Plant-Produced N-glycosylated Ag85A Exhibits Enhanced Vaccine Efficacy Against HN878 Through Balanced Multifunctional Th1 T Cell Immunity.

Vaccines (Basel)

Department of Microbiology, Institute for Immunology and Immunological Diseases, Brain Korea 21 PLUS Project for Medical Science, Yonsei University College of Medicine, Seoul 03722, Korea.

Published: April 2020

AI Article Synopsis

  • Tuberculosis (TB) is a major global health threat caused by Mycobacterium tuberculosis (Mtb), and developing an effective vaccine is crucial for controlling the disease.
  • This study produced a glycosylated version of the antigen 85A protein (G-Ag85A) using a plant system and compared its effectiveness to a non-glycosylated version (NG-Ag85A) made with a different method.
  • The results showed that G-Ag85A induced a stronger immune response and provided better long-term protection against TB in mice, suggesting it could be a promising candidate for future anti-TB vaccines.

Article Abstract

Tuberculosis (TB) is one of the deadliest infectious diseases worldwide and is caused by (Mtb). An effective vaccine to prevent TB is considered the most cost-effective measure for controlling this disease. Many different vaccine antigen (Ag) candidates, including well-known and newly identified Ags, have been evaluated in clinical and preclinical studies. In this study, we took advantage of a plant system of protein expression using to produce N-glycosylated antigen 85A (G-Ag85A), which is one of the most well-characterized vaccine Ag candidates in the field of TB vaccines, and compared its immunogenicity and vaccine efficacy with those of nonglycosylated Ag85A (NG-Ag85A) produced with an system. Notably, G-Ag85A induced a more robust IFN-γ response than NG-Ag85A, which indicated that G-Ag85A is well recognized by the host immune system during Mtb infection. We subsequently compared the vaccine potential of G-Ag85A and NG-Ag85A by evaluating their immunological features and substantial protection efficacies. Interestingly, G-Ag85A yielded moderately enhanced long-term protective efficacy, as measured in terms of bacterial burden and lung inflammation. Strikingly, G-Ag85A-immunized mice showed a more balanced proportion of multifunctional Th1-biased immune responses with sustained IFN-γ response than did NG-Ag85A-immunized mice. Collectively, plant-derived G-Ag85A could induce protective and balanced Th1 responses and confer long-term protection against a hypervirulent Mtb Beijing strain infection, which indicated that plant-produced G-Ag85A might provide an excellent example for the production of an Mtb subunit vaccine Ag and could be an effective platform for the development of anti-TB vaccines.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7349862PMC
http://dx.doi.org/10.3390/vaccines8020189DOI Listing

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