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Updated: Jun 7, 2026

Determination of Vaccine Immunogenicity Using Bovine Monocyte-Derived Dendritic Cells
Published on: May 19, 2023
Burkholderia pseudomallei proteins presented by monocyte-derived dendritic cells stimulate human memory T cells in
Patcharaporn Tippayawat1, Maneerat Pinsiri, Darawan Rinchai
1The Centre for Research & Development of Medical Diagnostic Laboratories, Faculty of Associated Medical Sciences, Khon Kaen University, Khon Kaen, Thailand.
Abstract:
Melioidosis is a severe infectious disease caused by the saprophytic facultative intracellular pathogen Burkholderia pseudomallei. The disease is endemic in Southeast Asia and Northern Australia, and no effective vaccine exists. To describe human cell-mediated immune responses to B. pseudomallei and to identify candidate antigens for vaccine development, the ability of antigen-pulsed monocyte-derived dendritic cells (moDCs) to trigger autologous T-cell responses to B. pseudomallei and its products was tested. moDCs were prepared from healthy individuals exposed or not exposed to B. pseudomallei, based on serological evidence. These were pulsed with heat-killed B. pseudomallei or purified antigens, including ABC transporters (LolC, OppA, and PotF), Bsa type III secreted proteins (BipD and BopE), tandem repeat sequence-containing proteins (Rp1 and Rp2), flagellin, and heat shock proteins (Hsp60 and Hsp70), prior to being mixed with autologous T-cell populations. After pulsing of cells with either heat-killed B. pseudomallei, LolC, or Rp2, coculturing the antigen-pulsed moDCs with T cells elicited gamma interferon production from CD4(+) T cells from seropositive donors at levels greater than those for seronegative donors. These antigens also induced granzyme B (cytotoxic) responses from CD8(+) T cells. Activation of antigen-specific CD4(+) T cells required direct contact with moDCs and was therefore not dependent on soluble mediators. Rp peptide epitopes recognized by T cells in healthy individuals were identified. Our study provides valuable novel data on the induction of human cell-mediated immune responses to B. pseudomallei and its protein antigens that may be exploited in the rational development of vaccines to combat melioidosis.
Insights
Researchers identified key Burkholderia pseudomallei antigens that trigger immune responses in humans, offering potential targets for a new melioidosis vaccine. This study reveals how dendritic cells present these antigens to T cells, guiding future vaccine development.
Area of Science:
- Infectious Diseases
- Immunology
- Vaccine Development
Background:
- Melioidosis, caused by Burkholderia pseudomallei, is a severe infectious disease endemic in Southeast Asia and Northern Australia.
- There is currently no effective vaccine available for melioidosis, highlighting the need for novel vaccine strategies.
Purpose of the Study:
- To characterize human cell-mediated immune responses to Burkholderia pseudomallei.
- To identify potential candidate antigens for the development of a melioidosis vaccine.
Main Methods:
- Monocyte-derived dendritic cells (moDCs) from healthy individuals (seropositive or seronegative for B. pseudomallei) were pulsed with heat-killed bacteria or specific antigens.
- Pulsed moDCs were co-cultured with autologous T cells to assess T-cell responses, including gamma interferon production and cytotoxic activity.
- Specific antigens tested included ABC transporters, type III secreted proteins, tandem repeat proteins, flagellin, and heat shock proteins.
Main Results:
- Co-culturing moDCs pulsed with heat-killed B. pseudomallei, LolC, or Rp2 elicited higher gamma interferon production from CD4+ T cells in seropositive donors compared to seronegative donors.
- CD8+ T cells from seropositive donors showed granzyme B (cytotoxic) responses to these antigens.
- Activation of antigen-specific CD4+ T cells required direct contact with moDCs.
Conclusions:
- Certain B. pseudomallei antigens, specifically LolC and Rp2, can induce robust cell-mediated immune responses in humans.
- These identified antigens and T-cell epitopes are promising candidates for the rational development of a melioidosis vaccine.
- Understanding these immune responses is crucial for advancing vaccine strategies against this deadly disease.
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