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Kolypetris, G.

Publications and source records attributed to Kolypetris, G..

2 recordsLinked to original sources

Fast prediction of acidic amino acid sidechain conformations for cryo-EM modeling

Cryogenic-electron microscopy (cryo-EM) has revolutionized the field of protein structural biology. The structures of large membrane proteins are now routinely determined by cryo-EM to near atomic resolution. However, in the medium resolution range of cryo-EM maps (>[~]2 [A]), negatively charged sidechains of acidic residues are not well-resolved due to the negative electrostatic potential of the region. This may lead to incorrect sidechain models for residues like glutamic acid or aspartic acid that are central for proton transfer activity in various respiratory and photosynthetic enzymes. We previously proposed that the acidic residues with weak or non-existent cryo-EM density can be modeled to represent their low proton affinity conformations. Here, we tested this hypothesis on a larger data set of acidic amino acid residues in two high-resolution respiratory complex I structures. By using faster sidechain modeling and proton affinity prediction tools, we created a workflow that generates sidechain conformations of selected amino acid residues. We validated the sidechain conformation predictions by Q-score analysis and atomistic molecular dynamics simulations in different charged states. The proposed workflow provides a way to rapidly obtain sidechain conformations of acidic residues with weak cryo-EM densities and can be integrated into the existing cryo-EM modeling pipelines to speed up sidechain rotamer prediction.

biophysics↗

Exploring Peptide-Based Nanodiscs Structure and Dynamics through Synergistic Approach of NMR Spectroscopy, SAS and MD Simulations

Peptide nanodiscs are promising anti-atherosclerosis therapeutics, drug delivery particles and structural biology tools. However, the lack of experimental methods for structural and dynamical characterization of these particles hinders their further development. Here we integrated nuclear magnetic resonance (NMR), small-angle x-ray scattering, and small-angle neutron scattering experiments with molecular dynamics (MD) simulations to investigate the structure and dynamics of peptide nanodiscs stabilized by the apolipoprotein A-I mimetic peptide 22A with therapeutic activity against atherosclerosis. This multi-technique approach takes advantage of combining average size and shape information from small-angle scattering, peptide site-specific information from NMR spectroscopy, and interpretative power of MD simulations. Our results reveal the intrinsic polydispersity in size of peptide nanodiscs, highlighting the importance of careful interpretation when using averaged experimental parameters. Our consensus model suggests that 22A peptides are predominantly in -helical configuration with a disordered inter-helical orientation around the lipid matrix. The terminal regions of the peptides display greater flexibility relative to the peptide core and an enhanced C-terminal exposure to solvent, which could facilitate interaction with the enzyme LCAT. Interestingly, our results indicate that peptides and lipids rotate together as a rigid body. The methodological approach described in this paper paves the way for the design of more stable and effective therapeutic nanodiscs and for the characterization of other biomolecular aggregates that are beyond the scope of current structural biology techniques. Significance StatementNanodiscs stabilized by 22A apoA-I mimetic peptides hold significant pharmaceutical potential for treating cardiovascular diseases by mimicking HDL functions, yet their development is hindered by the difficulty of characterizing disordered biomolecular systems. Standard structural biology techniques cannot readily resolve the structure and dynamics of these peptide nanodiscs, which is essential for rational therapeutic design. Here, we integrate complementary biophysical experiments with MD simulations to establish a consensus model of 22A peptide nanodisc structure, dynamics, and interactions with biological partners at molecular resolution. Beyond advancing peptide nanodisc design, our integrative methodology provides a generalizable framework for characterizing other disordered biomolecular assemblies that are similarly challenging to conventional structural approaches.

biochemistry↗