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Identifying the Gene Regulatory Network of the Starvation-Induced Transcriptional Activator Nla28

Myxococcus xanthus copes with starvation by producing fruiting bodies filled with dormant and stress-resistant spores. Here, we aimed to better define the gene regulatory network associated with Nla28, a transcriptional activator/enhancer binding protein (EBP) and a key regulator of the early starva...

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Autores principales: Ma, Muqing, Garza, Anthony G., Lemon, David J., Caro, Eduardo A., Ritchie, Linnea, Ryan, Charles, Spearing, Victoria M., Murphy, Kimberly A., Welch, Roy D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9765219/
https://www.ncbi.nlm.nih.gov/pubmed/36448789
http://dx.doi.org/10.1128/jb.00265-22
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author Ma, Muqing
Garza, Anthony G.
Lemon, David J.
Caro, Eduardo A.
Ritchie, Linnea
Ryan, Charles
Spearing, Victoria M.
Murphy, Kimberly A.
Welch, Roy D.
author_facet Ma, Muqing
Garza, Anthony G.
Lemon, David J.
Caro, Eduardo A.
Ritchie, Linnea
Ryan, Charles
Spearing, Victoria M.
Murphy, Kimberly A.
Welch, Roy D.
author_sort Ma, Muqing
collection PubMed
description Myxococcus xanthus copes with starvation by producing fruiting bodies filled with dormant and stress-resistant spores. Here, we aimed to better define the gene regulatory network associated with Nla28, a transcriptional activator/enhancer binding protein (EBP) and a key regulator of the early starvation response. Previous work showed that Nla28 directly regulates EBP genes that are important for fruiting body development. However, the Nla28 regulatory network is likely to be much larger because hundreds of starvation-induced genes are downregulated in a nla28 mutant strain. To identify candidates for direct Nla28-mediated transcription, we analyzed the downregulated genes using a bioinformatics approach. Nine potential Nla28 target promoters (29 genes) were discovered. The results of in vitro promoter binding assays, coupled with in vitro and in vivo mutational analyses, suggested that the nine promoters along with three previously identified EBP gene promoters were indeed in vivo targets of Nla28. These results also suggested that Nla28 used tandem, imperfect repeats of an 8-bp sequence for promoter binding. Interestingly, eight of the new Nla28 target promoters were predicted to be intragenic. Based on mutational analyses, the newly identified Nla28 target loci contained at least one gene that was important for starvation-induced development. Most of these loci contained genes predicted to be involved in metabolic or defense-related functions. Using the consensus Nla28 binding sequence, bioinformatics, and expression profiling, 58 additional promoters and 102 genes were tagged as potential Nla28 targets. Among these putative Nla28 targets, functions, such as regulatory, metabolic, and cell envelope biogenesis, were assigned to many genes. IMPORTANCE In bacteria, starvation leads to profound changes in behavior and physiology. Some of these changes have economic and health implications because the starvation response has been linked to the formation of biofilms, virulence, and antibiotic resistance. To better understand how starvation contributes to changes in bacterial physiology and resistance, we identified the putative starvation-induced gene regulatory network associated with Nla28, a transcriptional activator from the bacterium Myxoccocus xanthus. We determined the mechanism by which starvation-responsive genes were activated by Nla28 and showed that several of the genes were important for the formation of a highly resistant cell type.
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spelling pubmed-97652192022-12-21 Identifying the Gene Regulatory Network of the Starvation-Induced Transcriptional Activator Nla28 Ma, Muqing Garza, Anthony G. Lemon, David J. Caro, Eduardo A. Ritchie, Linnea Ryan, Charles Spearing, Victoria M. Murphy, Kimberly A. Welch, Roy D. J Bacteriol Research Article Myxococcus xanthus copes with starvation by producing fruiting bodies filled with dormant and stress-resistant spores. Here, we aimed to better define the gene regulatory network associated with Nla28, a transcriptional activator/enhancer binding protein (EBP) and a key regulator of the early starvation response. Previous work showed that Nla28 directly regulates EBP genes that are important for fruiting body development. However, the Nla28 regulatory network is likely to be much larger because hundreds of starvation-induced genes are downregulated in a nla28 mutant strain. To identify candidates for direct Nla28-mediated transcription, we analyzed the downregulated genes using a bioinformatics approach. Nine potential Nla28 target promoters (29 genes) were discovered. The results of in vitro promoter binding assays, coupled with in vitro and in vivo mutational analyses, suggested that the nine promoters along with three previously identified EBP gene promoters were indeed in vivo targets of Nla28. These results also suggested that Nla28 used tandem, imperfect repeats of an 8-bp sequence for promoter binding. Interestingly, eight of the new Nla28 target promoters were predicted to be intragenic. Based on mutational analyses, the newly identified Nla28 target loci contained at least one gene that was important for starvation-induced development. Most of these loci contained genes predicted to be involved in metabolic or defense-related functions. Using the consensus Nla28 binding sequence, bioinformatics, and expression profiling, 58 additional promoters and 102 genes were tagged as potential Nla28 targets. Among these putative Nla28 targets, functions, such as regulatory, metabolic, and cell envelope biogenesis, were assigned to many genes. IMPORTANCE In bacteria, starvation leads to profound changes in behavior and physiology. Some of these changes have economic and health implications because the starvation response has been linked to the formation of biofilms, virulence, and antibiotic resistance. To better understand how starvation contributes to changes in bacterial physiology and resistance, we identified the putative starvation-induced gene regulatory network associated with Nla28, a transcriptional activator from the bacterium Myxoccocus xanthus. We determined the mechanism by which starvation-responsive genes were activated by Nla28 and showed that several of the genes were important for the formation of a highly resistant cell type. American Society for Microbiology 2022-11-30 /pmc/articles/PMC9765219/ /pubmed/36448789 http://dx.doi.org/10.1128/jb.00265-22 Text en Copyright © 2022 Ma et al. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Ma, Muqing
Garza, Anthony G.
Lemon, David J.
Caro, Eduardo A.
Ritchie, Linnea
Ryan, Charles
Spearing, Victoria M.
Murphy, Kimberly A.
Welch, Roy D.
Identifying the Gene Regulatory Network of the Starvation-Induced Transcriptional Activator Nla28
title Identifying the Gene Regulatory Network of the Starvation-Induced Transcriptional Activator Nla28
title_full Identifying the Gene Regulatory Network of the Starvation-Induced Transcriptional Activator Nla28
title_fullStr Identifying the Gene Regulatory Network of the Starvation-Induced Transcriptional Activator Nla28
title_full_unstemmed Identifying the Gene Regulatory Network of the Starvation-Induced Transcriptional Activator Nla28
title_short Identifying the Gene Regulatory Network of the Starvation-Induced Transcriptional Activator Nla28
title_sort identifying the gene regulatory network of the starvation-induced transcriptional activator nla28
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9765219/
https://www.ncbi.nlm.nih.gov/pubmed/36448789
http://dx.doi.org/10.1128/jb.00265-22
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