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Structural basis for Dicer-like function of an engineered RNase III variant and insights into the reaction trajectory of two-Mg(2+)-ion catalysis

The RNase III family of dsRNA-specific endonucleases is exemplified by prokaryotic RNase III and eukaryotic Rnt1p, Drosha, and Dicer. Structures of Aquifex aeolicus RNase III (AaRNase III) and Saccharomyces cerevisiae Rnt1p (ScRnt1p) show that both enzymes recognize substrates in a sequence-specific...

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Autores principales: Dharavath, Sudhaker, Shaw, Gary X., Ji, Xinhua
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Taylor & Francis 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9291653/
https://www.ncbi.nlm.nih.gov/pubmed/35829618
http://dx.doi.org/10.1080/15476286.2022.2099650
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author Dharavath, Sudhaker
Shaw, Gary X.
Ji, Xinhua
author_facet Dharavath, Sudhaker
Shaw, Gary X.
Ji, Xinhua
author_sort Dharavath, Sudhaker
collection PubMed
description The RNase III family of dsRNA-specific endonucleases is exemplified by prokaryotic RNase III and eukaryotic Rnt1p, Drosha, and Dicer. Structures of Aquifex aeolicus RNase III (AaRNase III) and Saccharomyces cerevisiae Rnt1p (ScRnt1p) show that both enzymes recognize substrates in a sequence-specific manner and propel RNA hydrolysis by two-Mg(2+)-ion catalysis. Previously, we created an Escherichia coli RNase III variant (EcEEQ) by eliminating the sequence specificity via protein engineering and called it bacterial Dicer for the fact that it produces heterogeneous small interfering RNA cocktails. Here, we present a 1.8-Å crystal structure of a postcleavage complex of EcEEQ, representing a reaction state immediately after the cleavage of scissile bond. The structure not only establishes the structure-and-function relationship of EcEEQ, but also reveals the functional role of a third Mg(2+) ion that is involved in RNA hydrolysis by bacterial RNase III. In contrast, the cleavage site assembly of ScRnt1p does not contain a third Mg(2+) ion. Instead, it involves two more amino acid side chains conserved among eukaryotic RNase IIIs. We conclude that the EcEEQ structure (this work) represents the cleavage assembly of prokaryotic RNase IIIs and the ScRnt1p structure (PDB: 4OOG), also determined at the postcleavage state, represents the cleavage assembly of eukaryotic RNase IIIs. Together, these two structures provide insights into the reaction trajectory of two-Mg(2+)-ion catalysis by prokaryotic and eukaryotic RNase III enzymes.
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spelling pubmed-92916532022-07-19 Structural basis for Dicer-like function of an engineered RNase III variant and insights into the reaction trajectory of two-Mg(2+)-ion catalysis Dharavath, Sudhaker Shaw, Gary X. Ji, Xinhua RNA Biol Research Paper The RNase III family of dsRNA-specific endonucleases is exemplified by prokaryotic RNase III and eukaryotic Rnt1p, Drosha, and Dicer. Structures of Aquifex aeolicus RNase III (AaRNase III) and Saccharomyces cerevisiae Rnt1p (ScRnt1p) show that both enzymes recognize substrates in a sequence-specific manner and propel RNA hydrolysis by two-Mg(2+)-ion catalysis. Previously, we created an Escherichia coli RNase III variant (EcEEQ) by eliminating the sequence specificity via protein engineering and called it bacterial Dicer for the fact that it produces heterogeneous small interfering RNA cocktails. Here, we present a 1.8-Å crystal structure of a postcleavage complex of EcEEQ, representing a reaction state immediately after the cleavage of scissile bond. The structure not only establishes the structure-and-function relationship of EcEEQ, but also reveals the functional role of a third Mg(2+) ion that is involved in RNA hydrolysis by bacterial RNase III. In contrast, the cleavage site assembly of ScRnt1p does not contain a third Mg(2+) ion. Instead, it involves two more amino acid side chains conserved among eukaryotic RNase IIIs. We conclude that the EcEEQ structure (this work) represents the cleavage assembly of prokaryotic RNase IIIs and the ScRnt1p structure (PDB: 4OOG), also determined at the postcleavage state, represents the cleavage assembly of eukaryotic RNase IIIs. Together, these two structures provide insights into the reaction trajectory of two-Mg(2+)-ion catalysis by prokaryotic and eukaryotic RNase III enzymes. Taylor & Francis 2022-07-13 /pmc/articles/PMC9291653/ /pubmed/35829618 http://dx.doi.org/10.1080/15476286.2022.2099650 Text en This work was authored as part of the Contributor’s official duties as an Employee of the United States Government and is therefore a work of the United States Government. In accordance with 17 U.S.C. 105, no copyright protection is available for such works under U.S. Law. https://creativecommons.org/publicdomain/mark/1.0/This is an Open Access article that has been identified as being free of known restrictions under copyright law, including all related and neighbouring rights (https://creativecommons.org/publicdomain/mark/1.0/). You can copy, modify, distribute and perform the work, even for commercial purposes, all without asking permission.
spellingShingle Research Paper
Dharavath, Sudhaker
Shaw, Gary X.
Ji, Xinhua
Structural basis for Dicer-like function of an engineered RNase III variant and insights into the reaction trajectory of two-Mg(2+)-ion catalysis
title Structural basis for Dicer-like function of an engineered RNase III variant and insights into the reaction trajectory of two-Mg(2+)-ion catalysis
title_full Structural basis for Dicer-like function of an engineered RNase III variant and insights into the reaction trajectory of two-Mg(2+)-ion catalysis
title_fullStr Structural basis for Dicer-like function of an engineered RNase III variant and insights into the reaction trajectory of two-Mg(2+)-ion catalysis
title_full_unstemmed Structural basis for Dicer-like function of an engineered RNase III variant and insights into the reaction trajectory of two-Mg(2+)-ion catalysis
title_short Structural basis for Dicer-like function of an engineered RNase III variant and insights into the reaction trajectory of two-Mg(2+)-ion catalysis
title_sort structural basis for dicer-like function of an engineered rnase iii variant and insights into the reaction trajectory of two-mg(2+)-ion catalysis
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9291653/
https://www.ncbi.nlm.nih.gov/pubmed/35829618
http://dx.doi.org/10.1080/15476286.2022.2099650
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