Mouse ApoM displays an unprecedented seven-stranded lipocalin fold: folding decoy or alternative native fold?

Madhumati Sevvana1, Kristin Kassler, Josefin Ahnström

  • 1Lehrstuhl für Biotechnik, Department Biologie, Friedrich-Alexander-Universität Erlangen-Nürnberg, Im IZMP, Henkestr. 91, D-91052 Erlangen, Germany.

Insights

Mouse apolipoprotein M (apoM) exhibits a unique seven-stranded beta-barrel structure, unlike its human counterpart. This structural flexibility may influence its biological function and provide insights into beta-barrel evolution.

Area of Science:

  • Structural biology
  • Protein folding
  • Biochemistry

Background:

  • Mouse apolipoprotein M (m-apoM) shares high sequence identity with human apoM (h-apoM).
  • Both are high-density lipoprotein-associated apolipoproteins with expected similar functions.
  • h-apoM adopts a canonical lipocalin fold with an eight-stranded beta-barrel and a fatty-acid-binding site.

Purpose of the Study:

  • To determine the crystal structure of m-apoM.
  • To investigate the structural differences between m-apoM and h-apoM.
  • To explore the functional and evolutionary implications of m-apoM's unique fold.

Main Methods:

  • X-ray crystallography of refolded m-apoM.
  • Molecular dynamics simulations.
  • Thermal unfolding simulations.

Main Results:

  • m-apoM displays an unprecedented seven-stranded beta-barrel structure, differing from the canonical eight-stranded fold of h-apoM.
  • This structural variation involves the replacement of beta-strands E and F with a single N-terminal beta-strand A'.
  • Simulations indicate m-apoM can adopt both seven- and eight-stranded conformations, suggesting fold promiscuity and comparable stability.

Conclusions:

  • The unique seven-stranded fold of m-apoM represents a significant deviation from the lipocalin fold.
  • This structural plasticity might facilitate ligand release or represent a folding intermediate.
  • The fold promiscuity of m-apoM offers insights into beta-barrel evolution and potential topological switching mechanisms.

Related Concept Videos

Protein Folding01:25

Protein Folding

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...
Protein Folding01:22

Protein Folding

Overview
Protein Folding01:22

Protein Folding

Overview
Molecular Chaperones and Protein Folding03:00

Molecular Chaperones and Protein Folding

The native conformation of a protein is formed by interactions between the side chains of its constituent amino acids. When the amino acids cannot form these interactions, the protein cannot fold by itself and needs chaperones. Notably, chaperones do not relay any additional information required for the folding of polypeptides; the native conformation of a protein is determined solely by its amino acid sequence. Chaperones catalyze protein folding without being a part of the folded protein.
The...
Protein Folding Quality Check in the RER01:29

Protein Folding Quality Check in the RER

ER is the primary site for the maturation and folding of soluble and transmembrane secretory proteins. The calnexin cycle is a specific chaperone system that folds and assesses the confirmation of N-glycosylated proteins before they can exit the ER lumen. The primary players of this quality check pipeline are the lectins, ER-resident chaperones, and a glucosyl transferase enzyme. In case the calnexin system in the lumen fails to salvage a misfolded protein, it is transported to the cytoplasm...
Pinching-off of Coated Vesicles01:32

Pinching-off of Coated Vesicles

Vesicle budding is orchestrated by distinct cytosolic proteins such as adaptor proteins, coat proteins, and GTPases. To initiate vesicle budding, membrane-bending proteins containing crescent-shaped BAR domains bind to the lipid heads in the bilayer and distort the membrane to form a protein-coated vesicle bud. Adaptors proteins such as AP2 for clathrin-coated vesicles can nucleate on the deformed membrane. Finally, coat proteins such as clathrin or COPI and COPII assemble into a coat forming...