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Published on: September 18, 2011
Successes and Challenges in Taming the Beast: Cytotoxic Immune Effectors in Amyotrophic Lateral Sclerosis
Kawaljit Kaur1, Po-Chun Chen1, Meng-Wei Ko1
1Division of Oral Biology and Medicine, The Jane and Jerry Weintraub Center for Reconstructive Biotechnology, University of California School of Dentistry, 10833 Le Conte Ave, 90095 Los Angeles, CA, USA.
Abstract:
Amyotrophic lateral sclerosis (ALS) is a neurological disease characterized by the progressive loss of motor neurons in the brain and spinal cord. No effective therapeutic strategies have been established thus far, and therefore there is a significant unmet need for effective therapeutics to arrest the disease and reverse the pathologies induced by it. Although the cause of ALS is not well-defined, it appears to be heterogenous. Currently over 20 genes have been found to be associated with ALS. Family history can only be found in 10% of ALS patients, but in the remaining 90% no association with family history is found. The most common genetic causes are expansion in the C9orf72 gene and mutations in superoxide dismutase 1, TDP-43, and FUS. In our recent study, we also found mutations in TDP43 and FUS in ALS patients. To understand the pathogenesis of the disease, we set ourselves the task of analyzing the phenotype and function of all key immune effectors in ALS patients, comparing them with either a genetically healthy twin or healthy individuals. Our study demonstrated a significant increase in functional activation of NK and CD8+ T cytotoxic immune effectors and release of significant IFN-γ not only by the effector cells but also in the serum of ALS patients. Longitudinal analysis of CD8+ T cell-mediated IFN-γ secretion from ALS patients demonstrated continued and sustained increase in IFN-γ secretion with periods of decrease which coincided with certain treatments; however, the effects were largely short-lived. N-acetyl cysteine (NAC), one of the treatments used, is known to block cell death; however, even though such treatment was able to block most of the proinflammatory cytokines, chemokines, and growth factor release, it was not able to block IFN-γ and TNF-α, the two cytokines we had demonstrated previously to induce differentiation of the cells. In this review, we discuss the contribution of cytotoxic effector cells, especially primary NK cells, supercharged NK cells (sNK), and the contribution of sNK cells in expansion and functional activation of CD8+ T cells to memory/effector T cells in the pathogenesis of ALS. Potential new targeted therapeutic strategies are also discussed.
Insights
Amyotrophic lateral sclerosis (ALS) involves increased immune cell activation and IFN-γ release. Targeted therapies focusing on these cytotoxic effector cells may offer new treatment avenues for ALS patients.
Area of Science:
- Neuroimmunology
- Cellular immunology
Background:
- Amyotrophic lateral sclerosis (ALS) is a progressive neurodegenerative disease with no effective treatments.
- The etiology of ALS is heterogeneous, with genetic factors like C9orf72, SOD1, TDP-43, and FUS mutations identified in a subset of patients.
- Understanding the immune system's role in ALS pathogenesis is crucial for developing novel therapeutics.
Approach:
- Phenotypic and functional analysis of immune effectors in ALS patients compared to healthy controls and twins.
- Assessment of cytokine release, specifically interferon-gamma (IFN-γ), from immune cells and serum.
- Longitudinal monitoring of immune responses and the impact of treatments like N-acetyl cysteine (NAC).
Key Points:
- ALS patients exhibit significantly increased functional activation of Natural Killer (NK) and CD8+ T cells.
- Elevated levels of IFN-γ were detected in both effector cells and serum of ALS patients.
- While NAC treatment reduced some inflammatory markers, it did not inhibit IFN-γ and TNF-α release, which are implicated in cell differentiation.
Conclusions:
- Cytotoxic effector cells, including NK cells and supercharged NK cells (sNK), play a significant role in ALS pathogenesis.
- sNK cells contribute to the expansion and functional activation of CD8+ T cells.
- Targeted therapeutic strategies focusing on modulating these immune responses show promise for future ALS treatment.
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