The first crystal structure of human RNase6 reveals a novel substrate binding and cleavage site arrangement

Human RNase 6 is a cationic secreted protein that belongs to the RNase A superfamily. Its expression is induced in neutrophils and monocytes upon bacterial infection, suggesting a role in host defence. We present here the crystal structure of RNase 6 obtained at a 1.72 Å resolution, being the first...

Descripción completa

Detalles Bibliográficos
Autores: Prats-Ejarque, Guillem|||0000-0002-8213-4947, Arranz Trullén, Javier|||0000-0002-5559-9167, Blanco, José A., Pulido, Daniel|||0000-0002-2841-194X, Nogués Bara, Maria Victòria|||0000-0002-7104-0961, Moussaoui, Mohammed|||0000-0001-6694-7692, Boix, Ester|||0000-0003-1790-2142
Tipo de recurso: artículo
Fecha de publicación:2016
País:España
Institución:Universitat Autònoma de Barcelona
Repositorio:Dipòsit Digital de Documents de la UAB
Idioma:inglés
OAI Identifier:oai:ddd.uab.cat:174358
Acceso en línea:https://ddd.uab.cat/record/174358
https://dx.doi.org/urn:doi:10.1042/BCJ20160245
Access Level:acceso abierto
Palabra clave:Protein crystallography
RNase k6
RNase A superfamily
Sulphate anion
Kinetic characterization
Molecular dynamics
Descripción
Sumario:Human RNase 6 is a cationic secreted protein that belongs to the RNase A superfamily. Its expression is induced in neutrophils and monocytes upon bacterial infection, suggesting a role in host defence. We present here the crystal structure of RNase 6 obtained at a 1.72 Å resolution, being the first report for the protein threedimensional structure and thereby setting the basis for functional studies. The structure shows an overall kidney shaped globular fold shared with the other known family members. Three sulphate anions bound to RNase 6 were found, interacting to residues at the main active site (His15, His122 and Gln14) and cationic surface exposed residues (His36, His39, Arg66 and His67). Kinetic characterization, together with prediction of protein -nucleotide complexes by molecular dynamics, was applied to analyse the RNase 6 substrate nitrogenous base and phosphate selectivity. Our results reveal that, although RNase 6 is a moderate catalyst in comparison to the pancreatic RNase type, its structure includes lineage specific features that facilitate its activity towards polymeric nucleotide substrates. In particular, enzyme interactions at the substrate 5' end can provide an endonuclease type cleavage pattern. Interestingly, the RNase 6 crystal structure revealed a novel secondary active site conformed by the His36-His39 dyad that facilitates the polynucleotide substrate catalysis.