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result(s) for
"Viral Proteases"
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Oral Nirmatrelvir for High-Risk, Nonhospitalized Adults with Covid-19
by
Abreu, Paula
,
Wisemandle, Wayne
,
Leister-Tebbe, Heidi
in
Administration, Oral
,
Adult
,
Adverse events
2022
Nirmatrelvir is an M
pro
inhibitor active against SARS-CoV-2 and is given with ritonavir, a pharmacokinetic enhancer. In this double-blind, placebo-controlled trial, nirmatrelvir plus ritonavir, when given within 5 days after symptom onset to patients at high risk for disease progression, decreased the risk of Covid-19–related hospitalization or death by 87.8%.
Journal Article
A small molecule compound with an indole moiety inhibits the main protease of SARS-CoV-2 and blocks virus replication
2021
Except remdesivir, no specific antivirals for SARS-CoV-2 infection are currently available. Here, we characterize two small-molecule-compounds, named GRL-1720 and 5h, containing an indoline and indole moiety, respectively, which target the SARS-CoV-2 main protease (M
pro
). We use VeroE6 cell-based assays with RNA-qPCR, cytopathic assays, and immunocytochemistry and show both compounds to block the infectivity of SARS-CoV-2 with EC
50
values of 15 ± 4 and 4.2 ± 0.7 μM for GRL-1720 and 5h, respectively. Remdesivir permitted viral breakthrough at high concentrations; however, compound 5h completely blocks SARS-CoV-2 infection in vitro without viral breakthrough or detectable cytotoxicity. Combination of 5h and remdesivir exhibits synergism against SARS-CoV-2. Additional X-ray structural analysis show that 5h forms a covalent bond with M
pro
and makes polar interactions with multiple active site amino acid residues. The present data suggest that 5h might serve as a lead M
pro
inhibitor for the development of therapeutics for SARS-CoV-2 infection.
Here, using in vitro assays and structural analysis, the authors characterize the anti-SARS-CoV-2 properties of two small molcules, showing these to bind and target the virus main protease (M
pro
), and to exhibit a synergistic antiviral effect when combined with remdesivir in vitro.
Journal Article
Characterising proteolysis during SARS-CoV-2 infection identifies viral cleavage sites and cellular targets with therapeutic potential
by
Emmott, Edward
,
Chiaravalli, Jeanne
,
Gellenoncourt, Stacy
in
631/326/596/4130
,
631/45/468
,
82/58
2021
SARS-CoV-2 is the causative agent behind the COVID-19 pandemic, responsible for over 170 million infections, and over 3.7 million deaths worldwide. Efforts to test, treat and vaccinate against this pathogen all benefit from an improved understanding of the basic biology of SARS-CoV-2. Both viral and cellular proteases play a crucial role in SARS-CoV-2 replication. Here, we study proteolytic cleavage of viral and cellular proteins in two cell line models of SARS-CoV-2 replication using mass spectrometry to identify protein neo-N-termini generated through protease activity. We identify previously unknown cleavage sites in multiple viral proteins, including major antigens S and N: the main targets for vaccine and antibody testing efforts. We discover significant increases in cellular cleavage events consistent with cleavage by SARS-CoV-2 main protease, and identify 14 potential high-confidence substrates of the main and papain-like proteases. We show that siRNA depletion of these cellular proteins inhibits SARS-CoV-2 replication, and that drugs targeting two of these proteins: the tyrosine kinase SRC and Ser/Thr kinase MYLK, show a dose-dependent reduction in SARS-CoV-2 titres. Overall, our study provides a powerful resource to understand proteolysis in the context of viral infection, and to inform the development of targeted strategies to inhibit SARS-CoV-2 and treat COVID-19.
During SARS-CoV-2 replication, viral and cellular proteases play crucial roles and have been shown to be promising anti-viral targets. Here, Meyer et al. apply mass spectrometry to characterize the proteolytic cleavage profile of viral and cellular proteins in vitro.
Journal Article
Substrate recognition and cleavage mechanism of the monkeypox virus core protease
2025
Poxviruses cause severe diseases, including smallpox and mpox, that pose major threats to human health. The poxvirus core protease (Core
Pro
) is essential for viral maturation and is highly conserved in poxviruses, making it an attractive antiviral target
1
. However, the structure of Core
Pro
remains unknown, hampering antiviral development. Here we determined the apo structure of monkeypox virus (MPXV) Core
Pro
and the structure of Core
Pro
in a complex with the inhibitor aloxistatin, a drug candidate for muscular dystrophy
2
. These structures show that Core
Pro
forms a homodimer that features a unique ‘dancing couple’ fold. The catalytic intermediate state of Core
Pro
was characterized by an aldehyde derivative from a natural substrate (
I-G18
). This derivative binds covalently to the catalytic Cys328, shifting the active site of the viral protease from a closed conformation in the apo form to a favourable open conformation upon substrate binding. On the basis of the Core
Pro
–
I-G18
complex, we designed a series of peptidomimetic inhibitors with a nitrile warhead, which could covalently anchor with the catalytic Cys328. These compounds inhibit Core
Pro
with half-maximal inhibitory concentrations of 44.9–100.3 nM, and exhibit potent and broad anti-poxvirus activity. Our studies provide a basis for designing wide-spectrum inhibitors against poxvirus infections.
Structural and biochemical studies of the monkeypox virus core protease show that it exists as an active homodimer and indicate that the substrate-binding sites of core proteases are a promising target for antiviral drugs.
Journal Article
Xanthohumol Is a Potent Pan-Inhibitor of Coronaviruses Targeting Main Protease
by
Li, Li
,
Ding, Siyuan
,
Wei, Zhiqiang
in
3C Viral Proteases - antagonists & inhibitors
,
3C Viral Proteases - chemistry
,
3C Viral Proteases - metabolism
2021
Coronaviruses cause diseases in humans and livestock. The SARS-CoV-2 is infecting millions of human beings, with high morbidity and mortality worldwide. The main protease (Mpro) of coronavirus plays a pivotal role in viral replication and transcription, which, in theory, is an attractive drug target for antiviral drug development. It has been extensively discussed whether Xanthohumol is able to help COVID-19 patients. Here, we report that Xanthohumol, a small molecule in clinical trials from hops (Humulus lupulus), was a potent pan-inhibitor for various coronaviruses by targeting Mpro, for example, betacoronavirus SARS-CoV-2 (IC50 value of 1.53 μM), and alphacoronavirus PEDV (IC50 value of 7.51 μM). Xanthohumol inhibited Mpro activities in the enzymatical assays, while pretreatment with Xanthohumol restricted the SARS-CoV-2 and PEDV replication in Vero-E6 cells. Therefore, Xanthohumol is a potent pan-inhibitor of coronaviruses and an excellent lead compound for further drug development.
Journal Article
Running With Scissors: Evolutionary Conflicts Between Viral Proteases and the Host Immune System
by
Fay, Elizabeth J.
,
Daugherty, Matthew D.
,
Corley, Miles R.
in
Amino acids
,
Animals
,
Coronaviruses
2021
Many pathogens encode proteases that serve to antagonize the host immune system. In particular, viruses with a positive-sense single-stranded RNA genome [(+)ssRNA], including picornaviruses, flaviviruses, and coronaviruses, encode proteases that are not only required for processing viral polyproteins into functional units but also manipulate crucial host cellular processes through their proteolytic activity. Because these proteases must cleave numerous polyprotein sites as well as diverse host targets, evolution of these viral proteases is expected to be highly constrained. However, despite this strong evolutionary constraint, mounting evidence suggests that viral proteases such as picornavirus 3C, flavivirus NS3, and coronavirus 3CL, are engaged in molecular ‘arms races’ with their targeted host factors, resulting in host- and virus-specific determinants of protease cleavage. In cases where protease-mediated cleavage results in host immune inactivation, recurrent host gene evolution can result in avoidance of cleavage by viral proteases. In other cases, such as recently described examples in NLRP1 and CARD8, hosts have evolved ‘tripwire’ sequences that mimic protease cleavage sites and activate an immune response upon cleavage. In both cases, host evolution may be responsible for driving viral protease evolution, helping explain why viral proteases and polyprotein sites are divergent among related viruses despite such strong evolutionary constraint. Importantly, these evolutionary conflicts result in diverse protease-host interactions even within closely related host and viral species, thereby contributing to host range, zoonotic potential, and pathogenicity of viral infection. Such examples highlight the importance of examining viral protease-host interactions through an evolutionary lens.
Journal Article
Natural Phytochemicals, Luteolin and Isoginkgetin, Inhibit 3C Protease and Infection of FMDV, In Silico and In Vitro
by
Kuo, Chih-Jung
,
Chankeeree, Penpitcha
,
Theerawatanasirikul, Sirin
in
3C Viral Proteases - antagonists & inhibitors
,
3C Viral Proteases - chemistry
,
3C Viral Proteases - genetics
2021
Foot-and-mouth-disease virus (FMDV) is a picornavirus that causes a highly contagious disease of cloven-hoofed animals resulting in economic losses worldwide. The 3C protease (3Cpro) is the main protease essential in the picornavirus life cycle, which is an attractive antiviral target. Here, we used computer-aided virtual screening to filter potential anti-FMDV agents from the natural phytochemical compound libraries. The top 23 filtered compounds were examined for anti-FMDV activities by a cell-based assay, two of which possessed antiviral effects. In the viral and post-viral entry experiments, luteolin and isoginkgetin could significantly block FMDV growth with low 50% effective concentrations (EC50). Moreover, these flavonoids could reduce the viral load as determined by RT-qPCR. However, their prophylactic activities were less effective. Both the cell-based and the fluorescence resonance energy transfer (FRET)-based protease assays confirmed that isoginkgetin was a potent FMDV 3Cpro inhibitor with a 50% inhibition concentration (IC50) of 39.03 ± 0.05 and 65.3 ± 1.7 μM, respectively, whereas luteolin was less effective. Analyses of the protein–ligand interactions revealed that both compounds fit in the substrate-binding pocket and reacted to the key enzymatic residues of the 3Cpro. Our findings suggested that luteolin and isoginkgetin are promising antiviral agents for FMDV and other picornaviruses.
Journal Article
The oral protease inhibitor (PF-07321332) protects Syrian hamsters against infection with SARS-CoV-2 variants of concern
2022
There is an urgent need for potent and selective antivirals against SARS-CoV-2. Pfizer developed PF-07321332 (PF-332), a potent inhibitor of the viral main protease (Mpro, 3CLpro) that can be dosed orally and that is in clinical development. We here report that PF-332 exerts equipotent in vitro activity against the four SARS-CoV-2 variants of concerns (VoC) and that it can completely arrest replication of the alpha variant in primary human airway epithelial cells grown at the air-liquid interface. Treatment of Syrian Golden hamsters with PF-332 (250 mg/kg, twice daily) completely protected the animals against intranasal infection with the beta (B.1.351) and delta (B.1.617.2) SARS-CoV-2 variants. Moreover, treatment of SARS-CoV-2 (B.1.617.2) infected animals with PF-332 completely prevented transmission to untreated co-housed sentinels.
There is an urgent need for anti-virals targeting SARS-CoV-2. One of the most promising viral targets is the main protease of SARS-CoV-2, which is essential for viral replication and has no human analogue. Here, Abdelnabi et al. show that one of the most promising anti-virals (PF-07321332), currently in clinical trials, protects against SARS-CoV-2 alpha, beta and delta variant infection and provide evidence of reduced transmission.
Journal Article
In vitro enzyme characterization and several inhibitors for monkeypox virus core protease I7L
by
Mei, Meng
,
Wei, Zigong
,
Wei, Lin
in
Antiviral agents
,
Antiviral Agents - chemistry
,
Antiviral Agents - pharmacology
2025
Abstract
Monkeypox is a zoonotic viral disease caused by the monkeypox virus, a member of the genus Orthopoxvirus within the family Poxviridae, which also includes the variola virus. On 14 August 2024, WHO Director-General declared monkeypox outbreak a public health emergency of international concern. Similar to variola virus core protease K7L, I7L could be identified as a promising target to fight against monkeypox virus. Our work provides a solid foundation as well as specific molecular tools (protease production methods, assay design, inhibitor design) that can now be used to probe the function of I7L in vitro. Notably, in this work, various reported covalent lead compounds for COVID-19 proteases were screened and A68, shikonin, and myricetin were identified as exhibiting high inhibitory activity against I7L. This work not only sheds light on effective inhibitors for the monkeypox virus core protease but also contributes to the broader search for antiviral agents targeting this enzyme.
Our work provides a solid foundation as well as specific molecular tool that can now be used to probe the function of I7L in vitro, and sheded light on effective covalent inhibitors for the monkeypox.
Journal Article