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Structures of RNA ligase RtcB in complexes with divalent cations and GTP

Pyrococcus horikoshii (Pho) RtcB exemplifies a family of binuclear transition metal- and GTP-dependent RNA ligases that join 3′-phosphate and 5′-OH ends via RtcB-(histidinyl-N)–GMP and RNA(3')pp(5')G intermediates. We find that guanylylation of PhoRtcB is optimal with manganese and less ef...

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Autores principales: Jacewicz, Agata, Dantuluri, Swathi, Shuman, Stewart
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory Press 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9745838/
https://www.ncbi.nlm.nih.gov/pubmed/36130078
http://dx.doi.org/10.1261/rna.079327.122
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author Jacewicz, Agata
Dantuluri, Swathi
Shuman, Stewart
author_facet Jacewicz, Agata
Dantuluri, Swathi
Shuman, Stewart
author_sort Jacewicz, Agata
collection PubMed
description Pyrococcus horikoshii (Pho) RtcB exemplifies a family of binuclear transition metal- and GTP-dependent RNA ligases that join 3′-phosphate and 5′-OH ends via RtcB-(histidinyl-N)–GMP and RNA(3')pp(5')G intermediates. We find that guanylylation of PhoRtcB is optimal with manganese and less effective with cobalt and nickel. Zinc and copper are inactive and potently inhibit manganese-dependent guanylylation. We report crystal structures of PhoRtcB in complexes with GTP and permissive (Mn, Co, Ni) or inhibitory (Zn, Cu) metals. Zinc and copper occupy the M1 and M2 sites adjacent to the GTP phosphates, as do manganese, cobalt, and nickel. The identity/positions of enzymic ligands for M1 (His234, His329, Cys98) and M2 (Cys98, Asp95, His203) are the same for permissive and inhibitory metals. The differences pertain to: (i) the coordination geometries and phosphate contacts of the metals; and (ii) the orientation of the His404 nucleophile with respect to the GTP α-phosphate and pyrophosphate leaving group. M2 metal coordination geometry correlates with metal cofactor activity, whereby inhibitory Zn2 and Cu2 assume a tetrahedral configuration and contact only the GTP γ-phosphate, whereas Mn2, Co2, and Ni2 coordination complexes are pentahedral and contact the β- and γ-phosphates. The His404-Nε–Pα–O(α-β) angle is closer to apical in Mn (179°), Co (171°), and Ni (169°) structures than in Zn (160°) and Cu (155°) structures. The octahedral Mn1 geometry in our RtcB•GTP•Mn(2+) structure, in which Mn1 contacts α-, β-, and γ-phosphates, transitions to a tetrahedral configuration after formation of RtcB•(His404)–GMP•Mn(2+) and departure of pyrophosphate.
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spelling pubmed-97458382023-11-01 Structures of RNA ligase RtcB in complexes with divalent cations and GTP Jacewicz, Agata Dantuluri, Swathi Shuman, Stewart RNA Article Pyrococcus horikoshii (Pho) RtcB exemplifies a family of binuclear transition metal- and GTP-dependent RNA ligases that join 3′-phosphate and 5′-OH ends via RtcB-(histidinyl-N)–GMP and RNA(3')pp(5')G intermediates. We find that guanylylation of PhoRtcB is optimal with manganese and less effective with cobalt and nickel. Zinc and copper are inactive and potently inhibit manganese-dependent guanylylation. We report crystal structures of PhoRtcB in complexes with GTP and permissive (Mn, Co, Ni) or inhibitory (Zn, Cu) metals. Zinc and copper occupy the M1 and M2 sites adjacent to the GTP phosphates, as do manganese, cobalt, and nickel. The identity/positions of enzymic ligands for M1 (His234, His329, Cys98) and M2 (Cys98, Asp95, His203) are the same for permissive and inhibitory metals. The differences pertain to: (i) the coordination geometries and phosphate contacts of the metals; and (ii) the orientation of the His404 nucleophile with respect to the GTP α-phosphate and pyrophosphate leaving group. M2 metal coordination geometry correlates with metal cofactor activity, whereby inhibitory Zn2 and Cu2 assume a tetrahedral configuration and contact only the GTP γ-phosphate, whereas Mn2, Co2, and Ni2 coordination complexes are pentahedral and contact the β- and γ-phosphates. The His404-Nε–Pα–O(α-β) angle is closer to apical in Mn (179°), Co (171°), and Ni (169°) structures than in Zn (160°) and Cu (155°) structures. The octahedral Mn1 geometry in our RtcB•GTP•Mn(2+) structure, in which Mn1 contacts α-, β-, and γ-phosphates, transitions to a tetrahedral configuration after formation of RtcB•(His404)–GMP•Mn(2+) and departure of pyrophosphate. Cold Spring Harbor Laboratory Press 2022-11 /pmc/articles/PMC9745838/ /pubmed/36130078 http://dx.doi.org/10.1261/rna.079327.122 Text en © 2022 Jacewicz et al.; Published by Cold Spring Harbor Laboratory Press for the RNA Society https://creativecommons.org/licenses/by-nc/4.0/This article is distributed exclusively by the RNA Society for the first 12 months after the full-issue publication date (see http://rnajournal.cshlp.org/site/misc/terms.xhtml). After 12 months, it is available under a Creative Commons License (Attribution-NonCommercial 4.0 International), as described at http://creativecommons.org/licenses/by-nc/4.0/ (https://creativecommons.org/licenses/by-nc/4.0/) .
spellingShingle Article
Jacewicz, Agata
Dantuluri, Swathi
Shuman, Stewart
Structures of RNA ligase RtcB in complexes with divalent cations and GTP
title Structures of RNA ligase RtcB in complexes with divalent cations and GTP
title_full Structures of RNA ligase RtcB in complexes with divalent cations and GTP
title_fullStr Structures of RNA ligase RtcB in complexes with divalent cations and GTP
title_full_unstemmed Structures of RNA ligase RtcB in complexes with divalent cations and GTP
title_short Structures of RNA ligase RtcB in complexes with divalent cations and GTP
title_sort structures of rna ligase rtcb in complexes with divalent cations and gtp
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9745838/
https://www.ncbi.nlm.nih.gov/pubmed/36130078
http://dx.doi.org/10.1261/rna.079327.122
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