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Mylemans, B.

Publications and source records attributed to Mylemans, B..

3 recordsLinked to original sources

From peptides to proteins: coiled-coil tetramers to single-chain 4-helix bundles

The design of completely synthetic proteins from first principles--de novo protein design--is challenging. This is because, despite recent advances in computational protein-structure prediction and design, we do not understand fully the sequence-to-structure relationships for protein folding, assembly, and stabilization. Antiparallel 4-helix bundles are amongst the most studied scaffolds for de novo protein design. We set out to re-examine this target, and to determine clear sequence-to-structure relationships, or design rules, for the structure. Our aim was to determine a common and robust sequence background for designing multiple de novo 4-helix bundles, which, in turn, could be used in chemical and synthetic biology to direct protein-protein interactions and as scaffolds for functional protein design. Our approach starts by analyzing known antiparallel 4-helix coiled-coil structures to deduce design rules. In terms of the heptad repeat, abcdefg--i.e., the sequence signature of many helical bundles--the key features that we identify are: a = Leu, d = Ile, e = Ala, g = Gln, and the use of complementary charged residues at b and c. Next, we implement these rules in the rational design of synthetic peptides to form antiparallel homo- and heterotetramers. Finally, we use the sequence of the homotetramer to derive a single-chain 4-helix-bundle protein for recombinant production in E. coli. All of the assembled designs are confirmed in aqueous solution using biophysical methods, and ultimately by determining high-resolution X-ray crystal structures. Our route from peptides to proteins provides an understanding of the role of each residue in each design.

synthetic biology↗

Crystal sturctures of Scone, pseudosymmetric folding of a symmetric designer protein

Recent years have seen a raise in the development of computational proteins including symmetric ones. We recently developed a nine-fold symmetric {beta}-propeller protein named Cake. Here we wanted to further engineer this protein to a three-fold symmetric nine-bladed propeller using computational design. Two nine-bladed propeller proteins were designed, named Scone-E and Scone-R. Crystallography however revealed the structure of both designs to adopt an eight-fold conformation with distorted termini, leading to a pseudo-symmetric protein. One of the proteins could only be crystallized upon addition of a polyoxometalate highlighting the usefulness of these molecules as a crystallisation additive.

systems biology↗

Structure and Stability of the designer protein WRAP-T and its permutants

{beta}-Propeller proteins are common natural disc-like pseudo-symmetric proteins that contain multiple repeats ( blades) each consisting of a 4-stranded anti-parallel {beta}-sheet. So far, 4- to 12-bladed {beta}-propellers have been discovered in nature showing large functional and sequential variation. Using computational design approaches, we created perfectly symmetric {beta}-propellers out of natural pseudo-symmetric templates. These proteins are useful tools to study protein evolution of this very diverse fold. While the 7-bladed architecture is the most common, no symmetric 7-bladed monomer has been created and characterized so far. Here we describe such a engineered protein, based on a highly symmetric natural template, and test the effects of circular permutation on its stability. Geometrical analysis of this protein and other artificial symmetrical proteins reveals no systematic constraint that could be used to help in engineering of this fold, and suggests sequence constraints unique to each {beta}-propeller sub-family.

biophysics↗