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MceG stabilizes the Mce1 and Mce4 transporters in Mycobacterium tuberculosis

Lipids are important nutrients for Mycobacterium tuberculosis (Mtb) to support bacterial survival in mammalian tissues and host cells. Fatty acids and cholesterol are imported across the Mtb cell wall via the dedicated Mce1 and Mce4 transporters, respectively. It is thought that the Mce1 and Mce4 tr...

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Autores principales: Fieweger, Rachael A., Wilburn, Kaley M., Montague, Christine R., Roszkowski, Emma K., Kelly, Carolyn M., Southard, Teresa L., Sondermann, Holger, Nazarova, Evgeniya V., VanderVen, Brian C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9947336/
https://www.ncbi.nlm.nih.gov/pubmed/36642182
http://dx.doi.org/10.1016/j.jbc.2023.102910
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author Fieweger, Rachael A.
Wilburn, Kaley M.
Montague, Christine R.
Roszkowski, Emma K.
Kelly, Carolyn M.
Southard, Teresa L.
Sondermann, Holger
Nazarova, Evgeniya V.
VanderVen, Brian C.
author_facet Fieweger, Rachael A.
Wilburn, Kaley M.
Montague, Christine R.
Roszkowski, Emma K.
Kelly, Carolyn M.
Southard, Teresa L.
Sondermann, Holger
Nazarova, Evgeniya V.
VanderVen, Brian C.
author_sort Fieweger, Rachael A.
collection PubMed
description Lipids are important nutrients for Mycobacterium tuberculosis (Mtb) to support bacterial survival in mammalian tissues and host cells. Fatty acids and cholesterol are imported across the Mtb cell wall via the dedicated Mce1 and Mce4 transporters, respectively. It is thought that the Mce1 and Mce4 transporters are comprised of subunits that confer substrate specificity and proteins that couple lipid transport to ATP hydrolysis, similar to other bacterial ABC transporters. However, unlike canonical bacterial ABC transporters, Mce1 and Mce4 appear to share a single ATPase, MceG. Previously, it was established that Mce1 and Mce4 are destabilized when key transporter subunits are rendered nonfunctional; therefore, we investigated here the role of MceG in Mce1 and Mce4 protein stability. We determined that key residues in the Walker B domain of MceG are required for the Mce1- and Mce4-mediated transport of fatty acids and cholesterol. Previously, it has been established that Mce1 and Mce4 are destabilized and/or degraded when key transporter subunits are rendered nonfunctional, thus we investigated a role for MceG in stabilizing Mce1 and Mce4. Using an unbiased quantitative proteomic approach, we demonstrate that Mce1 and Mce4 proteins are specifically degraded in mutants lacking MceG. Furthermore, bacteria expressing Walker B mutant variants of MceG failed to stabilize Mce1 and Mce4, and we show that deleting MceG impacts the fitness of Mtb in the lungs of mice. Thus, we conclude that MceG represents an enzymatic weakness that can be potentially leveraged to disable and destabilize both the Mce1 and Mce4 transporters in Mtb.
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spelling pubmed-99473362023-02-24 MceG stabilizes the Mce1 and Mce4 transporters in Mycobacterium tuberculosis Fieweger, Rachael A. Wilburn, Kaley M. Montague, Christine R. Roszkowski, Emma K. Kelly, Carolyn M. Southard, Teresa L. Sondermann, Holger Nazarova, Evgeniya V. VanderVen, Brian C. J Biol Chem Research Article Lipids are important nutrients for Mycobacterium tuberculosis (Mtb) to support bacterial survival in mammalian tissues and host cells. Fatty acids and cholesterol are imported across the Mtb cell wall via the dedicated Mce1 and Mce4 transporters, respectively. It is thought that the Mce1 and Mce4 transporters are comprised of subunits that confer substrate specificity and proteins that couple lipid transport to ATP hydrolysis, similar to other bacterial ABC transporters. However, unlike canonical bacterial ABC transporters, Mce1 and Mce4 appear to share a single ATPase, MceG. Previously, it was established that Mce1 and Mce4 are destabilized when key transporter subunits are rendered nonfunctional; therefore, we investigated here the role of MceG in Mce1 and Mce4 protein stability. We determined that key residues in the Walker B domain of MceG are required for the Mce1- and Mce4-mediated transport of fatty acids and cholesterol. Previously, it has been established that Mce1 and Mce4 are destabilized and/or degraded when key transporter subunits are rendered nonfunctional, thus we investigated a role for MceG in stabilizing Mce1 and Mce4. Using an unbiased quantitative proteomic approach, we demonstrate that Mce1 and Mce4 proteins are specifically degraded in mutants lacking MceG. Furthermore, bacteria expressing Walker B mutant variants of MceG failed to stabilize Mce1 and Mce4, and we show that deleting MceG impacts the fitness of Mtb in the lungs of mice. Thus, we conclude that MceG represents an enzymatic weakness that can be potentially leveraged to disable and destabilize both the Mce1 and Mce4 transporters in Mtb. American Society for Biochemistry and Molecular Biology 2023-01-13 /pmc/articles/PMC9947336/ /pubmed/36642182 http://dx.doi.org/10.1016/j.jbc.2023.102910 Text en © 2023 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Fieweger, Rachael A.
Wilburn, Kaley M.
Montague, Christine R.
Roszkowski, Emma K.
Kelly, Carolyn M.
Southard, Teresa L.
Sondermann, Holger
Nazarova, Evgeniya V.
VanderVen, Brian C.
MceG stabilizes the Mce1 and Mce4 transporters in Mycobacterium tuberculosis
title MceG stabilizes the Mce1 and Mce4 transporters in Mycobacterium tuberculosis
title_full MceG stabilizes the Mce1 and Mce4 transporters in Mycobacterium tuberculosis
title_fullStr MceG stabilizes the Mce1 and Mce4 transporters in Mycobacterium tuberculosis
title_full_unstemmed MceG stabilizes the Mce1 and Mce4 transporters in Mycobacterium tuberculosis
title_short MceG stabilizes the Mce1 and Mce4 transporters in Mycobacterium tuberculosis
title_sort mceg stabilizes the mce1 and mce4 transporters in mycobacterium tuberculosis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9947336/
https://www.ncbi.nlm.nih.gov/pubmed/36642182
http://dx.doi.org/10.1016/j.jbc.2023.102910
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