Signaling for survival and apoptosis in the immune system
1Ontario Cancer Institute and Department of Medical Biophysics, University of Toronto, Ontario, Canada. tmak@oci.utoronto.ca
Abstract:
Signal transduction induced by tumor necrosis factor (TNF) family members and their receptors has been an intensive area of research for several years. The major impact of these studies has been the delineation of apoptotic and cell survival signaling pathways. These discoveries, coupled with major advances in the study of mammalian apoptotic machinery, constitute a promising blueprint of the molecular network governing the fate of all living cells. In this review, we concentrate on the fate of cells in the immune system, where regulation of cell death and cell survival is a frequent and important exercise. A small imbalance in favor of either fate can result in disastrous pathological outcomes, such as cancer, autoimmunity or immune deficiency. It is an insurmountable task to discuss all molecules reported in the literature that are implicated in lymphocyte death or survival. We have therefore focused on discoveries made by mouse gene targeting, as these studies provide the most physiologically relevant information on each molecule. We begin with a description of signaling channels initiated by TNF receptor type 1 engagement, which can lead to either cell survival or to cell death. The point of bifurcation of this pathway and the decision-making molecules FADD, TRAF2 and RIP are discussed. We then follow apoptotic and survival pathways from upstream to downstream, describing many important players involved in signal transduction. Molecules important for NF-kappaB and JNK/stress-activated protein kinase activation such as IKKbeta, NEMO, MAP3K and TRAF6 are discussed, as is the impact of BAFF and its receptors on B-cell survival. Mouse mutants that have helped to define the mammalian apoptosis execution machinery, including animals lacking Apaf-1, caspase-3 and caspase-9, are also described. We conclude with a brief analysis of the potential therapeutic options arising from this body of work.
Insights
Tumor necrosis factor (TNF) signaling regulates immune cell life and death. Mouse gene targeting studies reveal key molecules in apoptotic and survival pathways, offering therapeutic insights.
Area of Science:
- Immunology
- Molecular Biology
- Cell Biology
Background:
- Tumor necrosis factor (TNF) signaling pathways are crucial for regulating immune cell survival and apoptosis.
- Imbalances in these pathways can lead to severe diseases like cancer, autoimmunity, and immune deficiency.
Purpose of the Study:
- To review discoveries in lymphocyte cell death and survival, focusing on insights from mouse gene targeting studies.
- To elucidate the molecular network governing cell fate decisions in the immune system.
Main Methods:
- Focus on findings from mouse gene targeting experiments for physiological relevance.
- Detailed examination of signaling pathways initiated by TNF receptor type 1.
- Discussion of key molecules involved in apoptosis and cell survival signal transduction.
Main Results:
- Identified critical decision-making molecules (FADD, TRAF2, RIP) at the pathway bifurcation point.
- Described upstream and downstream players in apoptotic and survival pathways, including NF-kappaB and JNK signaling components (IKKbeta, NEMO, MAP3K, TRAF6).
- Highlighted the role of BAFF and its receptors in B-cell survival and the importance of apoptosis execution machinery (Apaf-1, caspase-3, caspase-9) using mouse mutants.
Conclusions:
- Mouse gene targeting provides vital physiological data on immune cell fate regulation.
- Understanding these pathways offers potential therapeutic strategies for immune-related diseases.
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