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RESEARCH PRODUCT

Decoding the Folding of Burkholderia glumae Lipase: Folding Intermediates En Route to Kinetic Stability

Georges FellerKris PauwelsPatrick Van GelderManuel M. Sánchez Del Pino

subject

Macromolecular AssembliesProtein StructureProtein FoldingBurkholderiaProtein ConformationStereochemistryBiophysicslcsh:MedicineBiochemistryProtein Chemistrybacterial lipasemolten globuleBacterial ProteinsNative stateBurkholderia glumaeLipaseProtein Interactionslcsh:ScienceBiologyMultidisciplinarybiologylipase-specific foldasePhysicslcsh:RSubtilisinProteinsLipasebiology.organism_classificationMolten globuleEnzymesChaperone ProteinsKineticsBiochemistryChaperone (protein)Enzyme StructureProteolysisFoldasebiology.proteinlcsh:Qsteric chaperoneProtein foldingnear-native folding intermediateResearch ArticleMolecular Chaperones

description

The lipase produced by Burkholderia glumae folds spontaneously into an inactive near-native state and requires a periplasmic chaperone to reach its final active and secretion-competent fold. The B. glumae lipase-specific foldase (Lif) is classified as a member of the steric-chaperone family of which the propeptides of alpha-lytic protease and subtilisin are the best known representatives. Steric chaperones play a key role in conferring kinetic stability to proteins. However, until present there was no solid experimental evidence that Lif-dependent lipases are kinetically trapped enzymes. By combining thermal denaturation studies with proteolytic resistance experiments and the description of distinct folding intermediates, we demonstrate that the native lipase has a kinetically stable conformation. We show that a newly discovered molten globule-like conformation has distinct properties that clearly differ from those of the near-native intermediate state. The folding fingerprint of Lif-dependent lipases is put in the context of the protease-prodomain system and the comparison reveals clear differences that render the lipase-Lif systems unique. Limited proteolysis unveils structural differences between the near-native intermediate and the native conformation and sets the stage to shed light onto the nature of the kinetic barrier.

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