Inactivation of genes in oxidative respiration and iron acquisition pathways in pediatric clinical isolates of Small colony variant Enterobacteriaceae

Abstract Isolation of bacterial small colony variants (SCVs) from clinical specimens is not uncommon and can fundamentally change the outcome of the associated infections. Bacterial SCVs often emerge with their normal colony phenotype (NCV) co-isolates in the same sample. The basis of SCV emergence...

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Main Authors: Alexander L. Greninger, Amin Addetia, Yue Tao, Amanda Adler, Xuan Qin
Format: Article
Language:English
Published: Nature Publishing Group 2021-04-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-021-86764-4
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spelling doaj-1b8134ebeecd4cfaad1193d856b87bbe2021-04-04T11:33:24ZengNature Publishing GroupScientific Reports2045-23222021-04-0111111210.1038/s41598-021-86764-4Inactivation of genes in oxidative respiration and iron acquisition pathways in pediatric clinical isolates of Small colony variant EnterobacteriaceaeAlexander L. Greninger0Amin Addetia1Yue Tao2Amanda Adler3Xuan Qin4Department of Laboratory Medicine and Pathology, University of WashingtonDepartment of Laboratory Medicine and Pathology, University of WashingtonShanghai Children’s Medical Center, Translational Research Institute, Shanghai Jiao Tong University School of MedicineSeattle Children’s HospitalDepartment of Laboratory Medicine and Pathology, University of WashingtonAbstract Isolation of bacterial small colony variants (SCVs) from clinical specimens is not uncommon and can fundamentally change the outcome of the associated infections. Bacterial SCVs often emerge with their normal colony phenotype (NCV) co-isolates in the same sample. The basis of SCV emergence in vivo is not well understood in Gram-negative bacteria. In this study, we interrogated the causal genetic lesions of SCV growth in three pairs of NCV and SCV co-isolates of Escherichia coli, Citrobacter freundii, and Enterobacter hormaechei. We confirmed SCV emergence was attributed to limited genomic mutations: 4 single nucleotide variants in the E. coli SCV, 5 in C. freundii, and 8 in E. hormaechei. In addition, a 10.2 kb chromosomal segment containing 11 genes was deleted in the E. hormaechei SCV isolate. Each SCV had at least one coding change in a gene associated with bacterial oxidative respiration and another involved in iron capture. Chemical and genetic rescue confirmed defects in heme biosynthesis for E. coli and C. freundii and lipoic acid biosynthesis in E. hormaachei were responsible for the SCV phenotype. Prototrophic growth in all 3 SCV Enterobacteriaceae species was unaffected under anaerobic culture conditions in vitro, illustrating how SCVs may persist in vivo.https://doi.org/10.1038/s41598-021-86764-4
collection DOAJ
language English
format Article
sources DOAJ
author Alexander L. Greninger
Amin Addetia
Yue Tao
Amanda Adler
Xuan Qin
spellingShingle Alexander L. Greninger
Amin Addetia
Yue Tao
Amanda Adler
Xuan Qin
Inactivation of genes in oxidative respiration and iron acquisition pathways in pediatric clinical isolates of Small colony variant Enterobacteriaceae
Scientific Reports
author_facet Alexander L. Greninger
Amin Addetia
Yue Tao
Amanda Adler
Xuan Qin
author_sort Alexander L. Greninger
title Inactivation of genes in oxidative respiration and iron acquisition pathways in pediatric clinical isolates of Small colony variant Enterobacteriaceae
title_short Inactivation of genes in oxidative respiration and iron acquisition pathways in pediatric clinical isolates of Small colony variant Enterobacteriaceae
title_full Inactivation of genes in oxidative respiration and iron acquisition pathways in pediatric clinical isolates of Small colony variant Enterobacteriaceae
title_fullStr Inactivation of genes in oxidative respiration and iron acquisition pathways in pediatric clinical isolates of Small colony variant Enterobacteriaceae
title_full_unstemmed Inactivation of genes in oxidative respiration and iron acquisition pathways in pediatric clinical isolates of Small colony variant Enterobacteriaceae
title_sort inactivation of genes in oxidative respiration and iron acquisition pathways in pediatric clinical isolates of small colony variant enterobacteriaceae
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2021-04-01
description Abstract Isolation of bacterial small colony variants (SCVs) from clinical specimens is not uncommon and can fundamentally change the outcome of the associated infections. Bacterial SCVs often emerge with their normal colony phenotype (NCV) co-isolates in the same sample. The basis of SCV emergence in vivo is not well understood in Gram-negative bacteria. In this study, we interrogated the causal genetic lesions of SCV growth in three pairs of NCV and SCV co-isolates of Escherichia coli, Citrobacter freundii, and Enterobacter hormaechei. We confirmed SCV emergence was attributed to limited genomic mutations: 4 single nucleotide variants in the E. coli SCV, 5 in C. freundii, and 8 in E. hormaechei. In addition, a 10.2 kb chromosomal segment containing 11 genes was deleted in the E. hormaechei SCV isolate. Each SCV had at least one coding change in a gene associated with bacterial oxidative respiration and another involved in iron capture. Chemical and genetic rescue confirmed defects in heme biosynthesis for E. coli and C. freundii and lipoic acid biosynthesis in E. hormaachei were responsible for the SCV phenotype. Prototrophic growth in all 3 SCV Enterobacteriaceae species was unaffected under anaerobic culture conditions in vitro, illustrating how SCVs may persist in vivo.
url https://doi.org/10.1038/s41598-021-86764-4
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