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Fernandez, L. C.

Publications and source records attributed to Fernandez, L. C..

2 recordsLinked to original sources

Structural features of an infectious recombinant PrPSc prion using solid state NMR

PrPSc, the first described and most notorious prion, is the only protein known to cause epidemics of deadly disease. Its properties are encoded in its unique structure. Here we report a first solid state NMR study of a uniformly labelled (U-13C,15N)-Bank vole (BV) infectious recombinant PrPSc prion. C-C, C-H and N-H spectra were obtained with MAS rotation of the sample at up to 60 kHz. We obtained amino acid-type secondary structure information and used it to challenge a physically plausible atomistic model of PrPSc consisting of a 4-rung {beta} solenoid recently proposed by us. In all cases, our model was compatible with the data. This study shows that elucidation of the structure of PrPSc is within reach using recombinant PrPSc, NMR, and our model as a guiding tool.

biochemistry

PHARMACOLOGICAL PROTEIN INACTIVATION BY TARGETING FOLDING INTERMEDIATES

Recent computational advancements in the simulation of biochemical processes allow investigating the mechanisms involved in protein regulation with realistic physics-based models, at an atomistic level of resolution. Using these techniques to study the negative regulation of the androgen receptor (AR), we discovered a key functional role played by non-native metastable states appearing along the folding pathway of this protein. This unexpected observation inspired us to design a completely novel drug discovery approach, named Pharmacological Protein Inactivation by Folding Intermediate Targeting (PPI-FIT), based on the rationale of negatively regulating protein expression by targeting folding intermediates. Here, PPI-FIT was tested for the first time on the cellular prion protein (PrP), a cell surface glycoprotein playing a key role in fatal and transmissible neurodegenerative pathologies known as prion diseases. We predicted the all-atom structure of an intermediate appearing along the folding pathway of PrP, and identified four different small molecule ligands for this conformer, all capable of selectively lowering the expression of the protein by promoting its degradation. Our data support the notion that the level of target proteins could be modulated by acting on their folding pathways, implying a previously unappreciated role for folding intermediates in the biological regulation of protein expression.

biochemistry