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Published on: January 7, 2019
The pathway of antigen uptake and processing dictates MHC class II-mediated B cell survival and activation
Toufic O Nashar1, James R Drake
1Albany Medical College, Center for Immunology and Microbial Disease, Albany, NY 12208, USA.
Insights
The pathway of antigen processing impacts B cell survival. BCR-mediated processing promotes B cell survival, while fluid-phase processing leads to significant B cell loss after T cell interaction.
Area of Science:
- Immunology
- Cell Biology
Background:
- The role of antigen processing pathways in modulating B cell function remains unclear.
- Understanding how antigen uptake and processing influence MHC class II-mediated B cell responses is crucial for immune regulation.
Purpose of the Study:
- To investigate the biological properties of MHC class II-peptide complexes generated through distinct antigen processing pathways.
- To compare the effects of BCR-mediated versus fluid-phase antigen processing on B cell function and survival.
Main Methods:
- Generation and characterization of MHC class II-peptide complexes via BCR-mediated (Type I) and fluid-phase (Type II) antigen processing.
- Analysis of B cell survival, MHC class II expression, co-stimulatory molecule levels (CD86, CD54), and T-B cell conjugate formation after complex ligation.
Main Results:
- Ligation of Type II complexes significantly decreased B cell survival (50-100%) and reduced expression of MHC class II, CD86, and CD54 compared to Type I complexes.
- B cell loss occurred late after T cell stimulation, despite robust T cell division.
- Type II complex ligation resulted in less efficient T-B cell conjugate formation.
Conclusions:
- The cellular context of MHC class II-peptide complex presentation, influenced by the antigen processing pathway, is critical for B cell survival.
- BCR-mediated antigen uptake and processing promote B cell survival, ensuring appropriate immune responses.
Abstract:
The influence of the pathway of Ag uptake and processing on MHC class II (CII)-mediated B cell function is unknown. In this study, we investigate in resting and activated (via the BCR or CD40) B cells the biological properties of CII-peptide complexes (CII-peptide) generated by either the BCR-mediated Ag processing (type I complex) or fluid phase Ag processing (type II complex). Compared with type I complex, ligation of type II complex by either specific Ab or the TCR in Ag-presenting assay results in significant decreases in B cell survival rate (50-100%) and expression levels of CII, CD86, and CD54. Loss of B cells following ligation of type II complex occurs in the presence of a comparatively good level of specific CD4(+) T cell division, indicating that B cell loss is a late event following T cell stimulation. Comparative analysis of T and B cell conjugates after Ab ligation of type I or II complex reveals decreased efficiency of the latter in forming conjugates. Neither initial differential levels of CII and other studied surface markers, B cell type inherent differences, BCR signaling, T cell proliferation, nor initial density of CII-peptide complexes could explain the T cell-induced B cell loss. We propose that the context in which CII-peptide complexes are present in the membrane following BCR uptake and processing leads to B cell survival. Thus, appropriate targeting of Ag ensures generation of relevant immune responses.
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