TY - JOUR
T1 - Characterization of an RNase with two catalytic centers. Human RNase6 catalytic and phosphate-binding site arrangement favors the endonuclease cleavage of polymeric substrates
AU - Prats-Ejarque, Guillem
AU - Blanco, Jose A.
AU - Salazar, Vivian A.
AU - Nogués, Victòria M.
AU - Moussaoui, Mohammed
AU - Boix, Ester
N1 - Copyright © 2018 Elsevier B.V. All rights reserved.
PY - 2019/1/1
Y1 - 2019/1/1
N2 - © 2018 Elsevier B.V. Background: Human RNase6 is a small cationic antimicrobial protein that belongs to the vertebrate RNaseA superfamily. All members share a common catalytic mechanism, which involves a conserved catalytic triad, constituted by two histidines and a lysine (His15/His122/Lys38 in RNase6 corresponding to His12/His119/Lys41 in RNaseA). Recently, our first crystal structure of human RNase6 identified an additional His pair (His36/His39) and suggested the presence of a secondary active site. Methods: In this work we have explored RNase6 and RNaseA subsite architecture by X-ray crystallography, site-directed mutagenesis and kinetic characterization. Results: The analysis of two novel crystal structures of RNase6 in complex with phosphate anions at atomic resolution locates a total of nine binding sites and reveals the contribution of Lys87 to phosphate-binding at the secondary active center. Contribution of the second catalytic triad residues to the enzyme activity is confirmed by mutagenesis. RNase6 catalytic site architecture has been compared with an RNaseA engineered variant where a phosphate-binding subsite is converted into a secondary catalytic center (RNaseA-K7H/R10H). Conclusions: We have identified the residues that participate in RNase6 second catalytic triad (His36/His39/Lys87) and secondary phosphate-binding sites. To note, residues His39 and Lys87 are unique within higher primates. The RNaseA/RNase6 side-by-side comparison correlates the presence of a dual active site in RNase6 with a favored endonuclease-type cleavage pattern. General significance: An RNase dual catalytic and extended binding site arrangement facilitates the cleavage of polymeric substrates. This is the first report of the presence of two catalytic centers in a single monomer within the RNaseA superfamily.
AB - © 2018 Elsevier B.V. Background: Human RNase6 is a small cationic antimicrobial protein that belongs to the vertebrate RNaseA superfamily. All members share a common catalytic mechanism, which involves a conserved catalytic triad, constituted by two histidines and a lysine (His15/His122/Lys38 in RNase6 corresponding to His12/His119/Lys41 in RNaseA). Recently, our first crystal structure of human RNase6 identified an additional His pair (His36/His39) and suggested the presence of a secondary active site. Methods: In this work we have explored RNase6 and RNaseA subsite architecture by X-ray crystallography, site-directed mutagenesis and kinetic characterization. Results: The analysis of two novel crystal structures of RNase6 in complex with phosphate anions at atomic resolution locates a total of nine binding sites and reveals the contribution of Lys87 to phosphate-binding at the secondary active center. Contribution of the second catalytic triad residues to the enzyme activity is confirmed by mutagenesis. RNase6 catalytic site architecture has been compared with an RNaseA engineered variant where a phosphate-binding subsite is converted into a secondary catalytic center (RNaseA-K7H/R10H). Conclusions: We have identified the residues that participate in RNase6 second catalytic triad (His36/His39/Lys87) and secondary phosphate-binding sites. To note, residues His39 and Lys87 are unique within higher primates. The RNaseA/RNase6 side-by-side comparison correlates the presence of a dual active site in RNase6 with a favored endonuclease-type cleavage pattern. General significance: An RNase dual catalytic and extended binding site arrangement facilitates the cleavage of polymeric substrates. This is the first report of the presence of two catalytic centers in a single monomer within the RNaseA superfamily.
KW - Endoribonuclease
KW - Enzymology
KW - Protein crystallography
KW - RNase6
KW - RNaseA
KW - Substrate binding site
KW - Catalytic Domain
KW - Mutagenesis, Site-Directed
KW - Phosphates/chemistry
KW - Protein Structure, Secondary
KW - Humans
KW - Ribonuclease, Pancreatic/chemistry
KW - Crystallography, X-Ray
KW - Histidine/chemistry
KW - Polymers/chemistry
KW - Endonucleases/chemistry
KW - Ribonucleases/chemistry
KW - Catalysis
KW - Kinetics
KW - Mutation
KW - Lysine/chemistry
KW - Exonucleases/chemistry
KW - ACTIVE-SITE
KW - SUBSITES
KW - ANGSTROM RESOLUTION
KW - COMPLEX
KW - MECHANISM
KW - CRYSTAL-STRUCTURE
KW - BOVINE PANCREATIC RIBONUCLEASE
KW - EOSINOPHIL CATIONIC PROTEIN
KW - EVOLUTION
KW - NEUROTOXIN EDN
UR - http://www.mendeley.com/research/characterization-rnase-two-catalytic-centers-human-rnase6-catalytic-phosphatebinding-site-arrangemen
UR - https://www.scopus.com/pages/publications/85054431472
U2 - 10.1016/j.bbagen.2018.09.021
DO - 10.1016/j.bbagen.2018.09.021
M3 - Article
C2 - 30287244
SN - 0304-4165
VL - 1863
SP - 105
EP - 117
JO - Biochimica et Biophysica Acta - General Subjects
JF - Biochimica et Biophysica Acta - General Subjects
IS - 1
ER -