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First thermostable CLIP-tag by rational design applied to an archaeal O(6)-alkyl-guanine-DNA-alkyl-transferase

Self-labelling protein tags (SLPs) are resourceful tools that revolutionized sensor imaging, having the versatile ability of being genetically fused with any protein of interest and undergoing activation with alternative probes specifically designed for each variant (namely, SNAP-tag, CLIP-tag and H...

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Autores principales: Merlo, Rosa, Mattossovich, Rosanna, Genta, Marianna, Valenti, Anna, Di Mauro, Giovanni, Minassi, Alberto, Miggiano, Riccardo, Perugino, Giuseppe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Research Network of Computational and Structural Biotechnology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9519396/
https://www.ncbi.nlm.nih.gov/pubmed/36212535
http://dx.doi.org/10.1016/j.csbj.2022.09.015
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author Merlo, Rosa
Mattossovich, Rosanna
Genta, Marianna
Valenti, Anna
Di Mauro, Giovanni
Minassi, Alberto
Miggiano, Riccardo
Perugino, Giuseppe
author_facet Merlo, Rosa
Mattossovich, Rosanna
Genta, Marianna
Valenti, Anna
Di Mauro, Giovanni
Minassi, Alberto
Miggiano, Riccardo
Perugino, Giuseppe
author_sort Merlo, Rosa
collection PubMed
description Self-labelling protein tags (SLPs) are resourceful tools that revolutionized sensor imaging, having the versatile ability of being genetically fused with any protein of interest and undergoing activation with alternative probes specifically designed for each variant (namely, SNAP-tag, CLIP-tag and Halo-tag). Commercially available SLPs are highly useful in studying molecular aspects of mesophilic organisms, while they fail in characterizing model organisms that thrive in harsh conditions. By applying an integrated computational and structural approach, we designed a engineered variant of the alkylguanine-DNA-alkyl-transferase (OGT) from the hyper-thermophilic archaeon Saccharolobus solfataricus (SsOGT), with no DNA-binding activity, able to covalently react with O(6)-benzyl-cytosine (BC-) derivatives, obtaining the first thermostable CLIP-tag, named SsOGT-MC(8). The presented construct is able to recognize and to covalently bind BC- substrates with a marked specificity, displaying a very low activity on orthogonal benzyl-guanine (BG-) substrate and showing a remarkable thermal stability that broadens the applicability of SLPs. The rational mutagenesis that, starting from SsOGT, led to the production of SsOGT-MC(8) was first evaluated by structural predictions to precisely design the chimeric construct, by mutating specific residues involved in protein stability and substrate recognition. The final construct was further validated by biochemical characterization and X-ray crystallography, allowing us to present here the first structural model of a CLIP-tag establishing the molecular determinants of its activity, as well as proposing a general approach for the rational engineering of any O(6)-alkylguanine-DNA-alkyl-transferase turning it into a SNAP- and a CLIP-tag variant.
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spelling pubmed-95193962022-10-06 First thermostable CLIP-tag by rational design applied to an archaeal O(6)-alkyl-guanine-DNA-alkyl-transferase Merlo, Rosa Mattossovich, Rosanna Genta, Marianna Valenti, Anna Di Mauro, Giovanni Minassi, Alberto Miggiano, Riccardo Perugino, Giuseppe Comput Struct Biotechnol J Research Article Self-labelling protein tags (SLPs) are resourceful tools that revolutionized sensor imaging, having the versatile ability of being genetically fused with any protein of interest and undergoing activation with alternative probes specifically designed for each variant (namely, SNAP-tag, CLIP-tag and Halo-tag). Commercially available SLPs are highly useful in studying molecular aspects of mesophilic organisms, while they fail in characterizing model organisms that thrive in harsh conditions. By applying an integrated computational and structural approach, we designed a engineered variant of the alkylguanine-DNA-alkyl-transferase (OGT) from the hyper-thermophilic archaeon Saccharolobus solfataricus (SsOGT), with no DNA-binding activity, able to covalently react with O(6)-benzyl-cytosine (BC-) derivatives, obtaining the first thermostable CLIP-tag, named SsOGT-MC(8). The presented construct is able to recognize and to covalently bind BC- substrates with a marked specificity, displaying a very low activity on orthogonal benzyl-guanine (BG-) substrate and showing a remarkable thermal stability that broadens the applicability of SLPs. The rational mutagenesis that, starting from SsOGT, led to the production of SsOGT-MC(8) was first evaluated by structural predictions to precisely design the chimeric construct, by mutating specific residues involved in protein stability and substrate recognition. The final construct was further validated by biochemical characterization and X-ray crystallography, allowing us to present here the first structural model of a CLIP-tag establishing the molecular determinants of its activity, as well as proposing a general approach for the rational engineering of any O(6)-alkylguanine-DNA-alkyl-transferase turning it into a SNAP- and a CLIP-tag variant. Research Network of Computational and Structural Biotechnology 2022-09-18 /pmc/articles/PMC9519396/ /pubmed/36212535 http://dx.doi.org/10.1016/j.csbj.2022.09.015 Text en © 2022 The Author(s) https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Merlo, Rosa
Mattossovich, Rosanna
Genta, Marianna
Valenti, Anna
Di Mauro, Giovanni
Minassi, Alberto
Miggiano, Riccardo
Perugino, Giuseppe
First thermostable CLIP-tag by rational design applied to an archaeal O(6)-alkyl-guanine-DNA-alkyl-transferase
title First thermostable CLIP-tag by rational design applied to an archaeal O(6)-alkyl-guanine-DNA-alkyl-transferase
title_full First thermostable CLIP-tag by rational design applied to an archaeal O(6)-alkyl-guanine-DNA-alkyl-transferase
title_fullStr First thermostable CLIP-tag by rational design applied to an archaeal O(6)-alkyl-guanine-DNA-alkyl-transferase
title_full_unstemmed First thermostable CLIP-tag by rational design applied to an archaeal O(6)-alkyl-guanine-DNA-alkyl-transferase
title_short First thermostable CLIP-tag by rational design applied to an archaeal O(6)-alkyl-guanine-DNA-alkyl-transferase
title_sort first thermostable clip-tag by rational design applied to an archaeal o(6)-alkyl-guanine-dna-alkyl-transferase
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9519396/
https://www.ncbi.nlm.nih.gov/pubmed/36212535
http://dx.doi.org/10.1016/j.csbj.2022.09.015
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