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Structural and functional analysis of Oceanobacillus iheyensis macrodomain reveals a network of waters involved in substrate binding and catalysis

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dc.contributor.author Zapata-Pérez, Rubén
dc.contributor.author Gil-Ortiz, Fernando
dc.contributor.author Martínez-Moñino, Ana-Belén
dc.contributor.author García-Saura, Antonio Ginés
dc.contributor.author Juan-Carloshuix, Jordi
dc.contributor.author Sánchez-Ferrer, Álvaro
dc.date.accessioned 2026-02-12T12:19:49Z
dc.date.available 2026-02-12T12:19:49Z
dc.date.issued 2017-04
dc.identifier.citation Zapata-Pérez R, Gil-Ortiz F, Martínez-Moñino AB, García-Saura AG, Juanhuix J, Sánchez-Ferrer Á. Structural and functional analysis of Oceanobacillus iheyensis macrodomain reveals a network of waters involved in substrate binding and catalysis. Open Biol. abril de 2017;7(4):160327.
dc.identifier.uri https://sms.carm.es/ricsmur/handle/123456789/24456
dc.description.abstract Macrodomains are ubiquitous conserved domains that bind or transform ADP-ribose (ADPr) metabolites. In humans, they are involved in transcription, X-chromosome inactivation, neurodegeneration and modulating PARP1 signalling, making them potential targets for therapeutic agents. Unfortunately, some aspects related to the substrate binding and catalysis of MacroD-like macrodomains still remain unclear, since mutation of the proposed catalytic aspartate does not completely abolish enzyme activity. Here, we present a functional and structural characterization of a macrodomain from the extremely halotolerant and alkaliphilic bacterium Oceanobacillus iheyensis (OiMacroD), related to hMacroD1/hMacroD2, shedding light on substrate binding and catalysis. The crystal structures of D40A, N30A and G37V mutants, and those with MES, ADPr and ADP bound, allowed us to identify five fixed water molecules that play a significant role in substrate binding. Closure of the ?6-?4 loop is revealed as essential not only for pyrophosphate recognition, but also for distal ribose orientation. In addition, a novel structural role for residue D40 is identified. Furthermore, it is revealed that OiMacroD not only catalyses the hydrolysis of O-acetyl-ADP-ribose but also reverses protein mono-ADP-ribosylation. Finally, mutant G37V supports the participation of a substrate-coordinated water molecule in catalysis that helps to select the proper substrate conformation.
dc.language.iso eng
dc.publisher ROYAL SOC
dc.rights Attribution 4.0 International
dc.rights.uri http://creativecommons.org/licenses/by/4.0 *
dc.subject.mesh Adenosine Diphosphate Ribose/chemistry/metabolism
dc.subject.mesh Bacillaceae/metabolism
dc.subject.mesh Bacterial Proteins/chemistry/genetics/metabolism
dc.subject.mesh Binding Sites
dc.subject.mesh Biocatalysis
dc.subject.mesh Crystallography, X-Ray
dc.subject.mesh Humans
dc.subject.mesh Hydrogen Bonding
dc.subject.mesh Hydrolysis
dc.subject.mesh Kinetics
dc.subject.mesh Molecular Dynamics Simulation
dc.subject.mesh Mutagenesis, Site-Directed
dc.subject.mesh O-Acetyl-ADP-Ribose/chemical synthesis/metabolism
dc.subject.mesh Poly(ADP-ribose) Polymerases/chemistry/genetics/metabolism
dc.subject.mesh Protein Binding
dc.subject.mesh Protein Structure, Tertiary
dc.subject.mesh Substrate Specificity
dc.subject.mesh Temperature
dc.subject.mesh Water/chemistry/metabolism
dc.title Structural and functional analysis of Oceanobacillus iheyensis macrodomain reveals a network of waters involved in substrate binding and catalysis
dc.type info:eu-repo/semantics/article
dc.identifier.pmid 28446708
dc.relation.publisherversion https://royalsocietypublishing.org/doi/10.1098/rsob.160327
dc.type.version info:eu-repo/semantics/publishedVersion
dc.identifier.doi 10.1098/rsob.160327
dc.journal.title Open Biology
dc.identifier.essn 2046-2441


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