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Kragelj, J.

Publications and source records attributed to Kragelj, J..

4 recordsLinked to original sources

Spatially resolved DNP-assisted NMR illuminates the conformational ensemble of α-synuclein in intact viable cells.

The protein -syn adopts a wide variety of conformations including an intrinsically disordered monomeric form and an -helical rich membrane-associated form that is thought to play an important role in cellular membrane processes. However, despite the high affinity of -syn for membranes, evidence that the -helical form is adopted inside cells has been indirect. DNP-assisted solid state NMR on frozen cellular samples can report on protein conformations inside cells. Moreover, by controlling the distribution of the DNP polarization agent throughout the cellular biomass, such experiments can provide quantitative information upon the entire structural ensemble or provide information about spatially resolved sub-populations. Using DNP-assisted magic angle spinning (MAS) NMR we establish that purified -syn in the membrane-associated and intrinsically disordered forms have distinguishable spectra. We then introduced isotopically labeled monomeric -syn into cells. When the DNP polarization agent is dispersed homogenously throughout the cell, we found that a minority of the -syn inside cells adopted a highly -helical rich conformation. When the DNP polarization agent is peripherally localized, we found that the -helical rich conformation predominates. Thus, we provide direct evidence that -helix rich conformations of -syn are adopted near the cellular periphery inside cells under physiological conditions. Moreover, we demonstrate how selectively altering the spatial distribution of the DNP polarization agent can be a powerful tool to observe spatially distinct structural ensembles. This approach paves the way for more nuanced investigations into the conformations that proteins adopt in different areas of the cell.

biophysics↗

DNP-assisted solid-state NMR enables detection of proteins at nanomolar concentrations in fully protonated cellular environments

With the sensitivity enhancements conferred by dynamic nuclear polarization (DNP), magic angle spinning (MAS) solid state NMR spectroscopy experiments can attain the necessary sensitivity to detect very low concentrations of proteins. This potentially enables structural investigations of proteins at their endogenous levels in their biological contexts where their native stoichiometries with potential interactors is maintained. Yet, even with DNP, experiments are still sensitivity limited. Moreover, when an isotopically-enriched target protein is present at physiological levels, which typically range from low micromolar to nanomolar concentrations, the isotope content from the natural abundance isotopes in the cellular milieu can outnumber the isotope content of the target protein. Using isotopically enriched yeast prion protein, Sup35NM, diluted into natural abundance yeast lysates, we optimized sample composition we find that modest cryoprotectant concentrations and fully protonated environments support efficient DNP. We experimentally validated theoretical calculations of the limit of specificity for an isotopically enriched protein in natural abundance cellular milieu. We establish that, using pulse sequences that are selective for adjacent NMR-active nuclei, proteins can be specifically detected in cellular milieu at concentrations in the hundreds of nanomolar. Finally, we find that maintaining native stoichiometries of the protein of interest to the components of the cellular environment may be important for proteins that make specific interactions with cellular constituents.

biophysics↗

The conformational ensemble of an intrinsically disordered protein explains peak shapes under DNP conditions

Elucidating the conformational preferences of regions of intrinsic disorder in biologically relevant contexts represents a frontier of structural biology. The sensitivity enhancements conferred by DNP enable structural studies of proteins in native contexts by MAS NMR. However, DNP requires low temperatures which results in broad peaks, particularly for for regions of intrinsic disorder. We describe an approach to predict and interpret peak shapes for frozen regions of intrinsic disorder in terms of dihedral angle populations. We demonstrate the method using the protein a-synuclein. This approach can be used to obtain experimental structural restraints for regions of intrinsic disorder in both simplified and biological settings, providing information that eludes characterization by diffraction-based methods as well as solution-state NMR spectroscopy and molecular dynamics due to molecular size limitations.

biophysics↗

In-Cell Sensitivity-Enhanced NMR of Intact Living Mammalian Cells

NMR has the resolution and specificity to determine atomic-level protein structures of isotopically-labeled proteins in complex environments and, with the sensitivity gains conferred by dynamic nuclear polarization (DNP), NMR has the sensitivity to detect proteins at their endogenous concentrations. However, DNP sensitivity enhancements are critically dependent on experimental conditions and sample composition. While some of these conditions are theoretically compatible with cellular viability, the effects of others on cellular sample integrity are unknown. Uncertainty about the integrity of cellular samples limits the utility of experimental outputs. Using several measures, we establish conditions that support DNP enhancements that can enable detection of micromolar concentrations of proteins in experimentally tractable times that are compatible with cellular viability. Taken together, we establish DNP assisted MAS NMR as a technique for structural investigations of biomolecules in intact viable cells that can be phenotyped both before and after NMR experiments. ClassificationBiophysics and Structural Biology

biophysics↗