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Cultured microglial cells have a distinct pattern of membrane channels different from peritoneal macrophages
H Kettenmann1, D Hoppe, K Gottmann
1Department of Neurobiology, University of Heidelberg, Federal Republic of Germany.
Abstract:
Microglia are the source of the resident macrophages of the brain and thus belong to one of the most reactive cell types in cerebral tissue. They are attributed to have an important role in a number of pathological conditions, such as multiple sclerosis, viral infections like AIDS, and in lethal or sublethal injuries of neurons where the blood-brain barrier is left intact (Streit et al., 1988; McGeer et al., 1988; Gendelman et al., 1989). Microglia share a number of macrophage characteristics but so far lack a distinguishing positive marker. In this study it is shown that microglia are distinguished from other macrophages by a unique pattern of ion channels. We compared membrane currents of microglial cells with those from peritoneal macrophages cultured under identical conditions. Although in macrophages a delayed outward K+ current was previously described (Randriamampita and Trautmann, 1987), microglial cells lacked any specific outward current. Instead, these cells were characterized by large inwardly rectifying currents, activated by hyperpolarizing voltage steps. The reversal potential in different K+ gradients and the sensitivity of the current to to Ba2+, TEA, and 4-AP indicates that this current is K+ selective. In single-channel recordings, a 30 pS K+ selective channel similar to the classical inward rectifier K+ channel was observed. Thus, the expression of membrane channels served not only to distinguish microglia from other cells inside and outside the brain, e.g., blood macrophages, but also suggests a unique functional state of this cell population.
Insights
Microglia, the brain's resident macrophages, possess unique ion channel patterns, distinguishing them from other macrophages. This discovery aids in identifying these crucial cells and understanding their specialized functions in the central nervous system.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglia are brain-resident macrophages crucial in neurological conditions.
- They share macrophage traits but lack a unique identifying marker.
- Understanding microglia is key to studying brain pathologies.
Purpose of the Study:
- To identify a unique marker for microglia.
- To distinguish microglia from other macrophage populations.
- To investigate the functional state of microglia.
Main Methods:
- Compared membrane currents of microglia and peritoneal macrophages.
- Utilized voltage-clamp electrophysiology.
- Performed single-channel recordings.
Main Results:
- Microglia lack outward K+ currents found in other macrophages.
- Microglia exhibit large, inwardly rectifying K+ currents.
- A 30 pS K+-selective channel, similar to inward rectifier channels, was identified in microglia.
Conclusions:
- Unique ion channel expression distinguishes microglia from other macrophages.
- These ion channels suggest a specialized functional role for microglia.
- This finding provides a novel method for identifying microglia.