Impact of Active Metabolism on Chlamydia trachomatis Elementary Body Transcript Profile and Infectivity

Scott Grieshaber1, Nicole Grieshaber2, Hong Yang3

  • 1Department of Biological Sciences, College of Science, University of Idaho, Moscow, Idaho, USA scottg@uidaho.edu anders.omsland@wsu.edu.

Insights

The infectious elementary body (EB) of Chlamydia actively metabolizes nutrients to maintain infectivity, challenging the view of EBs as metabolically inert. This active maintenance is crucial for prolonged survival and infection, both inside and outside host cells.

Area of Science:

  • Microbiology
  • Cell Biology
  • Infectious Diseases

Background:

  • Chlamydiae are obligate intracellular bacteria with a biphasic developmental cycle involving elementary bodies (EBs) and reticulate bodies (RBs).
  • The EB form is traditionally considered metabolically quiescent, serving primarily as an infectious particle.
  • Chlamydia trachomatis is a major cause of sexually transmitted infections, highlighting the public health significance of understanding its biology.

Purpose of the Study:

  • To investigate the metabolic activity of extracellular elementary bodies (EBs) of Chlamydia.
  • To determine if EBs actively maintain their infectivity through metabolic processes.
  • To characterize the transcriptional profile of EBs under metabolically stimulating conditions.

Main Methods:

  • Transcriptome sequencing of extracellular EBs incubated with nutrients.
  • Comparison of EB transcriptomes from different conditions (extracellular incubation, infected cells, germination).
  • Analysis of metabolic utilization of compounds like glucose 6-phosphate, ATP, and amino acids by EBs.

Main Results:

  • Extracellular EBs incubated with nutrients exhibited a transcriptome profile distinct from germinating EBs, clustering with EBs from infected cells.
  • The transcriptional profile indicated active EB production rather than germination.
  • EBs maintained infectivity by metabolizing diverse compounds found in extracellular environments, including mucosal secretions.
  • The EB form actively maintains infectivity within the host cell inclusion after differentiation.

Conclusions:

  • The elementary body (EB) form of Chlamydia is not metabolically inert but actively maintains its infectivity through metabolic processes.
  • This active maintenance allows for prolonged infectivity in both cell-free environments (e.g., mucosal surfaces) and within host cells.
  • Findings challenge the historical view of EBs and reveal a more dynamic role in chlamydial pathogenesis.

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