Proteome remodeling in the Mycobacterium tuberculosis PknG knockout: Molecular evidence for the role of this kinase in cell envelope biogenesis and hypoxia response

Lima, Analía - Leyva, Alejandro - Rivera, Bernardina - Portela, María Magdalena - Gil, Magdalena - Cascioferro, Alessandro - Lisa, María-Natalia - Wehenkel, Annemarie - Bellinzoni, Marco - Carvalho, Paulo C. - Batthyány, Carlos - Álvarez, María Noel - Brosch, Roland - Alzari, Pedro M. - Durán, Rosario

Resumen:

Mycobacterium tuberculosis, the etiological agent of tuberculosis, is among the deadliest human pathogens. One of M. tuberculosis's pathogenic hallmarks is its ability to persist in a dormant state in the host. Thus, this pathogen has developed mechanisms to withstand stressful conditions found in the human host. Particularly, the Ser/Thr-protein kinase PknG has gained relevance since it regulates nitrogen metabolism and facilitates bacterial survival inside macrophages. Nevertheless, the molecular mechanisms underlying these effects are far from being elucidated. To further investigate these issues, we performed quantitative proteomic analyses of protein extracts from M. tuberculosis H37Rv and a mutant lacking pknG. We found that in the absence of PknG the mycobacterial proteome was remodeled since 5.7% of the proteins encoded by M. tuberculosis presented significant changes in its relative abundance compared with the wild-type. The main biological processes affected by pknG deletion were cell envelope components biosynthesis and response to hypoxia. Thirteen DosR-regulated proteins were underrepresented in the pknG deletion mutant, including Hrp-1, which was 12.5-fold decreased according to Parallel Reaction Monitoring experiments. Altogether, our results allow us to postulate that PknG regulation of bacterial adaptation to stress conditions might be an important mechanism underlying its reported effect on intracellular bacterial survival. SIGNIFICANCE: PknG is a Ser/Thr kinase from Mycobacterium tuberculosis with key roles in bacterial metabolism and bacterial survival within the host. However, at present the molecular mechanisms underlying these functions remain largely unknown. In this work, we evaluate the effect of pknG deletion on M. tuberculosis proteome using different approaches. Our results clearly show that the global proteome was remodeled in the absence of PknG and shed light on new molecular mechanism underlying PknG role. Altogether, this work contributes to a better understanding of the molecular bases of the adaptation of M. tuberculosis, one of the most deadly human pathogens, to its host.

Detalles Bibliográficos
2021
Hrp-1
Hypoxia
Mas
Msl3
Mycobacterium tuberculosis
PknG
Serine/Threonine protein kinase
PROTEÍNAS BACTERIANAS
GENÉTICA
HUMANOS
FENÓMENOS BIOLÓGICOS
HIPOXIA
PROTEÍNAS SERINA-TREONINA QUINASAS
PROTEOMA
PROTEÓMICA
Inglés
Universidad de la República
COLIBRI
https://hdl.handle.net/20.500.12008/55465
Acceso abierto
Licencia Creative Commons Atribución - No Comercial - Sin Derivadas (CC - By-NC-ND 4.0)
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author Lima, Analía
author2 Leyva, Alejandro
Rivera, Bernardina
Portela, María Magdalena
Gil, Magdalena
Cascioferro, Alessandro
Lisa, María-Natalia
Wehenkel, Annemarie
Bellinzoni, Marco
Carvalho, Paulo C.
Batthyány, Carlos
Álvarez, María Noel
Brosch, Roland
Alzari, Pedro M.
Durán, Rosario
author2_role author
author
author
author
author
author
author
author
author
author
author
author
author
author
author_facet Lima, Analía
Leyva, Alejandro
Rivera, Bernardina
Portela, María Magdalena
Gil, Magdalena
Cascioferro, Alessandro
Lisa, María-Natalia
Wehenkel, Annemarie
Bellinzoni, Marco
Carvalho, Paulo C.
Batthyány, Carlos
Álvarez, María Noel
Brosch, Roland
Alzari, Pedro M.
Durán, Rosario
author_role author
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collection COLIBRI
dc.contributor.filiacion.none.fl_str_mv Lima Analía, Institut Pasteur de Montevideo e Instituto de Investigaciones Biológicas Clemente Estable (Uruguay). Unidad de Bioquímica y Proteómica Analíticas
Leyva Alejandro, Institut Pasteur de Montevideo e Instituto de Investigaciones Biológicas Clemente Estable (Uruguay). Unidad de Bioquímica y Proteómica Analíticas
Rivera Bernardina, Institut Pasteur de Montevideo e Instituto de Investigaciones Biológicas Clemente Estable (Uruguay). Unidad de Bioquímica y Proteómica Analíticas
Portela María Magdalena, Institut Pasteur de Montevideo e Instituto de Investigaciones Biológicas Clemente Estable (Uruguay). Unidad de Bioquímica y Proteómica Analíticas
Gil Magdalena, Institut Pasteur de Montevideo e Instituto de Investigaciones Biológicas Clemente Estable (Uruguay). Unidad de Bioquímica y Proteómica Analíticas
Cascioferro Alessandro, Institut Pasteur (Francia). Unité de Pathogénomique Mycobactérienne Intégrée
Lisa María-Natalia, Institut Pasteur (Francia). Unité de Biologie Moléculaire Structurale et Processus Infectieux
Wehenkel Annemarie, Institut Pasteur (Francia). Unité de Biologie Moléculaire Structurale et Processus Infectieux; Instituto de Biología Molecular y Celular de Rosario (Argentina)
Bellinzoni Marco, Institut Pasteur (Francia). Unité de Biologie Moléculaire Structurale et Processus Infectieux; Instituto de Biología Molecular y Celular de Rosario (Argentina)
Carvalho Paulo C., Instituto Carlos Chagas (Brasil). Proteômica Estrutural e Computacional
Batthyány Carlos, Institut Pasteur Montevideo (Uruguay). Laboratorio de Biología Vascular y Desarrollo de Fármacos
Álvarez María Noel, Universidad de la República (Uruguay). Facultad de Medicina. Departamento de Bioquímica y Centro de Investigaciones Biomédicas
Brosch Roland, Institut Pasteur (Francia). Unité de Pathogénomique Mycobactérienne Intégrée
Alzari Pedro M., Institut Pasteur (Francia). Unité de Biologie Moléculaire Structurale et Processus Infectieux; Instituto de Biología Molecular y Celular de Rosario (Argentina)
Durán Rosario, Institut Pasteur de Montevideo e Instituto de Investigaciones Biológicas Clemente Estable (Uruguay). Unidad de Bioquímica y Proteómica Analíticas
dc.creator.none.fl_str_mv Lima, Analía
Leyva, Alejandro
Rivera, Bernardina
Portela, María Magdalena
Gil, Magdalena
Cascioferro, Alessandro
Lisa, María-Natalia
Wehenkel, Annemarie
Bellinzoni, Marco
Carvalho, Paulo C.
Batthyány, Carlos
Álvarez, María Noel
Brosch, Roland
Alzari, Pedro M.
Durán, Rosario
dc.date.accessioned.none.fl_str_mv 2026-06-11T16:00:13Z
dc.date.available.none.fl_str_mv 2026-06-11T16:00:13Z
dc.date.issued.none.fl_str_mv 2021
dc.description.abstract.none.fl_txt_mv Mycobacterium tuberculosis, the etiological agent of tuberculosis, is among the deadliest human pathogens. One of M. tuberculosis's pathogenic hallmarks is its ability to persist in a dormant state in the host. Thus, this pathogen has developed mechanisms to withstand stressful conditions found in the human host. Particularly, the Ser/Thr-protein kinase PknG has gained relevance since it regulates nitrogen metabolism and facilitates bacterial survival inside macrophages. Nevertheless, the molecular mechanisms underlying these effects are far from being elucidated. To further investigate these issues, we performed quantitative proteomic analyses of protein extracts from M. tuberculosis H37Rv and a mutant lacking pknG. We found that in the absence of PknG the mycobacterial proteome was remodeled since 5.7% of the proteins encoded by M. tuberculosis presented significant changes in its relative abundance compared with the wild-type. The main biological processes affected by pknG deletion were cell envelope components biosynthesis and response to hypoxia. Thirteen DosR-regulated proteins were underrepresented in the pknG deletion mutant, including Hrp-1, which was 12.5-fold decreased according to Parallel Reaction Monitoring experiments. Altogether, our results allow us to postulate that PknG regulation of bacterial adaptation to stress conditions might be an important mechanism underlying its reported effect on intracellular bacterial survival. SIGNIFICANCE: PknG is a Ser/Thr kinase from Mycobacterium tuberculosis with key roles in bacterial metabolism and bacterial survival within the host. However, at present the molecular mechanisms underlying these functions remain largely unknown. In this work, we evaluate the effect of pknG deletion on M. tuberculosis proteome using different approaches. Our results clearly show that the global proteome was remodeled in the absence of PknG and shed light on new molecular mechanism underlying PknG role. Altogether, this work contributes to a better understanding of the molecular bases of the adaptation of M. tuberculosis, one of the most deadly human pathogens, to its host.
dc.format.extent.es.fl_str_mv 44 p.
dc.format.mimetype.es.fl_str_mv application/pdf
dc.identifier.citation.es.fl_str_mv Lima A, Leyva A, Rivera B y otros. Proteome remodeling in the Mycobacterium tuberculosis PknG knockout: Molecular evidence for the role of this kinase in cell envelope biogenesis and hypoxia response. Journal of proteomics [en línea]. 2021;244. 44 p.
dc.identifier.doi.none.fl_str_mv 10.1016/j.jprot.2021.104276
dc.identifier.eissn.none.fl_str_mv 1876-7737
dc.identifier.uri.none.fl_str_mv https://hdl.handle.net/20.500.12008/55465
dc.language.iso.none.fl_str_mv en
eng
dc.publisher.es.fl_str_mv Elsevier
dc.relation.none.fl_str_mv Journal of proteomics. 2021;244
dc.rights.license.none.fl_str_mv Licencia Creative Commons Atribución - No Comercial - Sin Derivadas (CC - By-NC-ND 4.0)
dc.rights.none.fl_str_mv info:eu-repo/semantics/openAccess
dc.source.none.fl_str_mv reponame:COLIBRI
instname:Universidad de la República
instacron:Universidad de la República
dc.subject.es.fl_str_mv Hrp-1
Hypoxia
Mas
Msl3
Mycobacterium tuberculosis
PknG
Serine/Threonine protein kinase
dc.subject.other.es.fl_str_mv PROTEÍNAS BACTERIANAS
GENÉTICA
HUMANOS
FENÓMENOS BIOLÓGICOS
HIPOXIA
PROTEÍNAS SERINA-TREONINA QUINASAS
PROTEOMA
PROTEÓMICA
dc.title.none.fl_str_mv Proteome remodeling in the Mycobacterium tuberculosis PknG knockout: Molecular evidence for the role of this kinase in cell envelope biogenesis and hypoxia response
dc.type.es.fl_str_mv Artículo
dc.type.none.fl_str_mv info:eu-repo/semantics/article
dc.type.version.none.fl_str_mv info:eu-repo/semantics/publishedVersion
description Mycobacterium tuberculosis, the etiological agent of tuberculosis, is among the deadliest human pathogens. One of M. tuberculosis's pathogenic hallmarks is its ability to persist in a dormant state in the host. Thus, this pathogen has developed mechanisms to withstand stressful conditions found in the human host. Particularly, the Ser/Thr-protein kinase PknG has gained relevance since it regulates nitrogen metabolism and facilitates bacterial survival inside macrophages. Nevertheless, the molecular mechanisms underlying these effects are far from being elucidated. To further investigate these issues, we performed quantitative proteomic analyses of protein extracts from M. tuberculosis H37Rv and a mutant lacking pknG. We found that in the absence of PknG the mycobacterial proteome was remodeled since 5.7% of the proteins encoded by M. tuberculosis presented significant changes in its relative abundance compared with the wild-type. The main biological processes affected by pknG deletion were cell envelope components biosynthesis and response to hypoxia. Thirteen DosR-regulated proteins were underrepresented in the pknG deletion mutant, including Hrp-1, which was 12.5-fold decreased according to Parallel Reaction Monitoring experiments. Altogether, our results allow us to postulate that PknG regulation of bacterial adaptation to stress conditions might be an important mechanism underlying its reported effect on intracellular bacterial survival. SIGNIFICANCE: PknG is a Ser/Thr kinase from Mycobacterium tuberculosis with key roles in bacterial metabolism and bacterial survival within the host. However, at present the molecular mechanisms underlying these functions remain largely unknown. In this work, we evaluate the effect of pknG deletion on M. tuberculosis proteome using different approaches. Our results clearly show that the global proteome was remodeled in the absence of PknG and shed light on new molecular mechanism underlying PknG role. Altogether, this work contributes to a better understanding of the molecular bases of the adaptation of M. tuberculosis, one of the most deadly human pathogens, to its host.
eu_rights_str_mv openAccess
format article
id COLIBRI_55ea65ffb7ed6790ce15d8f7a85ee242
identifier_str_mv Lima A, Leyva A, Rivera B y otros. Proteome remodeling in the Mycobacterium tuberculosis PknG knockout: Molecular evidence for the role of this kinase in cell envelope biogenesis and hypoxia response. Journal of proteomics [en línea]. 2021;244. 44 p.
10.1016/j.jprot.2021.104276
1876-7737
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institution Universidad de la República
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language eng
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publishDate 2021
reponame_str COLIBRI
repository.mail.fl_str_mv karina.camps@seciu.edu.uy
repository.name.fl_str_mv COLIBRI - Universidad de la República
repository_id_str 4771
rights_invalid_str_mv Licencia Creative Commons Atribución - No Comercial - Sin Derivadas (CC - By-NC-ND 4.0)
spelling Lima Analía, Institut Pasteur de Montevideo e Instituto de Investigaciones Biológicas Clemente Estable (Uruguay). Unidad de Bioquímica y Proteómica AnalíticasLeyva Alejandro, Institut Pasteur de Montevideo e Instituto de Investigaciones Biológicas Clemente Estable (Uruguay). Unidad de Bioquímica y Proteómica AnalíticasRivera Bernardina, Institut Pasteur de Montevideo e Instituto de Investigaciones Biológicas Clemente Estable (Uruguay). Unidad de Bioquímica y Proteómica AnalíticasPortela María Magdalena, Institut Pasteur de Montevideo e Instituto de Investigaciones Biológicas Clemente Estable (Uruguay). Unidad de Bioquímica y Proteómica AnalíticasGil Magdalena, Institut Pasteur de Montevideo e Instituto de Investigaciones Biológicas Clemente Estable (Uruguay). Unidad de Bioquímica y Proteómica AnalíticasCascioferro Alessandro, Institut Pasteur (Francia). Unité de Pathogénomique Mycobactérienne IntégréeLisa María-Natalia, Institut Pasteur (Francia). Unité de Biologie Moléculaire Structurale et Processus InfectieuxWehenkel Annemarie, Institut Pasteur (Francia). Unité de Biologie Moléculaire Structurale et Processus Infectieux; Instituto de Biología Molecular y Celular de Rosario (Argentina)Bellinzoni Marco, Institut Pasteur (Francia). Unité de Biologie Moléculaire Structurale et Processus Infectieux; Instituto de Biología Molecular y Celular de Rosario (Argentina)Carvalho Paulo C., Instituto Carlos Chagas (Brasil). Proteômica Estrutural e ComputacionalBatthyány Carlos, Institut Pasteur Montevideo (Uruguay). Laboratorio de Biología Vascular y Desarrollo de FármacosÁlvarez María Noel, Universidad de la República (Uruguay). Facultad de Medicina. Departamento de Bioquímica y Centro de Investigaciones BiomédicasBrosch Roland, Institut Pasteur (Francia). Unité de Pathogénomique Mycobactérienne IntégréeAlzari Pedro M., Institut Pasteur (Francia). Unité de Biologie Moléculaire Structurale et Processus Infectieux; Instituto de Biología Molecular y Celular de Rosario (Argentina)Durán Rosario, Institut Pasteur de Montevideo e Instituto de Investigaciones Biológicas Clemente Estable (Uruguay). Unidad de Bioquímica y Proteómica Analíticas2026-06-11T16:00:13Z2026-06-11T16:00:13Z2021Lima A, Leyva A, Rivera B y otros. Proteome remodeling in the Mycobacterium tuberculosis PknG knockout: Molecular evidence for the role of this kinase in cell envelope biogenesis and hypoxia response. Journal of proteomics [en línea]. 2021;244. 44 p.https://hdl.handle.net/20.500.12008/5546510.1016/j.jprot.2021.1042761876-7737Mycobacterium tuberculosis, the etiological agent of tuberculosis, is among the deadliest human pathogens. One of M. tuberculosis's pathogenic hallmarks is its ability to persist in a dormant state in the host. Thus, this pathogen has developed mechanisms to withstand stressful conditions found in the human host. Particularly, the Ser/Thr-protein kinase PknG has gained relevance since it regulates nitrogen metabolism and facilitates bacterial survival inside macrophages. Nevertheless, the molecular mechanisms underlying these effects are far from being elucidated. To further investigate these issues, we performed quantitative proteomic analyses of protein extracts from M. tuberculosis H37Rv and a mutant lacking pknG. We found that in the absence of PknG the mycobacterial proteome was remodeled since 5.7% of the proteins encoded by M. tuberculosis presented significant changes in its relative abundance compared with the wild-type. The main biological processes affected by pknG deletion were cell envelope components biosynthesis and response to hypoxia. Thirteen DosR-regulated proteins were underrepresented in the pknG deletion mutant, including Hrp-1, which was 12.5-fold decreased according to Parallel Reaction Monitoring experiments. Altogether, our results allow us to postulate that PknG regulation of bacterial adaptation to stress conditions might be an important mechanism underlying its reported effect on intracellular bacterial survival. SIGNIFICANCE: PknG is a Ser/Thr kinase from Mycobacterium tuberculosis with key roles in bacterial metabolism and bacterial survival within the host. However, at present the molecular mechanisms underlying these functions remain largely unknown. In this work, we evaluate the effect of pknG deletion on M. tuberculosis proteome using different approaches. Our results clearly show that the global proteome was remodeled in the absence of PknG and shed light on new molecular mechanism underlying PknG role. Altogether, this work contributes to a better understanding of the molecular bases of the adaptation of M. tuberculosis, one of the most deadly human pathogens, to its host.Submitted by Almiñana María Cecilia (marialminana@gmail.com) on 2026-06-11T12:41:23Z No. of bitstreams: 2 license_rdf: 27293 bytes, checksum: d62648cf14c1e37917d392ac87012955 (MD5) Proteome remodeling in the Mycobacterium tuberculosis PknG knockout.pdf: 14691459 bytes, checksum: 117b56c388593ee756392580228f9f5e (MD5)Approved for entry into archive by Almiñana María Cecilia (marialminana@gmail.com) on 2026-06-11T15:26:46Z (GMT) No. of bitstreams: 2 license_rdf: 27293 bytes, checksum: d62648cf14c1e37917d392ac87012955 (MD5) Proteome remodeling in the Mycobacterium tuberculosis PknG knockout.pdf: 14691459 bytes, checksum: 117b56c388593ee756392580228f9f5e (MD5)Made available in DSpace by Luna Fabiana (fabiana.luna@seciu.edu.uy) on 2026-06-11T16:00:13Z (GMT). No. of bitstreams: 2 license_rdf: 27293 bytes, checksum: d62648cf14c1e37917d392ac87012955 (MD5) Proteome remodeling in the Mycobacterium tuberculosis PknG knockout.pdf: 14691459 bytes, checksum: 117b56c388593ee756392580228f9f5e (MD5) Previous issue date: 202144 p.application/pdfenengElsevierJournal of proteomics. 2021;244Las obras depositadas en el Repositorio se rigen por la Ordenanza de los Derechos de la Propiedad Intelectual de la Universidad de la República.(Res. Nº 91 de C.D.C. de 8/III/1994 – D.O. 7/IV/1994) y por la Ordenanza del Repositorio Abierto de la Universidad de la República (Res. Nº 16 de C.D.C. de 07/10/2014)info:eu-repo/semantics/openAccessLicencia Creative Commons Atribución - No Comercial - Sin Derivadas (CC - By-NC-ND 4.0)Hrp-1HypoxiaMasMsl3Mycobacterium tuberculosisPknGSerine/Threonine protein kinasePROTEÍNAS BACTERIANASGENÉTICAHUMANOSFENÓMENOS BIOLÓGICOSHIPOXIAPROTEÍNAS SERINA-TREONINA QUINASASPROTEOMAPROTEÓMICAProteome remodeling in the Mycobacterium tuberculosis PknG knockout: Molecular evidence for the role of this kinase in cell envelope biogenesis and hypoxia responseArtículoinfo:eu-repo/semantics/articleinfo:eu-repo/semantics/publishedVersionreponame:COLIBRIinstname:Universidad de la Repúblicainstacron:Universidad de la RepúblicaLima, AnalíaLeyva, AlejandroRivera, BernardinaPortela, María MagdalenaGil, MagdalenaCascioferro, AlessandroLisa, María-NataliaWehenkel, AnnemarieBellinzoni, MarcoCarvalho, Paulo C.Batthyány, CarlosÁlvarez, María NoelBrosch, RolandAlzari, Pedro M.Durán, RosarioLICENSElicense.txtlicense.txttext/plain; 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13:00:13.556oai:colibri.udelar.edu.uy:20.500.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- Universidad de la Repúblicafalse
spellingShingle Proteome remodeling in the Mycobacterium tuberculosis PknG knockout: Molecular evidence for the role of this kinase in cell envelope biogenesis and hypoxia response
Lima, Analía
Hrp-1
Hypoxia
Mas
Msl3
Mycobacterium tuberculosis
PknG
Serine/Threonine protein kinase
PROTEÍNAS BACTERIANAS
GENÉTICA
HUMANOS
FENÓMENOS BIOLÓGICOS
HIPOXIA
PROTEÍNAS SERINA-TREONINA QUINASAS
PROTEOMA
PROTEÓMICA
status_str publishedVersion
title Proteome remodeling in the Mycobacterium tuberculosis PknG knockout: Molecular evidence for the role of this kinase in cell envelope biogenesis and hypoxia response
title_full Proteome remodeling in the Mycobacterium tuberculosis PknG knockout: Molecular evidence for the role of this kinase in cell envelope biogenesis and hypoxia response
title_fullStr Proteome remodeling in the Mycobacterium tuberculosis PknG knockout: Molecular evidence for the role of this kinase in cell envelope biogenesis and hypoxia response
title_full_unstemmed Proteome remodeling in the Mycobacterium tuberculosis PknG knockout: Molecular evidence for the role of this kinase in cell envelope biogenesis and hypoxia response
title_short Proteome remodeling in the Mycobacterium tuberculosis PknG knockout: Molecular evidence for the role of this kinase in cell envelope biogenesis and hypoxia response
title_sort Proteome remodeling in the Mycobacterium tuberculosis PknG knockout: Molecular evidence for the role of this kinase in cell envelope biogenesis and hypoxia response
topic Hrp-1
Hypoxia
Mas
Msl3
Mycobacterium tuberculosis
PknG
Serine/Threonine protein kinase
PROTEÍNAS BACTERIANAS
GENÉTICA
HUMANOS
FENÓMENOS BIOLÓGICOS
HIPOXIA
PROTEÍNAS SERINA-TREONINA QUINASAS
PROTEOMA
PROTEÓMICA
url https://hdl.handle.net/20.500.12008/55465