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Phagocytic properties of microglia in vitro: implications for a role in multiple sclerosis and EAE
1Department of Neurology, VA Health Care Center, Palo Alto, California 94304, USA. mesmith@stanford.edu
Abstract:
The microglial cell, after many years of neglect, has become recognized as the sole representative cell of the immune system that resides in the normal central nervous system. While normally dormant, microglia can be activated by secretory substances or signals associated with disease or injury, and becomes a phagocytic cell, which also produces its own injurious molecules. In the activating process, its morphology is changed from a resting process-bearing cell, into a rounded amoebic form, and displays new or increased amounts of functional markers, such as receptors and Class I and Class II MHC molecules. Microglia prepared from newborn mice or rats for tissue culture are already activated, and can be used for studies of their phagocytic properties. Although they can phagocytize foreign substances, their uptake and metabolism of myelin are emphasized here, in keeping with their role in demyelinating diseases. A number of receptors have been implicated and appear to be important in the attachment to, and ingestion of, myelin particles in vitro, including the Fc, complement, macrophage scavenger, and the Galectin-3/MAC-2 receptors, although the alpha2-macroglobulin/low-density lipoprotein receptor and mannose receptors have also been suggested as participants in myelin phagocytosis. Certain cytokines and adhesion molecules also regulate the phagocytic activity of microglia. Comparative in vitro studies of phagocytosis by peritoneal macrophages and microglia have shown that the two kinds of cells respond differently to regulatory molecules, and it is concluded that they have different innate properties. The role of microglia in the demyelinative diseases experimental autoimmune encephalomyelitis and multiple sclerosis is emphasized here, and the possible means of intervention in the process leading to myelin destruction is discussed. Published 2001 Wiley-Liss, Inc.
Insights
Microglia, the immune cells of the central nervous system, become phagocytic when activated by disease or injury. Their role in myelin uptake is crucial for understanding demyelinating diseases like multiple sclerosis.
Area of Science:
- Neuroimmunology
- Cellular Biology
- Immunology
Background:
- Microglia are the primary immune cells residing in the central nervous system.
- Normally dormant, microglia activate in response to disease or injury, becoming phagocytic and expressing new markers.
- Activated microglia play a role in myelin uptake and metabolism, relevant to demyelinating diseases.
Purpose of the Study:
- To investigate the phagocytic properties of microglia, particularly their uptake of myelin.
- To identify receptors and molecules involved in microglial phagocytosis of myelin.
- To compare microglial phagocytosis with that of peritoneal macrophages and discuss implications for demyelinating diseases.
Main Methods:
- Utilized microglia from newborn mice or rats for in vitro tissue culture studies.
- Examined the phagocytosis of myelin particles by microglia.
- Conducted comparative in vitro studies of phagocytosis by microglia and peritoneal macrophages.
Main Results:
- Microglia exhibit phagocytic properties, with an emphasis on myelin uptake and metabolism.
- Several receptors, including Fc, complement, scavenger, and Galectin-3/MAC-2, are implicated in myelin particle ingestion.
- Cytokines and adhesion molecules regulate microglial phagocytic activity, which differs from peritoneal macrophages.
Conclusions:
- Microglia possess distinct innate properties compared to peritoneal macrophages.
- Microglial phagocytosis of myelin is significant in the context of demyelinating diseases such as experimental autoimmune encephalomyelitis and multiple sclerosis.
- Understanding microglial mechanisms may offer targets for intervening in myelin destruction.