Cargando…

BK Polyomavirus Evades Innate Immune Sensing by Disrupting the Mitochondrial Network and Promotes Mitophagy

Immune escape contributes to viral persistence, yet little is known about human polyomaviruses. BK-polyomavirus (BKPyV) asymptomatically infects 90% of humans but causes premature allograft failure in kidney transplant patients. Despite virus-specific T cells and neutralizing antibodies, BKPyV persi...

Descripción completa

Detalles Bibliográficos
Autores principales: Manzetti, Julia, Weissbach, Fabian H., Graf, Fabrice E., Unterstab, Gunhild, Wernli, Marion, Hopfer, Helmut, Drachenberg, Cinthia B., Rinaldo, Christine Hanssen, Hirsch, Hans H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7326741/
https://www.ncbi.nlm.nih.gov/pubmed/32599557
http://dx.doi.org/10.1016/j.isci.2020.101257
_version_ 1783552401640259584
author Manzetti, Julia
Weissbach, Fabian H.
Graf, Fabrice E.
Unterstab, Gunhild
Wernli, Marion
Hopfer, Helmut
Drachenberg, Cinthia B.
Rinaldo, Christine Hanssen
Hirsch, Hans H.
author_facet Manzetti, Julia
Weissbach, Fabian H.
Graf, Fabrice E.
Unterstab, Gunhild
Wernli, Marion
Hopfer, Helmut
Drachenberg, Cinthia B.
Rinaldo, Christine Hanssen
Hirsch, Hans H.
author_sort Manzetti, Julia
collection PubMed
description Immune escape contributes to viral persistence, yet little is known about human polyomaviruses. BK-polyomavirus (BKPyV) asymptomatically infects 90% of humans but causes premature allograft failure in kidney transplant patients. Despite virus-specific T cells and neutralizing antibodies, BKPyV persists in kidneys and evades immune control as evidenced by urinary shedding in immunocompetent individuals. Here, we report that BKPyV disrupts the mitochondrial network and membrane potential when expressing the 66aa-long agnoprotein during late replication. Agnoprotein is necessary and sufficient, using its amino-terminal and central domain for mitochondrial targeting and network disruption, respectively. Agnoprotein impairs nuclear IRF3-translocation, interferon-beta expression, and promotes p62/SQSTM1-mitophagy. Agnoprotein-mutant viruses unable to disrupt mitochondria show reduced replication and increased interferon-beta expression but can be rescued by type-I interferon blockade, TBK1-inhibition, or CoCl(2)-treatment. Mitochondrial fragmentation and p62/SQSTM1-autophagy occur in allograft biopsies of kidney transplant patients with BKPyV nephropathy. JCPyV and SV40 infection similarly disrupt mitochondrial networks, indicating a conserved mechanism facilitating polyomavirus persistence and post-transplant disease.
format Online
Article
Text
id pubmed-7326741
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-73267412020-07-06 BK Polyomavirus Evades Innate Immune Sensing by Disrupting the Mitochondrial Network and Promotes Mitophagy Manzetti, Julia Weissbach, Fabian H. Graf, Fabrice E. Unterstab, Gunhild Wernli, Marion Hopfer, Helmut Drachenberg, Cinthia B. Rinaldo, Christine Hanssen Hirsch, Hans H. iScience Article Immune escape contributes to viral persistence, yet little is known about human polyomaviruses. BK-polyomavirus (BKPyV) asymptomatically infects 90% of humans but causes premature allograft failure in kidney transplant patients. Despite virus-specific T cells and neutralizing antibodies, BKPyV persists in kidneys and evades immune control as evidenced by urinary shedding in immunocompetent individuals. Here, we report that BKPyV disrupts the mitochondrial network and membrane potential when expressing the 66aa-long agnoprotein during late replication. Agnoprotein is necessary and sufficient, using its amino-terminal and central domain for mitochondrial targeting and network disruption, respectively. Agnoprotein impairs nuclear IRF3-translocation, interferon-beta expression, and promotes p62/SQSTM1-mitophagy. Agnoprotein-mutant viruses unable to disrupt mitochondria show reduced replication and increased interferon-beta expression but can be rescued by type-I interferon blockade, TBK1-inhibition, or CoCl(2)-treatment. Mitochondrial fragmentation and p62/SQSTM1-autophagy occur in allograft biopsies of kidney transplant patients with BKPyV nephropathy. JCPyV and SV40 infection similarly disrupt mitochondrial networks, indicating a conserved mechanism facilitating polyomavirus persistence and post-transplant disease. Elsevier 2020-06-10 /pmc/articles/PMC7326741/ /pubmed/32599557 http://dx.doi.org/10.1016/j.isci.2020.101257 Text en © 2020 The Author(s) http://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
Manzetti, Julia
Weissbach, Fabian H.
Graf, Fabrice E.
Unterstab, Gunhild
Wernli, Marion
Hopfer, Helmut
Drachenberg, Cinthia B.
Rinaldo, Christine Hanssen
Hirsch, Hans H.
BK Polyomavirus Evades Innate Immune Sensing by Disrupting the Mitochondrial Network and Promotes Mitophagy
title BK Polyomavirus Evades Innate Immune Sensing by Disrupting the Mitochondrial Network and Promotes Mitophagy
title_full BK Polyomavirus Evades Innate Immune Sensing by Disrupting the Mitochondrial Network and Promotes Mitophagy
title_fullStr BK Polyomavirus Evades Innate Immune Sensing by Disrupting the Mitochondrial Network and Promotes Mitophagy
title_full_unstemmed BK Polyomavirus Evades Innate Immune Sensing by Disrupting the Mitochondrial Network and Promotes Mitophagy
title_short BK Polyomavirus Evades Innate Immune Sensing by Disrupting the Mitochondrial Network and Promotes Mitophagy
title_sort bk polyomavirus evades innate immune sensing by disrupting the mitochondrial network and promotes mitophagy
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7326741/
https://www.ncbi.nlm.nih.gov/pubmed/32599557
http://dx.doi.org/10.1016/j.isci.2020.101257
work_keys_str_mv AT manzettijulia bkpolyomavirusevadesinnateimmunesensingbydisruptingthemitochondrialnetworkandpromotesmitophagy
AT weissbachfabianh bkpolyomavirusevadesinnateimmunesensingbydisruptingthemitochondrialnetworkandpromotesmitophagy
AT graffabricee bkpolyomavirusevadesinnateimmunesensingbydisruptingthemitochondrialnetworkandpromotesmitophagy
AT unterstabgunhild bkpolyomavirusevadesinnateimmunesensingbydisruptingthemitochondrialnetworkandpromotesmitophagy
AT wernlimarion bkpolyomavirusevadesinnateimmunesensingbydisruptingthemitochondrialnetworkandpromotesmitophagy
AT hopferhelmut bkpolyomavirusevadesinnateimmunesensingbydisruptingthemitochondrialnetworkandpromotesmitophagy
AT drachenbergcinthiab bkpolyomavirusevadesinnateimmunesensingbydisruptingthemitochondrialnetworkandpromotesmitophagy
AT rinaldochristinehanssen bkpolyomavirusevadesinnateimmunesensingbydisruptingthemitochondrialnetworkandpromotesmitophagy
AT hirschhansh bkpolyomavirusevadesinnateimmunesensingbydisruptingthemitochondrialnetworkandpromotesmitophagy