Literature DB >> 28835360

Chlamydia trachomatis: the Persistent Pathogen.

Steven S Witkin1, Evelyn Minis2, Aikaterini Athanasiou2, Julie Leizer2, Iara M Linhares2,3.   

Abstract

Chlamydia trachomatis is an obligate intracellular bacterium whose only natural host is humans. Although presenting as asymptomatic in most women, genital tract chlamydial infections are a leading cause of pelvic inflammatory disease, tubal factor infertility, and ectopic pregnancy. C. trachomatis has evolved successful mechanisms to avoid destruction by autophagy and the host immune system and persist within host epithelial cells. The intracellular form of this organism, the reticulate body, can enter into a persistent nonreplicative but viable state under unfavorable conditions. The infectious form of the organism, the elementary body, is again generated when the immune attack subsides. In its persistent form, C. trachomatis ceases to produce its major structural and membrane components, but synthesis of its 60-kDa heat shock protein (hsp60) is greatly upregulated and released from the cell. The immune response to hsp60, perhaps exacerbated by repeated cycles of productive infection and persistence, may promote damage to fallopian tube epithelial cells, scar formation, and tubal occlusion. The chlamydial and human hsp60 proteins are very similar, and hsp60 is one of the first proteins produced by newly formed embryos. Thus, the development of immunity to epitopes in the chlamydial hsp60 that are also present in the corresponding human hsp60 may increase susceptibility to pregnancy failure in infected women. Delineation of host factors that increase the likelihood that C. trachomatis will avoid immune destruction and survive within host epithelial cells and utilization of this knowledge to design individualized preventative and treatment protocols are needed to more effectively combat infections by this persistent pathogen.
Copyright © 2017 American Society for Microbiology.

Entities:  

Keywords:  Chlamydia trachomatis; heat shock protein; infertility; persistence; tubal occlusion

Mesh:

Substances:

Year:  2017        PMID: 28835360      PMCID: PMC5629669          DOI: 10.1128/CVI.00203-17

Source DB:  PubMed          Journal:  Clin Vaccine Immunol        ISSN: 1556-679X


  87 in total

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Journal:  Proc Natl Acad Sci U S A       Date:  2000-10-10       Impact factor: 11.205

2.  Beyond Tryptophan Synthase: Identification of Genes That Contribute to Chlamydia trachomatis Survival during Gamma Interferon-Induced Persistence and Reactivation.

Authors:  Matthew K Muramatsu; Julie A Brothwell; Barry D Stein; Timothy E Putman; Daniel D Rockey; David E Nelson
Journal:  Infect Immun       Date:  2016-09-19       Impact factor: 3.441

3.  Recurrent miscarriages, innate immunity, and autoimmune reaction to chlamydial 60-kDa heat shock protein--is there an association?

Authors:  Waltraud Eggert-Kruse; Sandra Scholz; Michael Kirschfink; Thomas Strowitzki
Journal:  Fertil Steril       Date:  2014-03-26       Impact factor: 7.329

4.  Chlamydia trachomatis persistence in vitro: an overview.

Authors:  Priscilla B Wyrick
Journal:  J Infect Dis       Date:  2010-06-15       Impact factor: 5.226

Review 5.  Duration of untreated, uncomplicated Chlamydia trachomatis genital infection and factors associated with chlamydia resolution: a review of human studies.

Authors:  William M Geisler
Journal:  J Infect Dis       Date:  2010-06-15       Impact factor: 5.226

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Journal:  Infect Immun       Date:  1998-09       Impact factor: 3.441

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Journal:  Emerg Infect Dis       Date:  1996 Oct-Dec       Impact factor: 6.883

8.  Evidence that the endometrial microbiota has an effect on implantation success or failure.

Authors:  Inmaculada Moreno; Francisco M Codoñer; Felipe Vilella; Diana Valbuena; Juan F Martinez-Blanch; Jorge Jimenez-Almazán; Roberto Alonso; Pilar Alamá; Jose Remohí; Antonio Pellicer; Daniel Ramon; Carlos Simon
Journal:  Am J Obstet Gynecol       Date:  2016-10-04       Impact factor: 8.661

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Authors:  W L Beatty; T A Belanger; A A Desai; R P Morrison; G I Byrne
Journal:  Infect Immun       Date:  1994-09       Impact factor: 3.441

10.  Autophagy restricts Chlamydia trachomatis growth in human macrophages via IFNG-inducible guanylate binding proteins.

Authors:  Munir A Al-Zeer; Hesham M Al-Younes; Daniel Lauster; Mohammad Abu Lubad; Thomas F Meyer
Journal:  Autophagy       Date:  2012-10-19       Impact factor: 16.016

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  41 in total

1.  Association between human papillomavirus and chlamydia trachomatis infection risk in women: a systematic review and meta-analysis.

Authors:  Giulia Naldini; Chiara Grisci; Manuela Chiavarini; Roberto Fabiani
Journal:  Int J Public Health       Date:  2019-06-08       Impact factor: 3.380

2.  Bacterial Load of Chlamydia trachomatis in the Posterior Oropharynx, Tonsillar Fossae, and Saliva among Men Who Have Sex with Men with Untreated Oropharyngeal Chlamydia.

Authors:  Tiffany R Phillips; Christopher K Fairley; Kate Maddaford; Jennifer Danielewski; Jane S Hocking; David Lee; Deborah A Williamson; Gerald Murray; Fabian Kong; Vesna De Petra; Catriona S Bradshaw; Marcus Y Chen; Rebecca Wigan; Anthony Snow; Benjamin P Howden; Suzanne M Garland; Eric P F Chow
Journal:  J Clin Microbiol       Date:  2019-12-23       Impact factor: 5.948

Review 3.  Ocular Chlamydia trachomatis infection: elimination with mass drug administration.

Authors:  Meraf A Wolle; Sheila K West
Journal:  Expert Rev Anti Infect Ther       Date:  2019-02-18       Impact factor: 5.091

4.  ERK1/2 and the Bcl-2 Family Proteins Mcl-1, tBid, and Bim Are Involved in Inhibition of Apoptosis During Persistent Chlamydia psittaci Infection.

Authors:  Li Li; Chuan Wang; Yating Wen; Yuming Hu; Yafeng Xie; Man Xu; Mingxing Liang; Wei Liu; Liangzhuan Liu; Yimou Wu
Journal:  Inflammation       Date:  2018-08       Impact factor: 4.092

5.  High-resolution multilocus sequence typing for Chlamydia trachomatis: improved results for clinical samples with low amounts of C. trachomatis DNA.

Authors:  Shlomo Pilo; Gal Zizelski Valenci; Mor Rubinstein; Lea Pichadze; Yael Scharf; Zeev Dveyrin; Efrat Rorman; Israel Nissan
Journal:  BMC Microbiol       Date:  2021-01-18       Impact factor: 3.605

6.  Chlamydia trachomatis induces autophagy by p62 in HeLa cell.

Authors:  Fuyan Wang; Hongbo Zhang; Xiaofang Lu; Quan Zhu; Tingting Shi; Rong Lu; Ping Yu; Lei Zhang; Yong Wang
Journal:  World J Microbiol Biotechnol       Date:  2021-02-16       Impact factor: 3.312

7.  Toll-Like Receptor 3 Deficiency Leads to Altered Immune Responses to Chlamydia trachomatis Infection in Human Oviduct Epithelial Cells.

Authors:  Jerry Z Xu; Ramesh Kumar; Haoli Gong; Luyao Liu; Nicole Ramos-Solis; Yujing Li; Wilbert A Derbigny
Journal:  Infect Immun       Date:  2019-09-19       Impact factor: 3.441

8.  Presence of Chlamydia trachomatis DNA in the amniotic fluid in women with preterm prelabor rupture of membranes.

Authors:  Marian Kacerovsky; Roberto Romero; Lenka Pliskova; Radka Bolehovska; Helena Hornychova; Adela Matejkova; Hana Vosmikova; Ctirad Andrys; Martina Kolackova; Piotr Laudański; Vera Pelantova; Bo Jacobsson; Ivana Musilova
Journal:  J Matern Fetal Neonatal Med       Date:  2019-07-15

Review 9.  Bridging the gap between development of point-of-care nucleic acid testing and patient care for sexually transmitted infections.

Authors:  Kuangwen Hsieh; Johan H Melendez; Charlotte A Gaydos; Tza-Huei Wang
Journal:  Lab Chip       Date:  2022-02-01       Impact factor: 7.517

10.  Chlamydial clinical isolates show subtle differences in persistence phenotypes and growth in vitro.

Authors:  Mark Thomas; Amba Lawrence; Samuel Kroon; Lenka A Vodstrcil; Samuel Phillips; Jane S Hocking; Peter Timms; Wilhelmina M Huston
Journal:  Access Microbiol       Date:  2021-02-19
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