Literature DB >> 11908999

Chlamydia vaccines: strategies and status.

Joseph U Igietseme1, Carolyn M Black, Harlan D Caldwell.   

Abstract

The ultimate goal of current chlamydial vaccine efforts is to utilise either conventional or modern vaccinology approaches to produce a suitable immunisation regimen capable of inducing a sterilising, long-lived heterotypic protective immunity at mucosal sites of infection to curb the severe morbidity and worldwide prevalence of chlamydial infections. This lofty goal poses tremendous challenges that include the need to clearly define the relevant effectors mediating immunity, the antigens responsible for inducing these effectors, the anti-chlamydial action(s) of effectors, and establishment of the most effective method of vaccine delivery. Tackling these challenges is further compounded by the biological complexity of chlamydia, the existence of multiple serovariants, the capacity to induce both protective and deleterious immune effectors, and the occurrence of asymptomatic and persistent infections. Thus, novel molecular, immunological and genetic approaches are urgently needed to extend the frontiers of current knowledge, and develop new paradigms to guide the production of an effective vaccine regimen. Progress made in the last 15 years has culminated in various paradigm shifts in the approaches to designing chlamydial vaccines. The dawn of the current immunological paradigm for antichlamydial vaccine design has its antecedence in the recognition that chlamydial immunity is mediated primarily by a T helper type1 (Th1) response, requiring the induction and recruitment of specific T cells into the mucosal microenvironment. Additionally, the ancillary role of humoral immune response in complementing the Th1-driven protective immunity, through ensuring adequate memory and optimal Th1 response during a reinfection, has been recognised. With continued progress in chlamydial genomics and proteomics, select chlamydial proteins, including structural, membrane and secretory proteins, are being targeted as potential subunit vaccine candidates. However, the development of an effective adjuvant, delivery vehicle or system for a potential subunit vaccine is still an elusive objective in these efforts. Promising delivery vehicles include DNA and virus vectors, bacterial ghosts and dendritic cells. Finally, a vaccine still represents the best approach to protect the greatest number of people against the ocular, pulmonary and genital diseases caused by chlamydial infections. Therefore, considering the urgency and the enormity of these challenges, a partially protective vaccine preventing certain severe sequelae would constitute an acceptable short-term goal to control Chlamydia. However, more research efforts and support are needed to achieve the worthy goal of protecting a significant number of the world's population from the devastating consequences of chlamydial invasion of the human mucosal epithelia.

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Year:  2002        PMID: 11908999     DOI: 10.2165/00063030-200216010-00003

Source DB:  PubMed          Journal:  BioDrugs        ISSN: 1173-8804            Impact factor:   5.807


  20 in total

1.  Induction of immune memory by a multisubunit chlamydial vaccine.

Authors:  F O Eko; E Ekong; Q He; C M Black; J U Igietseme
Journal:  Vaccine       Date:  2010-12-22       Impact factor: 3.641

2.  Influence of different delivery modes on the clinical characteristics of Chlamydia trachomatis pneumonia.

Authors:  Jiejing Xu; Lili Yu; Baidi Fu; Deyu Zhao; Feng Liu
Journal:  Eur J Pediatr       Date:  2018-05-31       Impact factor: 3.183

3.  Vaccination with the Chlamydia trachomatis major outer membrane protein can elicit an immune response as protective as that resulting from inoculation with live bacteria.

Authors:  Sukumar Pal; Ellena M Peterson; Luis M de la Maza
Journal:  Infect Immun       Date:  2005-12       Impact factor: 3.441

4.  Specific-pathogen-free pigs as an animal model for studying Chlamydia trachomatis genital infection.

Authors:  Daisy Vanrompay; Thi Q T Hoang; Liselotte De Vos; Kristel Verminnen; Taher Harkinezhad; Koen Chiers; Servaas A Morré; Eric Cox
Journal:  Infect Immun       Date:  2005-12       Impact factor: 3.441

5.  Immunogenicity of a vaccine formulated with the Chlamydia trachomatis serovar F, native major outer membrane protein in a nonhuman primate model.

Authors:  Chunmei Cheng; Sukumar Pal; Ilham Bettahi; Kristie L Oxford; Peter A Barry; Luis M de la Maza
Journal:  Vaccine       Date:  2011-03-04       Impact factor: 3.641

6.  A live and inactivated Chlamydia trachomatis mouse pneumonitis strain induces the maturation of dendritic cells that are phenotypically and immunologically distinct.

Authors:  Jose Rey-Ladino; Kasra M Koochesfahani; Michelle L Zaharik; Caixia Shen; Robert C Brunham
Journal:  Infect Immun       Date:  2005-03       Impact factor: 3.441

7.  Serovar-specific immune responses to peptides of variable regions of Chlamydia trachomatis major outer membrane protein in serovar D-infected women.

Authors:  Pragya Srivastava; Rishein Gupta; Hem Chandra Jha; Rajneesh Jha; Apurb Rashmi Bhengraj; Sudha Salhan; Aruna Mittal
Journal:  Clin Exp Med       Date:  2008-09-25       Impact factor: 3.984

8.  Identification and characterization of novel recombinant vaccine antigens for immunization against genital Chlamydia trachomatis.

Authors:  Rhea N Coler; Ajay Bhatia; Jean-Francois Maisonneuve; Peter Probst; Brenda Barth; Pamela Ovendale; Hang Fang; Mark Alderson; Yves Lobet; Joe Cohen; Pascal Mettens; Steven G Reed
Journal:  FEMS Immunol Med Microbiol       Date:  2009-03

9.  A Vibrio cholerae ghost-based subunit vaccine induces cross-protective chlamydial immunity that is enhanced by CTA2B, the nontoxic derivative of cholera toxin.

Authors:  Eno E Ekong; Daniel N Okenu; Jayanti Mania-Pramanik; Qing He; Joseph U Igietseme; Godwin A Ananaba; Deborah Lyn; Carolyn Black; Francis O Eko
Journal:  FEMS Immunol Med Microbiol       Date:  2008-11-18

10.  Profiling of human antibody responses to Chlamydia trachomatis urogenital tract infection using microplates arrayed with 156 chlamydial fusion proteins.

Authors:  Jyotika Sharma; Youmin Zhong; Feng Dong; Jeanna M Piper; Guqi Wang; Guangming Zhong
Journal:  Infect Immun       Date:  2006-03       Impact factor: 3.441

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