Javascript must be enabled to continue!
SFTSV NSs degrades SAFA via autophagy to suppress SAFA-dependent antiviral response
View through CrossRef
Severe fever with thrombocytopenia syndrome virus (SFTSV), a tick-borne bunyavirus, causes an emerging viral hemorrhagic fever with a high mortality rate. SFTSV nonstructural protein S (NSs) is a virulence factor that sequesters antiviral proteins into autophagic vesicles for degradation to escape host immune response. SAFA (Nuclear scaffold attachment factor A), an RNA sensor, recognizes viral RNA and is retained in the cytoplasm upon RNA virus SFTSV infection and then activates innate immunity. It is unclear whether NSs mediates the escape of SAFA-mediated antiviral response. Here we showed that SFTSV NSs can inhibit SAFA-dependent antiviral response via autophagy. We used SAFA-NLS (the nuclear localization signal) mutant to transfect SAFA knocked-out MEF cells and found that the cytoplasmic SAFA promoted innate immune response to poly(I:C) stimulating. Importantly, NSs interacted with the AAA+ domain of SAFA and retained SAFA in the cytoplasm thereby suppressing SAFA-mediated antiviral response. Mechanistically, SFTSV NSs degraded cytoplasmic SAFA via SQSTM1/p62-dependent autophagy and sequestered SAFA into autophagic vesicles for degradation through promoting the interaction between SAFA and LC3. In conclusion, our results indicate a novel mechanism of SFTSV NSs to escape host antiviral immune response by recruiting SAFA into autophagic flux for degradation.
Public Library of Science (PLoS)
Title: SFTSV NSs degrades SAFA via autophagy to suppress SAFA-dependent antiviral response
Description:
Severe fever with thrombocytopenia syndrome virus (SFTSV), a tick-borne bunyavirus, causes an emerging viral hemorrhagic fever with a high mortality rate.
SFTSV nonstructural protein S (NSs) is a virulence factor that sequesters antiviral proteins into autophagic vesicles for degradation to escape host immune response.
SAFA (Nuclear scaffold attachment factor A), an RNA sensor, recognizes viral RNA and is retained in the cytoplasm upon RNA virus SFTSV infection and then activates innate immunity.
It is unclear whether NSs mediates the escape of SAFA-mediated antiviral response.
Here we showed that SFTSV NSs can inhibit SAFA-dependent antiviral response via autophagy.
We used SAFA-NLS (the nuclear localization signal) mutant to transfect SAFA knocked-out MEF cells and found that the cytoplasmic SAFA promoted innate immune response to poly(I:C) stimulating.
Importantly, NSs interacted with the AAA+ domain of SAFA and retained SAFA in the cytoplasm thereby suppressing SAFA-mediated antiviral response.
Mechanistically, SFTSV NSs degraded cytoplasmic SAFA via SQSTM1/p62-dependent autophagy and sequestered SAFA into autophagic vesicles for degradation through promoting the interaction between SAFA and LC3.
In conclusion, our results indicate a novel mechanism of SFTSV NSs to escape host antiviral immune response by recruiting SAFA into autophagic flux for degradation.
Related Results
Seasonal dynamics of
Haemaphysalis
tick species as SFTSV vectors in South Korea
Seasonal dynamics of
Haemaphysalis
tick species as SFTSV vectors in South Korea
ABSTRACT
Ticks pose a significant public health threat due to their ability to transmit various pathogens, including emerging tic...
Obtaining Patient Information and Anxiety in Novice Nursing Students
During the First Clinical Rotation
Obtaining Patient Information and Anxiety in Novice Nursing Students
During the First Clinical Rotation
Background: Gathering comprehensive patient information at the beginning of the shift is essential for effective nursing practice. Novice nursing students (NSs) feel highly anxious...
ULK1 and ULK2 modulate different aspects of skeletal muscle autophagy
ULK1 and ULK2 modulate different aspects of skeletal muscle autophagy
<p>Macroautophagy, hereafter referred to as autophagy, is a catabolic process involving the degradation of cellular proteins and structures sequestered into a vesicle known a...
Animal Model of Severe Fever With Thrombocytopenia Syndrome Virus Infection
Animal Model of Severe Fever With Thrombocytopenia Syndrome Virus Infection
Severe fever with thrombocytopenia syndrome (SFTS), an emerging life-threatening infectious disease caused by SFTS bunyavirus (SFTSV; genus Bandavirus, family Phenuiviridae, order ...
Tomato Spotted Wilt Virus NSs Protein Supports Infection and Systemic Movement of a Potyvirus and Is a Symptom Determinant
Tomato Spotted Wilt Virus NSs Protein Supports Infection and Systemic Movement of a Potyvirus and Is a Symptom Determinant
Plant viruses are inducers and targets of antiviral RNA silencing. To condition susceptibility, most plant viruses encode silencing suppressor proteins that interfere with antivira...
Kinetics of Serological Response in Patients with Severe Fever with Thrombocytopenia Syndrome
Kinetics of Serological Response in Patients with Severe Fever with Thrombocytopenia Syndrome
Severe fever with thrombocytopenia syndrome (SFTS) is caused by SFTS virus (SFTSV). We investigated the detailed kinetics of serologic response in patients with SFTS. Twenty-eight ...
Severe fever with thrombocytopenia syndrome virus (SFTSV) in Thailand: Seroprevalence study in humans and molecular detection in ticks
Severe fever with thrombocytopenia syndrome virus (SFTSV) in Thailand: Seroprevalence study in humans and molecular detection in ticks
Abstract
Severe fever with thrombocytopenia syndrome virus (SFTSV) is an emerging tick-borne virus with a mortality rate of up to 30%. First identified in China in 2009, it...
U.S. Parents’ Perceptions of Non-Sugar Sweeteners and Non-Sugar Sweetener Front-Of-Package Labels for Children
U.S. Parents’ Perceptions of Non-Sugar Sweeteners and Non-Sugar Sweetener Front-Of-Package Labels for Children
Purpose
To assess U.S. parents’ perceptions of the healthfulness and safety of non-sugar sweeteners (NSS) and examine their views of NSS front-of-package labels...

