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New Details of HCV NS3/4A Proteinase Functionality Revealed by a High-Throughput Cleavage Assay

BACKGROUND: The hepatitis C virus (HCV) genome encodes a long polyprotein, which is processed by host cell and viral proteases to the individual structural and non-structural (NS) proteins. HCV NS3/4A serine proteinase (NS3/4A) is a non-covalent heterodimer of the N-terminal, ∼180-residue portion of...

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Autores principales: Shiryaev, Sergey A., Thomsen, Elliot R., Cieplak, Piotr, Chudin, Eugene, Cheltsov, Anton V., Chee, Mark S., Kozlov, Igor A., Strongin, Alex Y.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3338790/
https://www.ncbi.nlm.nih.gov/pubmed/22558217
http://dx.doi.org/10.1371/journal.pone.0035759
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author Shiryaev, Sergey A.
Thomsen, Elliot R.
Cieplak, Piotr
Chudin, Eugene
Cheltsov, Anton V.
Chee, Mark S.
Kozlov, Igor A.
Strongin, Alex Y.
author_facet Shiryaev, Sergey A.
Thomsen, Elliot R.
Cieplak, Piotr
Chudin, Eugene
Cheltsov, Anton V.
Chee, Mark S.
Kozlov, Igor A.
Strongin, Alex Y.
author_sort Shiryaev, Sergey A.
collection PubMed
description BACKGROUND: The hepatitis C virus (HCV) genome encodes a long polyprotein, which is processed by host cell and viral proteases to the individual structural and non-structural (NS) proteins. HCV NS3/4A serine proteinase (NS3/4A) is a non-covalent heterodimer of the N-terminal, ∼180-residue portion of the 631-residue NS3 protein with the NS4A co-factor. NS3/4A cleaves the polyprotein sequence at four specific regions. NS3/4A is essential for viral replication and has been considered an attractive drug target. METHODOLOGY/PRINCIPAL FINDINGS: Using a novel multiplex cleavage assay and over 2,660 peptide sequences derived from the polyprotein and from introducing mutations into the known NS3/4A cleavage sites, we obtained the first detailed fingerprint of NS3/4A cleavage preferences. Our data identified structural requirements illuminating the importance of both the short-range (P1–P1′) and long-range (P6-P5) interactions in defining the NS3/4A substrate cleavage specificity. A newly observed feature of NS3/4A was a high frequency of either Asp or Glu at both P5 and P6 positions in a subset of the most efficient NS3/4A substrates. In turn, aberrations of this negatively charged sequence such as an insertion of a positively charged or hydrophobic residue between the negatively charged residues resulted in inefficient substrates. Because NS5B misincorporates bases at a high rate, HCV constantly mutates as it replicates. Our analysis revealed that mutations do not interfere with polyprotein processing in over 5,000 HCV isolates indicating a pivotal role of NS3/4A proteolysis in the virus life cycle. CONCLUSIONS/SIGNIFICANCE: Our multiplex assay technology in light of the growing appreciation of the role of proteolytic processes in human health and disease will likely have widespread applications in the proteolysis research field and provide new therapeutic opportunities.
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spelling pubmed-33387902012-05-03 New Details of HCV NS3/4A Proteinase Functionality Revealed by a High-Throughput Cleavage Assay Shiryaev, Sergey A. Thomsen, Elliot R. Cieplak, Piotr Chudin, Eugene Cheltsov, Anton V. Chee, Mark S. Kozlov, Igor A. Strongin, Alex Y. PLoS One Research Article BACKGROUND: The hepatitis C virus (HCV) genome encodes a long polyprotein, which is processed by host cell and viral proteases to the individual structural and non-structural (NS) proteins. HCV NS3/4A serine proteinase (NS3/4A) is a non-covalent heterodimer of the N-terminal, ∼180-residue portion of the 631-residue NS3 protein with the NS4A co-factor. NS3/4A cleaves the polyprotein sequence at four specific regions. NS3/4A is essential for viral replication and has been considered an attractive drug target. METHODOLOGY/PRINCIPAL FINDINGS: Using a novel multiplex cleavage assay and over 2,660 peptide sequences derived from the polyprotein and from introducing mutations into the known NS3/4A cleavage sites, we obtained the first detailed fingerprint of NS3/4A cleavage preferences. Our data identified structural requirements illuminating the importance of both the short-range (P1–P1′) and long-range (P6-P5) interactions in defining the NS3/4A substrate cleavage specificity. A newly observed feature of NS3/4A was a high frequency of either Asp or Glu at both P5 and P6 positions in a subset of the most efficient NS3/4A substrates. In turn, aberrations of this negatively charged sequence such as an insertion of a positively charged or hydrophobic residue between the negatively charged residues resulted in inefficient substrates. Because NS5B misincorporates bases at a high rate, HCV constantly mutates as it replicates. Our analysis revealed that mutations do not interfere with polyprotein processing in over 5,000 HCV isolates indicating a pivotal role of NS3/4A proteolysis in the virus life cycle. CONCLUSIONS/SIGNIFICANCE: Our multiplex assay technology in light of the growing appreciation of the role of proteolytic processes in human health and disease will likely have widespread applications in the proteolysis research field and provide new therapeutic opportunities. Public Library of Science 2012-04-27 /pmc/articles/PMC3338790/ /pubmed/22558217 http://dx.doi.org/10.1371/journal.pone.0035759 Text en Shiryaev et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Shiryaev, Sergey A.
Thomsen, Elliot R.
Cieplak, Piotr
Chudin, Eugene
Cheltsov, Anton V.
Chee, Mark S.
Kozlov, Igor A.
Strongin, Alex Y.
New Details of HCV NS3/4A Proteinase Functionality Revealed by a High-Throughput Cleavage Assay
title New Details of HCV NS3/4A Proteinase Functionality Revealed by a High-Throughput Cleavage Assay
title_full New Details of HCV NS3/4A Proteinase Functionality Revealed by a High-Throughput Cleavage Assay
title_fullStr New Details of HCV NS3/4A Proteinase Functionality Revealed by a High-Throughput Cleavage Assay
title_full_unstemmed New Details of HCV NS3/4A Proteinase Functionality Revealed by a High-Throughput Cleavage Assay
title_short New Details of HCV NS3/4A Proteinase Functionality Revealed by a High-Throughput Cleavage Assay
title_sort new details of hcv ns3/4a proteinase functionality revealed by a high-throughput cleavage assay
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3338790/
https://www.ncbi.nlm.nih.gov/pubmed/22558217
http://dx.doi.org/10.1371/journal.pone.0035759
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