Cargando…

ESAT-6 undergoes self-association at phagosomal pH and an ESAT-6 specific nanobody restricts M. tuberculosis growth in macrophages

Mycobacterium tuberculosis (Mtb) is known to survive within macrophages by compromising the integrity of the phagosomal compartment in which it resides. This activity primarily relies on the ESX-1 secretion system, predominantly involving the protein duo ESAT-6 and CFP-10. CFP-10 likely acts as a ch...

Descripción completa

Detalles Bibliográficos
Autores principales: Bates, Timothy A, Trank-Greene, Mila, Nguyenla, Xammy, Anastas, Aidan, Merutka, Ilaria R, Dixon, Shandee D, Shumate, Anthony, Groncki, Abigail R, Parson, Matthew AH, Barklis, Eric, Burke, John E, Shinde, Ujwal, Ploegh, Hidde L, Tafesse, Fikadu G
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10462100/
https://www.ncbi.nlm.nih.gov/pubmed/37645775
http://dx.doi.org/10.1101/2023.08.16.553641
_version_ 1785097988839833600
author Bates, Timothy A
Trank-Greene, Mila
Nguyenla, Xammy
Anastas, Aidan
Merutka, Ilaria R
Dixon, Shandee D
Shumate, Anthony
Groncki, Abigail R
Parson, Matthew AH
Barklis, Eric
Burke, John E
Shinde, Ujwal
Ploegh, Hidde L
Tafesse, Fikadu G
author_facet Bates, Timothy A
Trank-Greene, Mila
Nguyenla, Xammy
Anastas, Aidan
Merutka, Ilaria R
Dixon, Shandee D
Shumate, Anthony
Groncki, Abigail R
Parson, Matthew AH
Barklis, Eric
Burke, John E
Shinde, Ujwal
Ploegh, Hidde L
Tafesse, Fikadu G
author_sort Bates, Timothy A
collection PubMed
description Mycobacterium tuberculosis (Mtb) is known to survive within macrophages by compromising the integrity of the phagosomal compartment in which it resides. This activity primarily relies on the ESX-1 secretion system, predominantly involving the protein duo ESAT-6 and CFP-10. CFP-10 likely acts as a chaperone, while ESAT-6 likely disrupts phagosomal membrane stability via a largely unknown mechanism. we employ a series of biochemical analyses, protein modeling techniques, and a novel ESAT-6-specific nanobody to gain insight into the ESAT-6’s mode of action. First, we measure the binding kinetics of the tight 1:1 complex formed by ESAT-6 and CFP-10 at neutral pH. Subsequently, we demonstrate a rapid selfassociation of ESAT-6 into large complexes under acidic conditions, leading to the identification of a stable tetrameric ESAT-6 species. Using molecular dynamics simulations, we pinpoint the most probable interaction interface. Furthermore, we show that cytoplasmic expression of an anti-ESAT-6 nanobody blocks Mtb replication, thereby underlining the pivotal role of ESAT-6 in intracellular survival. Together, these data suggest that ESAT-6 acts by a pH dependent mechanism to establish two-way communication between the cytoplasm and the Mtb-containing phagosome.
format Online
Article
Text
id pubmed-10462100
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Cold Spring Harbor Laboratory
record_format MEDLINE/PubMed
spelling pubmed-104621002023-08-29 ESAT-6 undergoes self-association at phagosomal pH and an ESAT-6 specific nanobody restricts M. tuberculosis growth in macrophages Bates, Timothy A Trank-Greene, Mila Nguyenla, Xammy Anastas, Aidan Merutka, Ilaria R Dixon, Shandee D Shumate, Anthony Groncki, Abigail R Parson, Matthew AH Barklis, Eric Burke, John E Shinde, Ujwal Ploegh, Hidde L Tafesse, Fikadu G bioRxiv Article Mycobacterium tuberculosis (Mtb) is known to survive within macrophages by compromising the integrity of the phagosomal compartment in which it resides. This activity primarily relies on the ESX-1 secretion system, predominantly involving the protein duo ESAT-6 and CFP-10. CFP-10 likely acts as a chaperone, while ESAT-6 likely disrupts phagosomal membrane stability via a largely unknown mechanism. we employ a series of biochemical analyses, protein modeling techniques, and a novel ESAT-6-specific nanobody to gain insight into the ESAT-6’s mode of action. First, we measure the binding kinetics of the tight 1:1 complex formed by ESAT-6 and CFP-10 at neutral pH. Subsequently, we demonstrate a rapid selfassociation of ESAT-6 into large complexes under acidic conditions, leading to the identification of a stable tetrameric ESAT-6 species. Using molecular dynamics simulations, we pinpoint the most probable interaction interface. Furthermore, we show that cytoplasmic expression of an anti-ESAT-6 nanobody blocks Mtb replication, thereby underlining the pivotal role of ESAT-6 in intracellular survival. Together, these data suggest that ESAT-6 acts by a pH dependent mechanism to establish two-way communication between the cytoplasm and the Mtb-containing phagosome. Cold Spring Harbor Laboratory 2023-08-17 /pmc/articles/PMC10462100/ /pubmed/37645775 http://dx.doi.org/10.1101/2023.08.16.553641 Text en https://creativecommons.org/licenses/by/4.0/This work is licensed under a Creative Commons Attribution 4.0 International License (https://creativecommons.org/licenses/by/4.0/) , which allows reusers to distribute, remix, adapt, and build upon the material in any medium or format, so long as attribution is given to the creator. The license allows for commercial use.
spellingShingle Article
Bates, Timothy A
Trank-Greene, Mila
Nguyenla, Xammy
Anastas, Aidan
Merutka, Ilaria R
Dixon, Shandee D
Shumate, Anthony
Groncki, Abigail R
Parson, Matthew AH
Barklis, Eric
Burke, John E
Shinde, Ujwal
Ploegh, Hidde L
Tafesse, Fikadu G
ESAT-6 undergoes self-association at phagosomal pH and an ESAT-6 specific nanobody restricts M. tuberculosis growth in macrophages
title ESAT-6 undergoes self-association at phagosomal pH and an ESAT-6 specific nanobody restricts M. tuberculosis growth in macrophages
title_full ESAT-6 undergoes self-association at phagosomal pH and an ESAT-6 specific nanobody restricts M. tuberculosis growth in macrophages
title_fullStr ESAT-6 undergoes self-association at phagosomal pH and an ESAT-6 specific nanobody restricts M. tuberculosis growth in macrophages
title_full_unstemmed ESAT-6 undergoes self-association at phagosomal pH and an ESAT-6 specific nanobody restricts M. tuberculosis growth in macrophages
title_short ESAT-6 undergoes self-association at phagosomal pH and an ESAT-6 specific nanobody restricts M. tuberculosis growth in macrophages
title_sort esat-6 undergoes self-association at phagosomal ph and an esat-6 specific nanobody restricts m. tuberculosis growth in macrophages
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10462100/
https://www.ncbi.nlm.nih.gov/pubmed/37645775
http://dx.doi.org/10.1101/2023.08.16.553641
work_keys_str_mv AT batestimothya esat6undergoesselfassociationatphagosomalphandanesat6specificnanobodyrestrictsmtuberculosisgrowthinmacrophages
AT trankgreenemila esat6undergoesselfassociationatphagosomalphandanesat6specificnanobodyrestrictsmtuberculosisgrowthinmacrophages
AT nguyenlaxammy esat6undergoesselfassociationatphagosomalphandanesat6specificnanobodyrestrictsmtuberculosisgrowthinmacrophages
AT anastasaidan esat6undergoesselfassociationatphagosomalphandanesat6specificnanobodyrestrictsmtuberculosisgrowthinmacrophages
AT merutkailariar esat6undergoesselfassociationatphagosomalphandanesat6specificnanobodyrestrictsmtuberculosisgrowthinmacrophages
AT dixonshandeed esat6undergoesselfassociationatphagosomalphandanesat6specificnanobodyrestrictsmtuberculosisgrowthinmacrophages
AT shumateanthony esat6undergoesselfassociationatphagosomalphandanesat6specificnanobodyrestrictsmtuberculosisgrowthinmacrophages
AT gronckiabigailr esat6undergoesselfassociationatphagosomalphandanesat6specificnanobodyrestrictsmtuberculosisgrowthinmacrophages
AT parsonmatthewah esat6undergoesselfassociationatphagosomalphandanesat6specificnanobodyrestrictsmtuberculosisgrowthinmacrophages
AT barkliseric esat6undergoesselfassociationatphagosomalphandanesat6specificnanobodyrestrictsmtuberculosisgrowthinmacrophages
AT burkejohne esat6undergoesselfassociationatphagosomalphandanesat6specificnanobodyrestrictsmtuberculosisgrowthinmacrophages
AT shindeujwal esat6undergoesselfassociationatphagosomalphandanesat6specificnanobodyrestrictsmtuberculosisgrowthinmacrophages
AT ploeghhiddel esat6undergoesselfassociationatphagosomalphandanesat6specificnanobodyrestrictsmtuberculosisgrowthinmacrophages
AT tafessefikadug esat6undergoesselfassociationatphagosomalphandanesat6specificnanobodyrestrictsmtuberculosisgrowthinmacrophages