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1.
Angewandte Chemie ; 135(14):1-6, 2023.
Article in English | Academic Search Complete | ID: covidwho-2257696

ABSTRACT

Der Ausbruch von COVID‐19 im Dezember 2019 erforderte eine Koordination wissenschaftlicher Beiträge zum Verständnis und zur Bekämpfung des Virus und führte so zur Bildung internationaler Forschungskonsortien. In diesem Viewpoint Article erläutern wir, wie sich die NMR‐Community versammelt hat, um sowohl das Genom als auch das Proteom von SARS‐CoV‐2 strukturell zu untersuchen und für beide die Bindung an niedermolekulare Verbindungen zu testen. Externe Faktoren, einschließlich längerfristiger Lockdowns aufgrund der Pandemie, begünstigten den Übergang von lokaler, auf einzelne Forschungsgruppen ausgerichteter Verbundforschung hin zu hochkoordinierter Forschung mit über 50 Gruppen aus 18 Ländern, die durch digitale Austauschformate unmittelbar gemeinsam Daten analysierten und unveröffentlichte Ergebnisse diskutierten und darüber hinaus Proben untereinander teilten. Wir diskutieren hier einige wichtige Lehren, die nach dem Ende der Pandemie gezogen werden sollten, und Herausforderungen, die es anzugehen gilt. (German) [ FROM AUTHOR] Copyright of Angewandte Chemie is the property of John Wiley & Sons, Inc. and its content may not be copied or emailed to multiple sites or posted to a listserv without the copyright holder's express written permission. However, users may print, download, or email articles for individual use. This may be abridged. No warranty is given about the accuracy of the copy. Users should refer to the original published version of the material for the full . (Copyright applies to all s.)

2.
Sci Rep ; 13(1): 2890, 2023 02 18.
Article in English | MEDLINE | ID: covidwho-2268916

ABSTRACT

Replication of the coronavirus genome starts with the formation of viral RNA-containing double-membrane vesicles (DMV) following viral entry into the host cell. The multi-domain nonstructural protein 3 (nsp3) is the largest protein encoded by the known coronavirus genome and serves as a central component of the viral replication and transcription machinery. Previous studies demonstrated that the highly-conserved C-terminal region of nsp3 is essential for subcellular membrane rearrangement, yet the underlying mechanisms remain elusive. Here we report the crystal structure of the CoV-Y domain, the most C-terminal domain of the SARS-CoV-2 nsp3, at 2.4 Å-resolution. CoV-Y adopts a previously uncharacterized V-shaped fold featuring three distinct subdomains. Sequence alignment and structure prediction suggest that this fold is likely shared by the CoV-Y domains from closely related nsp3 homologs. NMR-based fragment screening combined with molecular docking identifies surface cavities in CoV-Y for interaction with potential ligands and other nsps. These studies provide the first structural view on a complete nsp3 CoV-Y domain, and the molecular framework for understanding the architecture, assembly and function of the nsp3 C-terminal domains in coronavirus replication. Our work illuminates nsp3 as a potential target for therapeutic interventions to aid in the on-going battle against the COVID-19 pandemic and diseases caused by other coronaviruses.


Subject(s)
COVID-19 , SARS-CoV-2 , Humans , SARS-CoV-2/metabolism , Molecular Docking Simulation , Pandemics , Protein Domains , Viral Nonstructural Proteins/genetics
3.
Angew Chem Int Ed Engl ; 62(14): e202217171, 2023 03 27.
Article in English | MEDLINE | ID: covidwho-2229623

ABSTRACT

The outbreak of COVID-19 in December 2019 required the formation of international consortia for a coordinated scientific effort to understand and combat the virus. In this Viewpoint Article, we discuss how the NMR community has gathered to investigate the genome and proteome of SARS-CoV-2 and tested them for binding to low-molecular-weight binders. External factors including extended lockdowns due to the global pandemic character of the viral infection triggered the transition from locally focused collaborative research conducted within individual research groups to digital exchange formats for immediate discussion of unpublished results and data analysis, sample sharing, and coordinated research between more than 50 groups from 18 countries simultaneously. We discuss key lessons that might pertain after the end of the pandemic and challenges that we need to address.


Subject(s)
COVID-19 , Humans , SARS-CoV-2 , Communicable Disease Control , Magnetic Resonance Spectroscopy , Magnetic Resonance Imaging
4.
Berg, Hannes, Wirtz Martin, Maria A.; Altincekic, Nadide, Islam, Alshamleh, Bains, Jasleen Kaur, Blechar, Julius, Ceylan, Betül, de Jesus, Vanessa, Karthikeyan, Dhamotharan, Fuks, Christin, Gande, Santosh L.; Hargittay, Bruno, Hohmann, Katharina F.; Hutchison, Marie T.; Korn, Sophie Marianne, Krishnathas, Robin, Kutz, Felicitas, Linhard, Verena, Matzel, Tobias, Meiser, Nathalie, Niesteruk, Anna, Pyper, Dennis J.; Schulte, Linda, Trucks, Sven, Azzaoui, Kamal, Blommers, Marcel J. J.; Gadiya, Yojana, Karki, Reagon, Zaliani, Andrea, Gribbon, Philip, Marcius da Silva, Almeida, Cristiane Dinis, Anobom, Bula, Anna L.; Bütikofer, Matthias, Caruso, Ícaro Putinhon, Felli, Isabella Caterina, Da Poian, Andrea T.; Gisele Cardoso de, Amorim, Fourkiotis, Nikolaos K.; Gallo, Angelo, Ghosh, Dhiman, Francisco, Gomes‐Neto, Gorbatyuk, Oksana, Hao, Bing, Kurauskas, Vilius, Lecoq, Lauriane, Li, Yunfeng, Nathane Cunha, Mebus‐Antunes, Mompeán, Miguel, Thais Cristtina, Neves‐Martins, Martí, Ninot‐Pedrosa, Pinheiro, Anderson S.; Pontoriero, Letizia, Pustovalova, Yulia, Riek, Roland, Robertson, Angus J.; Abi Saad, Marie Jose, Treviño, Miguel Á, Tsika, Aikaterini C.; Almeida, Fabio C. L.; Bax, Ad, Katherine, Henzler‐Wildman, Hoch, Jeffrey C.; Jaudzems, Kristaps, Laurents, Douglas V.; Orts, Julien, Pierattelli, Roberta, Spyroulias, Georgios A.; Elke, Duchardt‐Ferner, Ferner, Jan, Fürtig, Boris, Hengesbach, Martin, Löhr, Frank, Qureshi, Nusrat, Richter, Christian, Saxena, Krishna, Schlundt, Andreas, Sreeramulu, Sridhar, Wacker, Anna, Weigand, Julia E.; Julia, Wirmer‐Bartoschek, Wöhnert, Jens, Schwalbe, Harald.
Angewandte Chemie ; 134(46), 2022.
Article in English | ProQuest Central | ID: covidwho-2103465

ABSTRACT

SARS‐CoV‐2 (SCoV2) and its variants of concern pose serious challenges to the public health. The variants increased challenges to vaccines, thus necessitating for development of new intervention strategies including anti‐virals. Within the international Covid19‐NMR consortium, we have identified binders targeting the RNA genome of SCoV2. We established protocols for the production and NMR characterization of more than 80 % of all SCoV2 proteins. Here, we performed an NMR screening using a fragment library for binding to 25 SCoV2 proteins and identified hits also against previously unexplored SCoV2 proteins. Computational mapping was used to predict binding sites and identify functional moieties (chemotypes) of the ligands occupying these pockets. Striking consensus was observed between NMR‐detected binding sites of the main protease and the computational procedure. Our investigation provides novel structural and chemical space for structure‐based drug design against the SCoV2 proteome.

5.
J Mol Biol ; 434(16): 167720, 2022 08 30.
Article in English | MEDLINE | ID: covidwho-2028233

ABSTRACT

Viral infection in cells triggers a cascade of molecular defense mechanisms to maintain host-cell homoeostasis. One of these mechanisms is ADP-ribosylation, a fundamental post-translational modification (PTM) characterized by the addition of ADP-ribose (ADPr) on substrates. Poly(ADP-ribose) polymerases (PARPs) are implicated in this process and they perform ADP-ribosylation on host and pathogen proteins. Some viral families contain structural motifs that can reverse this PTM. These motifs known as macro domains (MDs) are evolutionarily conserved protein domains found in all kingdoms of life. They are divided in different classes with the viral belonging to Macro-D-type class because of their properties to recognize and revert the ADP-ribosylation. Viral MDs are potential pharmaceutical targets, capable to counteract host immune response. Sequence and structural homology between viral and human MDs are an impediment for the development of new active compounds against their function. Remdesivir, is a drug administrated in viral infections inhibiting viral replication through RNA-dependent RNA polymerase (RdRp). Herein, GS-441524, the active metabolite of the remdesivir, is tested as a hydrolase inhibitor for several viral MDs and for its binding to human homologs found in PARPs. This study presents biochemical and biophysical studies, which indicate that GS-441524 selectively modifies SARS-CoV-2 MD de-MARylation activity, while it does not interact with hPARP14 MD2 and hPARP15 MD2. The structural investigation of MD•GS-441524 complexes, using solution NMR and X-ray crystallography, discloses the impact of certain amino acids in ADPr binding cavity suggesting that F360 and its adjacent residues tune the selective binding of the inhibitor to SARS-CoV-2 MD.


Subject(s)
ADP-Ribosylation , Adenosine/analogs & derivatives , Coronavirus Protease Inhibitors , Poly(ADP-ribose) Polymerases , SARS-CoV-2 , ADP-Ribosylation/drug effects , Adenosine/chemistry , Adenosine/pharmacology , Adenosine Diphosphate Ribose/chemistry , Coronavirus Protease Inhibitors/chemistry , Coronavirus Protease Inhibitors/pharmacology , Humans , Poly(ADP-ribose) Polymerases/chemistry , Protein Binding , Protein Domains , SARS-CoV-2/drug effects , SARS-CoV-2/enzymology
6.
Biomol NMR Assign ; 15(1): 165-171, 2021 04.
Article in English | MEDLINE | ID: covidwho-1384622

ABSTRACT

SARS-CoV-2 RNA, nsP3c (non-structural Protein3c) spans the sequence of the so-called SARS Unique Domains (SUDs), first observed in SARS-CoV. Although the function of this viral protein is not fully elucidated, it is believed that it is crucial for the formation of the replication/transcription viral complex (RTC) and of the interaction of various viral "components" with the host cell; thus, it is essential for the entire viral life cycle. The first two SUDs, the so-called SUD-N (the N-terminal domain) and SUD-M (domain following SUD-N) domains, exhibit topological and conformational features that resemble the nsP3b macro (or "X") domain. Indeed, they are all folded in a three-layer α/ß/α sandwich structure, as revealed through crystallographic structural investigation of SARS-CoV SUDs, and they have been attributed to different substrate selectivity as they selectively bind to oligonucleotides. On the other hand, the C-terminal SUD (SUD-C) exhibit much lower sequence similarities compared to the SUD-N & SUD-M, as reported in previous crystallographic and NMR studies of SARS-CoV. In the absence of the 3D structures of SARS-CoV-2, we report herein the almost complete NMR backbone and side-chain resonance assignment (1H,13C,15N) of SARS-CoV-2 SUD-M and SUD-C proteins, and the NMR chemical shift-based prediction of their secondary structure elements. These NMR data will set the base for further understanding at the atomic-level conformational dynamics of these proteins and will allow the effective screening of a large number of small molecules as binders with potential biological impact on their function.


Subject(s)
Coronavirus Papain-Like Proteases/chemistry , Magnetic Resonance Spectroscopy , SARS-CoV-2/chemistry , Carbon Isotopes , Hydrogen , Nitrogen Isotopes , Protein Binding , Protein Domains , Protein Structure, Secondary
7.
Biomol NMR Assign ; 15(1): 85-89, 2021 04.
Article in English | MEDLINE | ID: covidwho-1384621

ABSTRACT

Among the proteins encoded by the SARS-CoV-2 RNA, nsP3 (non-structural Protein3) is the largest multi-domain protein. Its role is multifaceted and important for the viral life cycle. Nonetheless, regarding the specific role of each domain there are many aspects of their function that have to be investigated. SARS Unique Domains (SUDs), constitute the nsP3c region of the nsP3, and were observed for the first time in SARS-CoV. Two of them, namely SUD-N (the first SUD) and the SUD-M (sequential to SUD-N), exhibit structural homology with nsP3b ("X" or macro domain); indeed all of them are folded in a three-layer α/ß/α sandwich. On the contrary, they do not exhibit functional similarities, like ADP-ribose binding properties and ADP-ribose hydrolase activity. There are reports that suggest that these two SUDs may exhibit a binding selectivity towards G-oligonucleotides, a feature which may contribute to the characterization of their role in the formation of the replication/transcription viral complex (RTC) and of the interaction of various viral "components" with the host cell. While the structures of these domains of SARS-CoV-2 have not been determined yet, SUDs interaction with oligonucleotides and/or RNA molecules may provide a platform for drug discovery. Here, we report the almost complete NMR backbone and side-chain resonance assignment (1H,13C,15N) of SARS-CoV-2 SUD-N protein, and the NMR chemical shift-based prediction of the secondary structure elements. These data may be exploited for its 3D structure determination and the screening of chemical compounds libraries, which may alter SUD-N function.


Subject(s)
Coronavirus Papain-Like Proteases/chemistry , Magnetic Resonance Spectroscopy , SARS-CoV-2/chemistry , Carbon Isotopes , Drug Design , Hydrogen , Nitrogen Isotopes , Oligonucleotides/chemistry , Protein Domains , Protein Structure, Secondary , Virus Replication
8.
Angew Chem Int Ed Engl ; 60(35): 19191-19200, 2021 08 23.
Article in English | MEDLINE | ID: covidwho-1279344

ABSTRACT

SARS-CoV-2 contains a positive single-stranded RNA genome of approximately 30 000 nucleotides. Within this genome, 15 RNA elements were identified as conserved between SARS-CoV and SARS-CoV-2. By nuclear magnetic resonance (NMR) spectroscopy, we previously determined that these elements fold independently, in line with data from in vivo and ex-vivo structural probing experiments. These elements contain non-base-paired regions that potentially harbor ligand-binding pockets. Here, we performed an NMR-based screening of a poised fragment library of 768 compounds for binding to these RNAs, employing three different 1 H-based 1D NMR binding assays. The screening identified common as well as RNA-element specific hits. The results allow selection of the most promising of the 15 RNA elements as putative drug targets. Based on the identified hits, we derive key functional units and groups in ligands for effective targeting of the RNA of SARS-CoV-2.


Subject(s)
Genome , RNA, Viral/metabolism , SARS-CoV-2/genetics , Small Molecule Libraries/metabolism , Drug Evaluation, Preclinical , Ligands , Molecular Structure , Nucleic Acid Conformation , Proton Magnetic Resonance Spectroscopy , RNA, Viral/chemistry , Small Molecule Libraries/chemistry
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