Glatiramer acetate-reactive peripheral blood mononuclear cells respond to multiple myelin antigens with a Th2-biased

Suhayl Dhib-Jalbut1, Man Chen, Areen Said

  • 1University of Maryland School of Medicine, Baltimore, MD 21201, USA. sjalbut@umaryland.edu

One favored mechanism of action of glatiramer acetate (GA) in multiple sclerosis (MS) involves the induction of GA-reactive Th2 cells that are believed to enter the central nervous system and mediate bystander suppression in response to cross-reactive myelin antigens. To test this hypothesis, we examined the proliferative response and cytokine release from peripheral blood mononuclear cells (PBMCs) of 12 MS patients treated with GA, in response to 16 myelin peptides that were previously described as immunodominant or encephalitogenic and a tetanus peptide as a control antigen. Interferon-gamma (IFN-gamma) and IL-5 (markers of Th1 and Th2 responses, respectively) were assayed by enzyme-linked immunosorbent assay (ELISA). GA-stimulated PBMCs from 9 of 12 patients (75%) proliferated to one or more myelin peptides. Among the 16 peptides tested, GA-stimulated PBMCs from the majority of the patients proliferated in response to MOG(21-44). PBMCs from two thirds of the patients produced IL-5 in response to myelin peptides, while half of them produced IFN-gamma. Th1/Th0/Th2 cytokine phenotypes demonstrated that responses from 10 of 12 patients were either Th0- or Th2-biased. Responses from two patients were Th1-biased. Conversely, some myelin-specific T-cell lines (TCLs) responded to GA by proliferation (3 of 21 TCLs), IL-5 release (11 of 21 TCLs), and IFN-gamma release (3 of 21 TCLs). These results indicate that GA-reactive TCLs can respond to a spectrum of myelin peptides in a Th2-biased fashion, which is consistent with the concept of bystander suppression. Furthermore, some myelin-specific TCLs are able to recognize GA, with a tendency to produce more IL-5 than IFN-gamma, which would suggest a systemic modulatory effect of the drug.

Related Concept Videos

B Cell Activation and Differentiation01:24

B Cell Activation and Differentiation

The adaptive immune response, a sophisticated defense mechanism, relies on the activation and differentiation of B lymphocytes, or B cells. These processes enable our bodies to mount a tailored response against specific pathogens such as bacteria, free virus particles, toxins, and parasites.
When naive B cells encounter a specific antigen that can bind to the B cell receptor (BCR) on their surface, they undergo sensitization to respond to the antigen's presence. Sensitization begins with...
T Cell Types and Functions01:24

T Cell Types and Functions

When T cells with CD4 markers are activated, they give rise to two types of effector cells: helper T cells and regulatory T cells. Meanwhile, T cells with CD8 markers differentiate into effector cytotoxic T cells. The differentiation of CD4 T cells into helper T cell subsets, such as Th1, Th2, and Th17 cells, is dependent on the antigen type, antigen-presenting cell, and regulatory cytokines.
Th1 cells stimulate dendritic cells to express necessary co-stimulatory molecules on their surfaces for...
Cells of the Adaptive Immune Response01:23

Cells of the Adaptive Immune Response

The T and B lymphocytes of the adaptive immune system develop from common lymphoid progenitor cells in the bone marrow. These progenitors give rise to precursors that eventually develop into both T and B lymphocytes. As these precursors mature, they gain the ability to detect and respond to foreign antigens in the body, a process known as immunocompetence. Additionally, these precursors acquire self-tolerance, a process that ensures they do not react to self-antigens. This intricate system...