Cargando…

PI3K–Akt pathway-independent PIK3AP1 identified as a replication inhibitor of the African swine fever virus based on iTRAQ proteomic analysis

African swine fever (ASF) is a severe infectious disease that has a high global prevalence. The fatality rate of pigs infected with ASF virus (ASFV) is close to 100%; in the absence of a safe and reliable commercial vaccine, this poses a threat to the global pig industry and public health. To better...

Descripción completa

Detalles Bibliográficos
Autores principales: Yang, Bo, Hao, Yu, Yang, Jinke, Zhang, Dajun, Shi, Xijuan, Yang, Xing, Zhao, Dengshuai, Yan, Wenqian, Chen, Lingling, Chen, Guohui, Bie, Xintian, Liu, Xiangtao, Zheng, Haixue, Zhang, Keshan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10194354/
https://www.ncbi.nlm.nih.gov/pubmed/36775023
http://dx.doi.org/10.1016/j.virusres.2023.199052
_version_ 1785043998448025600
author Yang, Bo
Hao, Yu
Yang, Jinke
Zhang, Dajun
Shi, Xijuan
Yang, Xing
Zhao, Dengshuai
Yan, Wenqian
Chen, Lingling
Chen, Guohui
Bie, Xintian
Liu, Xiangtao
Zheng, Haixue
Zhang, Keshan
author_facet Yang, Bo
Hao, Yu
Yang, Jinke
Zhang, Dajun
Shi, Xijuan
Yang, Xing
Zhao, Dengshuai
Yan, Wenqian
Chen, Lingling
Chen, Guohui
Bie, Xintian
Liu, Xiangtao
Zheng, Haixue
Zhang, Keshan
author_sort Yang, Bo
collection PubMed
description African swine fever (ASF) is a severe infectious disease that has a high global prevalence. The fatality rate of pigs infected with ASF virus (ASFV) is close to 100%; in the absence of a safe and reliable commercial vaccine, this poses a threat to the global pig industry and public health. To better understand the interaction of ASFV with its host, isobaric tags for relative and absolute quantitation combined with liquid chromatography-mass spectrometry was used to conduct quantitative proteomic analysis of bone marrow-derived macrophage cells infected with ASFV. Overall, 4579 proteins were identified; 286 of these were significantly upregulated and 69 were significantly downregulated after ASFV infection. Gene Ontology, Kyoto Encyclopedia of Genes and Genomes, and protein-protein interaction network analyses were used to obtain insights into the dynamics and complexity of the ASFV-host interaction. In addition, immunoblotting revealed that the expression of PIK3AP1, RNF114, and FABP5 was upregulated and that of TRAM1 was downregulated after ASFV infection. Overexpression of PIK3AP1 and RNF114 significantly inhibited ASFV replication in vitro, but the suppressive effect of PIK3AP1 on ASFV replication was independent of the PI3K-Akt pathway. Further studies confirmed that ASFV MGF360-9L interacts with PIK3AP1 to reduce its protein expression level. Moreover, LY294002, an inhibitor of the PI3K-Akt pathway, inhibited ASFV replication, indicating the importance of the PI3K-Akt pathway in ASFV infection. This study identified the network of interactions between ASFV and host cells and provides a reference for the development of anti-ASFV strategies and for studying the potential mechanisms and pathogenesis of ASFV infection.
format Online
Article
Text
id pubmed-10194354
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-101943542023-05-19 PI3K–Akt pathway-independent PIK3AP1 identified as a replication inhibitor of the African swine fever virus based on iTRAQ proteomic analysis Yang, Bo Hao, Yu Yang, Jinke Zhang, Dajun Shi, Xijuan Yang, Xing Zhao, Dengshuai Yan, Wenqian Chen, Lingling Chen, Guohui Bie, Xintian Liu, Xiangtao Zheng, Haixue Zhang, Keshan Virus Res Article African swine fever (ASF) is a severe infectious disease that has a high global prevalence. The fatality rate of pigs infected with ASF virus (ASFV) is close to 100%; in the absence of a safe and reliable commercial vaccine, this poses a threat to the global pig industry and public health. To better understand the interaction of ASFV with its host, isobaric tags for relative and absolute quantitation combined with liquid chromatography-mass spectrometry was used to conduct quantitative proteomic analysis of bone marrow-derived macrophage cells infected with ASFV. Overall, 4579 proteins were identified; 286 of these were significantly upregulated and 69 were significantly downregulated after ASFV infection. Gene Ontology, Kyoto Encyclopedia of Genes and Genomes, and protein-protein interaction network analyses were used to obtain insights into the dynamics and complexity of the ASFV-host interaction. In addition, immunoblotting revealed that the expression of PIK3AP1, RNF114, and FABP5 was upregulated and that of TRAM1 was downregulated after ASFV infection. Overexpression of PIK3AP1 and RNF114 significantly inhibited ASFV replication in vitro, but the suppressive effect of PIK3AP1 on ASFV replication was independent of the PI3K-Akt pathway. Further studies confirmed that ASFV MGF360-9L interacts with PIK3AP1 to reduce its protein expression level. Moreover, LY294002, an inhibitor of the PI3K-Akt pathway, inhibited ASFV replication, indicating the importance of the PI3K-Akt pathway in ASFV infection. This study identified the network of interactions between ASFV and host cells and provides a reference for the development of anti-ASFV strategies and for studying the potential mechanisms and pathogenesis of ASFV infection. Elsevier 2023-02-14 /pmc/articles/PMC10194354/ /pubmed/36775023 http://dx.doi.org/10.1016/j.virusres.2023.199052 Text en © 2023 The Author(s) https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Yang, Bo
Hao, Yu
Yang, Jinke
Zhang, Dajun
Shi, Xijuan
Yang, Xing
Zhao, Dengshuai
Yan, Wenqian
Chen, Lingling
Chen, Guohui
Bie, Xintian
Liu, Xiangtao
Zheng, Haixue
Zhang, Keshan
PI3K–Akt pathway-independent PIK3AP1 identified as a replication inhibitor of the African swine fever virus based on iTRAQ proteomic analysis
title PI3K–Akt pathway-independent PIK3AP1 identified as a replication inhibitor of the African swine fever virus based on iTRAQ proteomic analysis
title_full PI3K–Akt pathway-independent PIK3AP1 identified as a replication inhibitor of the African swine fever virus based on iTRAQ proteomic analysis
title_fullStr PI3K–Akt pathway-independent PIK3AP1 identified as a replication inhibitor of the African swine fever virus based on iTRAQ proteomic analysis
title_full_unstemmed PI3K–Akt pathway-independent PIK3AP1 identified as a replication inhibitor of the African swine fever virus based on iTRAQ proteomic analysis
title_short PI3K–Akt pathway-independent PIK3AP1 identified as a replication inhibitor of the African swine fever virus based on iTRAQ proteomic analysis
title_sort pi3k–akt pathway-independent pik3ap1 identified as a replication inhibitor of the african swine fever virus based on itraq proteomic analysis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10194354/
https://www.ncbi.nlm.nih.gov/pubmed/36775023
http://dx.doi.org/10.1016/j.virusres.2023.199052
work_keys_str_mv AT yangbo pi3kaktpathwayindependentpik3ap1identifiedasareplicationinhibitoroftheafricanswinefevervirusbasedonitraqproteomicanalysis
AT haoyu pi3kaktpathwayindependentpik3ap1identifiedasareplicationinhibitoroftheafricanswinefevervirusbasedonitraqproteomicanalysis
AT yangjinke pi3kaktpathwayindependentpik3ap1identifiedasareplicationinhibitoroftheafricanswinefevervirusbasedonitraqproteomicanalysis
AT zhangdajun pi3kaktpathwayindependentpik3ap1identifiedasareplicationinhibitoroftheafricanswinefevervirusbasedonitraqproteomicanalysis
AT shixijuan pi3kaktpathwayindependentpik3ap1identifiedasareplicationinhibitoroftheafricanswinefevervirusbasedonitraqproteomicanalysis
AT yangxing pi3kaktpathwayindependentpik3ap1identifiedasareplicationinhibitoroftheafricanswinefevervirusbasedonitraqproteomicanalysis
AT zhaodengshuai pi3kaktpathwayindependentpik3ap1identifiedasareplicationinhibitoroftheafricanswinefevervirusbasedonitraqproteomicanalysis
AT yanwenqian pi3kaktpathwayindependentpik3ap1identifiedasareplicationinhibitoroftheafricanswinefevervirusbasedonitraqproteomicanalysis
AT chenlingling pi3kaktpathwayindependentpik3ap1identifiedasareplicationinhibitoroftheafricanswinefevervirusbasedonitraqproteomicanalysis
AT chenguohui pi3kaktpathwayindependentpik3ap1identifiedasareplicationinhibitoroftheafricanswinefevervirusbasedonitraqproteomicanalysis
AT biexintian pi3kaktpathwayindependentpik3ap1identifiedasareplicationinhibitoroftheafricanswinefevervirusbasedonitraqproteomicanalysis
AT liuxiangtao pi3kaktpathwayindependentpik3ap1identifiedasareplicationinhibitoroftheafricanswinefevervirusbasedonitraqproteomicanalysis
AT zhenghaixue pi3kaktpathwayindependentpik3ap1identifiedasareplicationinhibitoroftheafricanswinefevervirusbasedonitraqproteomicanalysis
AT zhangkeshan pi3kaktpathwayindependentpik3ap1identifiedasareplicationinhibitoroftheafricanswinefevervirusbasedonitraqproteomicanalysis