This multidisciplinary project has required the joint efforts of different research groups with specific and complementary expertise. One of the involved groups (Prof. Inmaculada Robina, University of Seville) has just synthesized iminosugars with PC activity. Robina´s group has characterized a pyrrolidine-aryltriazole iminosugars with PC activity in Gaucher´s cell line with β-glucocerebrosidase (GCase) mutation of N370S. In addition, a nonavalent pyrrolidine-based iminosugar has increased the activity of α-Gal A in a fibroblast cell line containing the mutation R301G; being the first example of a multivalent enzyme activity enhancer for Fabry disease. As an extension of both works, at the UEA we started studying these enzyme-PC complexes by STD NMR, Molecular Modelling and HDX-MS.
Explanation of the work carried per WP is shown bellow.
WP1: Cloning, expression and purification of glycosidic enzymes involved in Gaucher and Fabry disease.
Enzyme purity is fundamental for the structural characterization of the enzyme-PC complexes when NMR and MS technologies are being used. We focused on WT enzymes (GCase and α-Gal A) and relevant mutants which have been reported to strongly react to PCs. Mutations initially planned to test were: R301G α-Gal A, N370S GCase and L444P GCase. In collaboration with Dr. José Corchero (Autonomous University of Barcelona), we are expressing these enzymes in HEK 293 cells. So far, we have produced enough quantity of α-Gal A and GCase and we are developing new strategies for increasing the expression level of the mutants.
WP2: Study of molecular interactions between iminosugars and enzyme mutants by STD NMR.
We have just carried out STD NMR experiments on the complex α-Gal A with the PC provided by Prof. Robina (nonavalent pyrrolidine-based iminosugar) and the results showed that a specific interaction of the ligand with α-Gal A takes place. Although, we have carried out the initial studies with the α-Gal A (WT), the mutants that are been expressed in Corbero's laboratory will be key to study real molecular interactions.
WP3: Molecular Modelling calculations. So far, we have investigated, using advanced molecular dynamic simulations, different complexes between GCase or α-Gal A and a variety of substrates, inhibitors and the proposed chaperones in order to study the following properties: Protein stability, Protein-ligand complex strength, Intermolecular interactions between the ligand and the protein, Conformational changes in the protein structure and effect of conformational changes in the catalytic activity. These properties helped us to evaluate, and predict, the chaperone properties of the studied iminosugars with the most representative mutants for GCase (N370S and L444P) and the cellular-line available mutant for R301G α-Gal A. We could find a relationship between the presence of iminosugars and lower loop flexibility in N370S mutant for GCase with could cause the enhancement of the protein stability in the endoplasmic reticulum. Similar findings were observed for R301G mutant in α-Gal A.
WP4: HDX-MS. To expand our knowledge on the conformation of the complexes and to deepen our understanding of the mechanism of action of this PC, we will complete our project with HDX-MS experiments.