Javascript must be enabled to continue!
Mutations affecting cleavage at the p10-capsid protease cleavage site block Rous sarcoma virus replication
View through CrossRef
Abstract
A series of amino acid substitutions (M239F, M239G, P240F, V241G) were placed in the p10-CA protease cleavage site (VVAM*PVVI) to change the rate of cleavage of the junction. The effects of these substitutions on p10-CA cleavage by RSV PR were confirmed by measuring the kinetics of cleavage of model peptide substrates containing the wild type and mutant p10-CA sites. The effects of these substitutions on processing of the Gag polyprotein were determined by labeling Gag transfected COS-1 cells with 35S-Met and -Cys, and immunoprecipitation of Gag and its cleavage products from the media and lysate fractions. All substitutions except M239F caused decreases in detectable Gag processing and subsequent release from cells. Several of the mutants also caused defects in production of the three CA proteins. The p10-CA mutations were subcloned into an RSV proviral vector (RCAN) and introduced into a chick embryo fibroblast cell line (DF-1). All of the mutations except M239F blocked RSV replication. In addition, the effects of the M239F and M239G substitutions on the morphology of released virus particles were examined by electron microscopy. While the M239F particles appeared similar to wild type particles, M239G particles contained cores that were large and misshapen. These results suggest that mutations affecting cleavage at the p10-CA protease cleavage site block RSV replication and can have a negative impact on virus particle morphology.
Springer Science and Business Media LLC
Title: Mutations affecting cleavage at the p10-capsid protease cleavage site block Rous sarcoma virus replication
Description:
Abstract
A series of amino acid substitutions (M239F, M239G, P240F, V241G) were placed in the p10-CA protease cleavage site (VVAM*PVVI) to change the rate of cleavage of the junction.
The effects of these substitutions on p10-CA cleavage by RSV PR were confirmed by measuring the kinetics of cleavage of model peptide substrates containing the wild type and mutant p10-CA sites.
The effects of these substitutions on processing of the Gag polyprotein were determined by labeling Gag transfected COS-1 cells with 35S-Met and -Cys, and immunoprecipitation of Gag and its cleavage products from the media and lysate fractions.
All substitutions except M239F caused decreases in detectable Gag processing and subsequent release from cells.
Several of the mutants also caused defects in production of the three CA proteins.
The p10-CA mutations were subcloned into an RSV proviral vector (RCAN) and introduced into a chick embryo fibroblast cell line (DF-1).
All of the mutations except M239F blocked RSV replication.
In addition, the effects of the M239F and M239G substitutions on the morphology of released virus particles were examined by electron microscopy.
While the M239F particles appeared similar to wild type particles, M239G particles contained cores that were large and misshapen.
These results suggest that mutations affecting cleavage at the p10-CA protease cleavage site block RSV replication and can have a negative impact on virus particle morphology.
Related Results
Pembrolizumab and Sarcoma: A meta-analysis
Pembrolizumab and Sarcoma: A meta-analysis
Abstract
Introduction: Pembrolizumab is a monoclonal antibody that promotes antitumor immunity. This study presents a systematic review and meta-analysis of the efficacy and safety...
Drug resistance during indinavir therapy is caused by mutations in the protease gene and in its Gag substrate cleavage sites
Drug resistance during indinavir therapy is caused by mutations in the protease gene and in its Gag substrate cleavage sites
Two different responses to the therapy were observed in a group of patients receiving the protease inhibitor indinavir. In one, suppression of virus replication occurred and has pe...
Interactions of HIV-1 Capsid with Host Factors and Their Implications for Developing Novel Therapeutics
Interactions of HIV-1 Capsid with Host Factors and Their Implications for Developing Novel Therapeutics
The Human Immunodeficiency Virus type 1 (HIV-1) virion contains a conical shell, termed capsid, encasing the viral RNA genome. After cellular entry of the virion, the capsid is rel...
Homology exists among the transforming sequences of avian and feline sarcoma viruses.
Homology exists among the transforming sequences of avian and feline sarcoma viruses.
Fujinami sarcoma virus (FSV) of chickens does not contain nucleotide sequences related to the src gene of Rous sarcoma virus, but it carries unique sequences of at least 3000 bases...
Analysis of the cleavage site of the human immunodeficiency virus type 1 glycoprotein: requirement of precursor cleavage for glycoprotein incorporation
Analysis of the cleavage site of the human immunodeficiency virus type 1 glycoprotein: requirement of precursor cleavage for glycoprotein incorporation
Endoproteolytic cleavage of the glycoprotein precursor to the mature SU and TM proteins is an essential step in the maturation of retroviral glycoproteins. Cleavage of the precurso...
DNA replication initiation and fidelity : a nanoscale view of the code of life
DNA replication initiation and fidelity : a nanoscale view of the code of life
<p dir="ltr">Every time a cell divides it needs to copy its entire genome. This is a fragile and challenging task, involving billions of DNA base pairs, tightly bound protein...
DNA replication initiation and fidelity : a nanoscale view of the code of life
DNA replication initiation and fidelity : a nanoscale view of the code of life
<p dir="ltr">Every time a cell divides it needs to copy its entire genome. This is a fragile and challenging task, involving billions of DNA base pairs, tightly bound protein...
DNA replication initiation and fidelity: a nanoscale view of the code of life
DNA replication initiation and fidelity: a nanoscale view of the code of life
<p dir="ltr">Every time a cell divides it needs to copy its entire genome. This is a fragile and challenging task, involving billions of DNA base pairs, tightly bound protein...

