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Experimental Analysis of Apoptotic Thymocyte Engulfment by Macrophages
Published on: May 24, 2019
Fas ligand/Fas system in the brain: regulator of immune and apoptotic responses
Chulhee Choi1, Etty N Benveniste
1The Center for Cell Signaling Research and Division of Molecular Life Sciences, Ewha Womans University, 11-1 Daehyun-dong, Sudaemun-gu, Seoul 120-750, South Korea. cchoi@ewha.ac.kr
Abstract:
Apoptosis, also known as programmed cell death, is the major type of cell death involved in normal development, regeneration, proliferation and pathologic degeneration in the central nervous system (CNS). The apoptotic process can be divided further into two pathways depending on the involvement of mitochondria and related biochemical cascades. The internal pathway of apoptosis is initiated by a variety of cytotoxic stimuli and mediated by the release of cytochrome c and subsequent activation of downstream caspases. The external pathway is mainly triggered by ligation of death receptors such as Fas, tumor necrosis factor (TNF)-related apoptosis inducing ligand-R1 (TRAIL-R1), TRAIL-R2 and TNFRp55, and mediated by direct activation of upstream caspases. The Fas-FasL system has been known as a prototypic inducer of extrinsic cell death responsible for cell-mediated cytotoxicity, peripheral immune regulation, immune privilege and "counterattack" of malignant tumor cells against the host immune system. Fas and FasL are expressed in the normal CNS, and expression increases in inflamed and degenerated brains. Like other specialized tissues such as the eye and testis, the Fas-FasL system is thought to be involved in immune suppressed status in the CNS. Expression of Fas and FasL is significantly elevated in a variety of the neurologic disorders, suggesting the possibility that this system may play roles in degenerative and inflammatory responses in the CNS. Therefore, the FasL-Fas system should be considered as a double-edged sword in the CNS: maintaining the immune suppressed status in normal brain and inducing neuronal cell death and inflammation in a variety of neurologic disorders.
Insights
Programmed cell death, or apoptosis, is crucial in the central nervous system (CNS). The Fas-FasL system acts as a double-edged sword, maintaining immune privilege in normal brains but inducing neuronal death in neurological disorders.
Area of Science:
- Neuroscience
- Cell Biology
- Immunology
Background:
- Apoptosis, or programmed cell death, is a fundamental process in the central nervous system (CNS), impacting development, regeneration, and disease.
- Two primary apoptotic pathways exist: the internal (mitochondrial) and external (death receptor-mediated) pathways.
- The Fas-FasL system is a key component of the external pathway, involved in immune regulation and cell death.
Purpose of the Study:
- To explore the dual role of the Fas-FasL system in the central nervous system.
- To understand its function in maintaining immune privilege and its involvement in neurological disorders.
Main Methods:
- Review of existing literature on apoptosis and the Fas-FasL system in the CNS.
- Analysis of Fas and FasL expression patterns in normal and diseased brain tissue.
Main Results:
- Fas and FasL are expressed in the normal CNS, contributing to its immune-suppressed state.
- Expression of Fas and FasL significantly increases in inflamed and degenerated CNS conditions.
- The Fas-FasL system is implicated in neuronal cell death and inflammatory responses in various neurological disorders.
Conclusions:
- The Fas-FasL system plays a critical, yet dichotomous, role in the CNS.
- It is essential for immune privilege in healthy brains.
- Dysregulation of the Fas-FasL system contributes to pathogenesis in neurological diseases.
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