles, and embeds transmembrane proteins in diverse topologies. These proteins function as transporters or channels and can remain in the ER membrane or are sent to the Golgi complex, lysosome, and cell membrane.
The multipass transmembrane proteins are the type IV integral membrane proteins with multiple topogenic sequences determining their spatial arrangement in the ER membrane. Nearly all multipass proteins lack a cleavable signal sequence and use...
Insertion of Single-pass Transmembrane Proteins in the RER01:26

Insertion of Single-pass Transmembrane Proteins in the RER

Integral membrane proteins are proteins adhered to the lipid bilayer of a cell organelle or membrane. They can be of two types: transmembrane integral proteins that span the lipid bilayer and monotopic proteins that are attached to either side of the membrane but do not pass through it.
Integral transmembrane proteins possess transmembrane and extra membrane domains. The transmembrane domains are primarily made of 20-25 hydrophobic amino acids arranged in a helical secondary confirmation. These...
Assembly of the Lipid Bilayer in the ER01:28

Assembly of the Lipid Bilayer in the ER

Biological membranes are more than just a barrier separating cell cytoplasm from the outside environment. They are highly dynamic and help maintain the integrity and physiological stability of the cells as well as membrane-bound organelles. Membranes also play vital roles in cell-to-cell and intracellular communication.
A large chunk of any biological membrane is composed of phospholipids. These lipids have a heterogeneous distribution across different subcellular organelles and even between...
Multi-pass Transmembrane Proteins and β-barrels01:09

Multi-pass Transmembrane Proteins and β-barrels

In multi-pass transmembrane proteins, the polypeptide chain crosses the membrane more than once. The transmembrane polypeptide chain either forms an α-helix or β-strand structure. α-Helix containing multi-pass transmembrane proteins are ubiquitous, whereas β-strand containing ones are mainly found in gram-negative bacteria, mitochondria, and chloroplasts.
α-Helix containing multi-pass transmembrane proteins
Multi-pass transmembrane proteins such as G-protein-linked receptors (GPCRs) and...
Tail-anchoring of Proteins in the ER Membrane01:45

Tail-anchoring of Proteins in the ER Membrane

Tail-anchored, or TA, proteins are estimated to make up to 3-5% of membrane proteins found in the eukaryotic cell. Such proteins have a single transmembrane domain located approximately 30 amino acid residues upstream from the C-terminal end. As a result, the signal recognition particle (SRP) cannot guide a TA protein to the ER membrane for cotranslational insertion. Hence, they are integrated into the ER membrane post-translationally using their C-terminal end as the anchor. TA proteins...
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...