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Published on: January 30, 2020
Chlamydia Deficient in Plasmid-Encoded pGP3 Is Prevented from Spreading to Large Intestine
Zhi Huo1,2, Conghui He1,3, Ying Xu1,2
1Department of Microbiology, Immunology and Molecular Genetics, University of Texas Health Science Center at San Antonio, San Antonio, Texas, USA.
Abstract:
The cryptic plasmid pCM is critical for chlamydial colonization in the gastrointestinal tract. Nevertheless, orally inoculated plasmid-free Chlamydia sp. was still able to colonize the gut. Surprisingly, orally inoculated Chlamydia sp. deficient in only plasmid-encoded pGP3 was no longer able to colonize the gut. A comparison of live organism recoveries from individual gastrointestinal tissues revealed that pGP3-deficient Chlamydia sp. survived significantly better than plasmid-free Chlamydia sp. in small intestinal tissues. However, the small intestinal pGP3-deficient Chlamydia sp. failed to reach the large intestine, explaining the lack of live pGP3-deficient Chlamydia sp. in rectal swabs following an oral inoculation. Interestingly, pGP3-deficient Chlamydia sp. was able to colonize the colon following an intracolon inoculation, suggesting that pGP3-deficient Chlamydia sp. might be prevented from spreading from the small intestine to the large intestine. This hypothesis is supported by the finding that following an intrajejunal inoculation that bypasses the gastric barrier, pGP3-deficient Chlamydia sp. still failed to reach the large intestine, although similarly inoculated plasmid-free Chlamydia sp. was able to do so. Interestingly, when both types of organisms were intrajejunally coinoculated into the same mouse small intestine, plasmid-free Chlamydia sp. was no longer able to spread to the large intestine, suggesting that pGP3-deficient Chlamydia sp. might be able to activate an intestinal resistance for regulating Chlamydia sp. spreading. Thus, the current study has not only provided evidence for reconciling a previously identified conflicting phenotype but also revealed a potential intestinal resistance to chlamydial spreading. Efforts are under way to further define the mechanism of the putative intestinal resistance.
Insights
The plasmid pGP3 is essential for Chlamydia gut colonization. Even when bypassing the stomach, pGP3-deficient Chlamydia cannot spread to the large intestine, suggesting an intestinal resistance mechanism.
Area of Science:
- Microbiology
- Gastroenterology
- Infectious Diseases
Background:
- The cryptic plasmid pCM is vital for chlamydial gut colonization.
- Previous studies showed conflicting results regarding the role of plasmid-free Chlamydia in gut colonization.
Purpose of the Study:
- To investigate the role of plasmid-encoded pGP3 in Chlamydia gastrointestinal tract colonization.
- To elucidate the mechanism behind Chlamydia spreading within the intestine.
Main Methods:
- Oral, intracolon, and intrajejunal inoculation of wild-type, plasmid-free, and pGP3-deficient Chlamydia in mice.
- Comparison of live organism recovery from various gastrointestinal tissues.
- Coinoculation experiments to assess competitive interactions.
Main Results:
- Plasmid-free Chlamydia colonized the gut upon oral inoculation.
- Chlamydia deficient in pGP3 failed gut colonization after oral inoculation.
- pGP3-deficient Chlamydia survived better in the small intestine but could not reach the large intestine.
- Intrajejunal inoculation revealed pGP3-deficient Chlamydia's inability to spread to the large intestine, unlike plasmid-free strains.
- Coinoculation suggested pGP3-deficient Chlamydia activates an intestinal resistance against Chlamydia spreading.
Conclusions:
- Plasmid-encoded pGP3 is crucial for Chlamydia colonization and spreading within the gastrointestinal tract.
- A novel intestinal resistance mechanism may regulate Chlamydia spreading, potentially mediated by pGP3-deficient Chlamydia.
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