Transcriptional Response Patterns ofChlamydophila psittaciin Different In Vitro Models of Persistent Infection
- 1 August 2006
- journal article
- Published by American Society for Microbiology in Infection and Immunity
- Vol. 74 (8) , 4801-4808
- https://doi.org/10.1128/iai.01487-05
Abstract
The obligatory intracellular bacterium Chlamydophila psittaci is the causative agent of psittacosis in birds and humans. The capability of this zoonotic pathogen to develop a persistent phase is likely to play a role in chronicity of infections, as well as in failure of antibiotic therapy and immunoprophylaxis. To elucidate three different in vitro models for transition of C. psittaci to persistence (iron depletion, penicillin G treatment, and gamma interferon [IFN-gamma] exposure), a set of 27 genes was examined by mRNA expression analysis using quantitative real-time PCR. While the phenotypical characteristics were the same as in other chlamydiae, i.e., aberrant morphology of reticulate bodies, loss of cultivability, and rescue of infectivity upon removal of inducers, the transcriptional response of C. psittaci to persistence-inducing factors included several new and distinctive features. Consistent downregulation of membrane proteins, chlamydial sigma factors, cell division protein, and reticulate body-elementary body differentiation proteins from 24 h postinfection onward proved to be a general feature of C. psittaci persistence. However, other genes displayed considerable variations in response patterns from one model to another, which suggests that there is no persistence model per se. In contrast to results for Chlamydia trachomatis, late shutdown of essential genes in C. psittaci was more comprehensive with IFN-gamma-induced persistence, which is probably due to the absence of a functional tryptophan synthesis operon.Keywords
This publication has 51 references indexed in Scilit:
- Silencing or permanent activation: host-cell responses in models of persistent Chlamydia pneumoniae infectionCellular Microbiology, 2005
- Structure of the Chlamydia Protein CADD Reveals a Redox Enzyme That Modulates Host Cell ApoptosisJournal of Biological Chemistry, 2004
- Chlamydial Persistence: beyond the Biphasic ParadigmInfection and Immunity, 2004
- Tryptophan recycling is responsible for the interferon‐γ resistance of Chlamydia psittaci GPIC in indoleamine dioxygenase‐expressing host cellsMolecular Microbiology, 2004
- Global Stage-Specific Gene Regulation during the Developmental Cycle of Chlamydia trachomatisJournal of Bacteriology, 2003
- Inhibition of Apoptosis by Gamma Interferon in Cells and Mice Infected withChlamydia muridarum(the Mouse Pneumonitis Strain ofChlamydia trachomatis)Infection and Immunity, 2002
- Analysis of Chlamydia pneumoniae Growth in Cells by Reverse Transcription-PCR Targeted to Bacterial Gene TranscriptsClinical and Vaccine Immunology, 2002
- A new mathematical model for relative quantification in real-time RT-PCRNucleic Acids Research, 2001
- Genome Sequence of an Obligate Intracellular Pathogen of Humans: Chlamydia trachomatisScience, 1998
- Chlamydial infections of poultry and human healthWorld's Poultry Science Journal, 1996