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Investigating Protein Sequence-structure-dynamics Relationships with Bio3D-web
Published on: July 16, 2017
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.
Abstract:
Mouse apolipoprotein M (m-apoM) displays a 79% sequence identity to human apolipoprotein M (h-apoM). Both proteins are apolipoproteins associated with high-density lipoproteins, with similar anticipated biological functions. The structure of h-apoM has recently been determined by X-ray crystallography, which revealed that h-apoM displays, as expected, a lipocalin-like fold characterized by an eight-stranded β‑barrel that encloses an internal fatty-acid-binding site. Surprisingly, this is not true for m-apoM. After refolding from inclusion bodies, the crystal structure of m-apoM (reported here at 2.5 Å resolution) displays a novel yet unprecedented seven-stranded β-barrel structure. The fold difference is not caused by a mere deletion of a single β-strand; instead, β-strands E and F are removed and replaced by a single β-strand A' formed from residues from the N-terminus. Molecular dynamics simulations suggest that m-apoM is able to adopt both a seven-stranded barrel structure and an eight-stranded barrel structure in solution, and that both folds are comparably stable. Thermal unfolding simulations identify the position where β-strand exchange occurs as the weak point of the β-barrel. We wonder whether the switch in topology could have a biological function and could facilitate ligand release, since it goes hand in hand with a narrowing of the barrel diameter. Possibly also, the observed conformation represents an on-pathway or off-pathway folding intermediate of apoM. The difference in fold topology is quite remarkable, and the fold promiscuity observed for m-apoM might possibly provide a glimpse at potential cross-points during the evolution of β-barrels.
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.
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