Cargando…

Gene products and processes contributing to lanthanide homeostasis and methanol metabolism in Methylorubrum extorquens AM1

Lanthanide elements have been recently recognized as “new life metals” yet much remains unknown regarding lanthanide acquisition and homeostasis. In Methylorubrum extorquens AM1, the periplasmic lanthanide-dependent methanol dehydrogenase XoxF1 produces formaldehyde, which is lethal if allowed to ac...

Descripción completa

Detalles Bibliográficos
Autores principales: Roszczenko-Jasińska, Paula, Vu, Huong N., Subuyuj, Gabriel A., Crisostomo, Ralph Valentine, Cai, James, Lien, Nicholas F., Clippard, Erik J., Ayala, Elena M., Ngo, Richard T., Yarza, Fauna, Wingett, Justin P., Raghuraman, Charumathi, Hoeber, Caitlin A., Martinez-Gomez, Norma C., Skovran, Elizabeth
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7391723/
https://www.ncbi.nlm.nih.gov/pubmed/32728125
http://dx.doi.org/10.1038/s41598-020-69401-4
_version_ 1783564709028429824
author Roszczenko-Jasińska, Paula
Vu, Huong N.
Subuyuj, Gabriel A.
Crisostomo, Ralph Valentine
Cai, James
Lien, Nicholas F.
Clippard, Erik J.
Ayala, Elena M.
Ngo, Richard T.
Yarza, Fauna
Wingett, Justin P.
Raghuraman, Charumathi
Hoeber, Caitlin A.
Martinez-Gomez, Norma C.
Skovran, Elizabeth
author_facet Roszczenko-Jasińska, Paula
Vu, Huong N.
Subuyuj, Gabriel A.
Crisostomo, Ralph Valentine
Cai, James
Lien, Nicholas F.
Clippard, Erik J.
Ayala, Elena M.
Ngo, Richard T.
Yarza, Fauna
Wingett, Justin P.
Raghuraman, Charumathi
Hoeber, Caitlin A.
Martinez-Gomez, Norma C.
Skovran, Elizabeth
author_sort Roszczenko-Jasińska, Paula
collection PubMed
description Lanthanide elements have been recently recognized as “new life metals” yet much remains unknown regarding lanthanide acquisition and homeostasis. In Methylorubrum extorquens AM1, the periplasmic lanthanide-dependent methanol dehydrogenase XoxF1 produces formaldehyde, which is lethal if allowed to accumulate. This property enabled a transposon mutagenesis study and growth studies to confirm novel gene products required for XoxF1 function. The identified genes encode an MxaD homolog, an ABC-type transporter, an aminopeptidase, a putative homospermidine synthase, and two genes of unknown function annotated as orf6 and orf7. Lanthanide transport and trafficking genes were also identified. Growth and lanthanide uptake were measured using strains lacking individual lanthanide transport cluster genes, and transmission electron microscopy was used to visualize lanthanide localization. We corroborated previous reports that a TonB-ABC transport system is required for lanthanide incorporation to the cytoplasm. However, cells were able to acclimate over time and bypass the requirement for the TonB outer membrane transporter to allow expression of xoxF1 and growth. Transcriptional reporter fusions show that excess lanthanides repress the gene encoding the TonB-receptor. Using growth studies along with energy dispersive X-ray spectroscopy and transmission electron microscopy, we demonstrate that lanthanides are stored as cytoplasmic inclusions that resemble polyphosphate granules.
format Online
Article
Text
id pubmed-7391723
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher Nature Publishing Group UK
record_format MEDLINE/PubMed
spelling pubmed-73917232020-07-31 Gene products and processes contributing to lanthanide homeostasis and methanol metabolism in Methylorubrum extorquens AM1 Roszczenko-Jasińska, Paula Vu, Huong N. Subuyuj, Gabriel A. Crisostomo, Ralph Valentine Cai, James Lien, Nicholas F. Clippard, Erik J. Ayala, Elena M. Ngo, Richard T. Yarza, Fauna Wingett, Justin P. Raghuraman, Charumathi Hoeber, Caitlin A. Martinez-Gomez, Norma C. Skovran, Elizabeth Sci Rep Article Lanthanide elements have been recently recognized as “new life metals” yet much remains unknown regarding lanthanide acquisition and homeostasis. In Methylorubrum extorquens AM1, the periplasmic lanthanide-dependent methanol dehydrogenase XoxF1 produces formaldehyde, which is lethal if allowed to accumulate. This property enabled a transposon mutagenesis study and growth studies to confirm novel gene products required for XoxF1 function. The identified genes encode an MxaD homolog, an ABC-type transporter, an aminopeptidase, a putative homospermidine synthase, and two genes of unknown function annotated as orf6 and orf7. Lanthanide transport and trafficking genes were also identified. Growth and lanthanide uptake were measured using strains lacking individual lanthanide transport cluster genes, and transmission electron microscopy was used to visualize lanthanide localization. We corroborated previous reports that a TonB-ABC transport system is required for lanthanide incorporation to the cytoplasm. However, cells were able to acclimate over time and bypass the requirement for the TonB outer membrane transporter to allow expression of xoxF1 and growth. Transcriptional reporter fusions show that excess lanthanides repress the gene encoding the TonB-receptor. Using growth studies along with energy dispersive X-ray spectroscopy and transmission electron microscopy, we demonstrate that lanthanides are stored as cytoplasmic inclusions that resemble polyphosphate granules. Nature Publishing Group UK 2020-07-29 /pmc/articles/PMC7391723/ /pubmed/32728125 http://dx.doi.org/10.1038/s41598-020-69401-4 Text en © The Author(s) 2020 Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/.
spellingShingle Article
Roszczenko-Jasińska, Paula
Vu, Huong N.
Subuyuj, Gabriel A.
Crisostomo, Ralph Valentine
Cai, James
Lien, Nicholas F.
Clippard, Erik J.
Ayala, Elena M.
Ngo, Richard T.
Yarza, Fauna
Wingett, Justin P.
Raghuraman, Charumathi
Hoeber, Caitlin A.
Martinez-Gomez, Norma C.
Skovran, Elizabeth
Gene products and processes contributing to lanthanide homeostasis and methanol metabolism in Methylorubrum extorquens AM1
title Gene products and processes contributing to lanthanide homeostasis and methanol metabolism in Methylorubrum extorquens AM1
title_full Gene products and processes contributing to lanthanide homeostasis and methanol metabolism in Methylorubrum extorquens AM1
title_fullStr Gene products and processes contributing to lanthanide homeostasis and methanol metabolism in Methylorubrum extorquens AM1
title_full_unstemmed Gene products and processes contributing to lanthanide homeostasis and methanol metabolism in Methylorubrum extorquens AM1
title_short Gene products and processes contributing to lanthanide homeostasis and methanol metabolism in Methylorubrum extorquens AM1
title_sort gene products and processes contributing to lanthanide homeostasis and methanol metabolism in methylorubrum extorquens am1
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7391723/
https://www.ncbi.nlm.nih.gov/pubmed/32728125
http://dx.doi.org/10.1038/s41598-020-69401-4
work_keys_str_mv AT roszczenkojasinskapaula geneproductsandprocessescontributingtolanthanidehomeostasisandmethanolmetabolisminmethylorubrumextorquensam1
AT vuhuongn geneproductsandprocessescontributingtolanthanidehomeostasisandmethanolmetabolisminmethylorubrumextorquensam1
AT subuyujgabriela geneproductsandprocessescontributingtolanthanidehomeostasisandmethanolmetabolisminmethylorubrumextorquensam1
AT crisostomoralphvalentine geneproductsandprocessescontributingtolanthanidehomeostasisandmethanolmetabolisminmethylorubrumextorquensam1
AT caijames geneproductsandprocessescontributingtolanthanidehomeostasisandmethanolmetabolisminmethylorubrumextorquensam1
AT liennicholasf geneproductsandprocessescontributingtolanthanidehomeostasisandmethanolmetabolisminmethylorubrumextorquensam1
AT clipparderikj geneproductsandprocessescontributingtolanthanidehomeostasisandmethanolmetabolisminmethylorubrumextorquensam1
AT ayalaelenam geneproductsandprocessescontributingtolanthanidehomeostasisandmethanolmetabolisminmethylorubrumextorquensam1
AT ngorichardt geneproductsandprocessescontributingtolanthanidehomeostasisandmethanolmetabolisminmethylorubrumextorquensam1
AT yarzafauna geneproductsandprocessescontributingtolanthanidehomeostasisandmethanolmetabolisminmethylorubrumextorquensam1
AT wingettjustinp geneproductsandprocessescontributingtolanthanidehomeostasisandmethanolmetabolisminmethylorubrumextorquensam1
AT raghuramancharumathi geneproductsandprocessescontributingtolanthanidehomeostasisandmethanolmetabolisminmethylorubrumextorquensam1
AT hoebercaitlina geneproductsandprocessescontributingtolanthanidehomeostasisandmethanolmetabolisminmethylorubrumextorquensam1
AT martinezgomeznormac geneproductsandprocessescontributingtolanthanidehomeostasisandmethanolmetabolisminmethylorubrumextorquensam1
AT skovranelizabeth geneproductsandprocessescontributingtolanthanidehomeostasisandmethanolmetabolisminmethylorubrumextorquensam1