4.4 Article

Large Metabolic Rewiring from Small Genomic Changes between Strains of Shigella flexneri

期刊

JOURNAL OF BACTERIOLOGY
卷 203, 期 11, 页码 -

出版社

AMER SOC MICROBIOLOGY
DOI: 10.1128/JB.00056-21

关键词

Shigella flexneri; microaerobic metabolism; mixed acid fermentation; formate; acetate; acetyl-CoA

资金

  1. National Institutes of Health [GM110185]
  2. Burroughs Wellcome Fund Award
  3. National Science Foundation CAREER Award [1750785, 1750125]
  4. Beckman Young Investigator award from the Arnold and Mabel Beckman Foundation
  5. Australian Research Council [DP170104325]
  6. J. K. Billman, Jr., MD, Endowed Research Professorship
  7. Div Of Chem, Bioeng, Env, & Transp Sys
  8. Directorate For Engineering [1750785] Funding Source: National Science Foundation
  9. Div Of Molecular and Cellular Bioscience
  10. Direct For Biological Sciences [1750125] Funding Source: National Science Foundation

向作者/读者索取更多资源

The study describes the genome of S. flexneri strain PE577 and its phenotypic differences compared to model strain 2457T. PE577 lacks functional CRISPR and restriction-modification systems, exhibiting lower transformation efficiency, higher oxygen sensitivity, altered carbon metabolism, and greater susceptibility to lytic bacteriophages. Understanding these differences could help in developing vaccines and therapeutics to combat Shigella infection.
The instability of Shigella genomes has been described, but how this instability causes phenotypic differences within the Shigella flexneri species is largely unknown and likely variable. We describe here the genome of S. flexneri strain PE577, originally a clinical isolate, which exhibits several phenotypic differences compared to the model strain 2457T. Like many previously described strains of S. flexneri, PE577 lacks discernible, functional CRISPR and restriction-modification systems. Its phenotypic differences compared to 2457T include lower transformation efficiency, higher oxygen sensitivity, altered carbon metabolism, and greater susceptibility to a wide variety of lytic bacteriophage isolates. Since relatively few Shigella phages have been isolated on 2457T or the previously characterized strain M90T, developing a more universal model strain for isolating and studying Shigella phages is critical to understanding both phages and phage-host interactions. In addition to phage biology, the genome sequence of PE577 was used to generate and test hypotheses of how pseudogenes in this strain-whether interrupted by degraded prophages, transposases, frameshifts, or point mutations-have led to metabolic rewiring compared to the model strain 2457T. Results indicate that PE577 can utilize the less-efficient pyruvate oxidase/acetyl coenzyme A (acetyl-CoA) synthetase (PoxB/Acs) pathway to produce acetyl-CoA, while strain 2457T cannot due to a nonsense mutation in acs, rendering it a pseudogene in this strain. Both strains also utilize pyruvate-formate lyase to oxidize formate but cannot survive with this pathway alone, possibly because a component of the formate-hydrogen lyase (fdhF) is a pseudogene in both strains. IMPORTANCE Shigella causes millions of dysentery cases worldwide, primarily affecting children under 5 years old. Despite active research in developing vaccines and new antibiotics, relatively little is known about the variation of physiology or metabolism across multiple isolates. In this work, we investigate two strains of Shigella flexneri that share 98.9% genetic identity but exhibit drastic differences in metabolism, ultimately affecting the growth of the two strains. Results suggest that additional strains within the S. flexneri species utilize different metabolic pathways to process pyruvate. Metabolic differences between these closely related isolates suggest an even wider variety of differences in growth across S. flexneri and Shigella in general. Exploring this variation further may assist in the development or application of vaccines and therapeutics to combat Shigella infection.

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