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Epidermal growth factor is a motility factor for microglial cells in vitro: evidence for EGF receptor expression
C Nolte1, F Kirchhoff, H Kettenmann
1Max Delbrück Centre for Molecular Medicine, Berlin, Germany.
Abstract:
Epidermal growth factor (EGF) and its receptor are present in the central nervous system and modulate a variety of neural functions. Here we show that microglial cells, the brain-intrinsic macrophages, express the receptor for EGF and migrate in response to EGF. Transcripts encoding the EGF receptor could be detected in purified microglial cultures obtained from newborn mouse cortex. More specifically, cDNA fragments derived from EGF receptor mRNA could be amplified from 21% of electrophysiologically characterized microglial cells by the use of a single-cell reverse transcription-polymerase chain reaction method. Expression of the protein was confirmed on rat microglia by flow cytometry. EGF dose-dependently stimulated chemotactic migration, as revealed with a microchemotaxis assay. The dose-response curve peaked-at 10 ng/ml EGF, reaching a 3-fold increase in migration over the unstimulated control; migration was about half of that induced by complement 5a (10 nM), a previously described microglial chemoattractant. Chequerboard analysis showed that EGF-induced motility was composed of both chemotaxis and chemokinesis. In contrast to its pronounced effect on cell motility, EGF (0.01-10 ng/ml) was not a mitotic signal for microglia, as shown by lack of bromodeoxyuridine incorporation. Acute and chronic pathological processes within the brain stimulate the synthesis and release of immunoregulators and growth factors (including EGF) that play a major role in the brain's response to injury. EGF may serve as a paracrine factor to direct microglial cells to the lesion site. Moreover, since EGF is secreted by activated microglia themselves in vivo, it may act as an autocrine modulator of microglial cell function.
Insights
Microglia, the brain's immune cells, have receptors for epidermal growth factor (EGF) and migrate towards it. EGF acts as a signaling molecule, guiding microglia to injury sites in the brain.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Epidermal growth factor (EGF) and its receptor are present in the central nervous system, modulating neural functions.
- Microglial cells are the brain-intrinsic macrophages involved in neural functions.
Purpose of the Study:
- To investigate if microglial cells express the EGF receptor.
- To determine if EGF influences microglial cell migration.
- To explore the role of EGF in the brain's response to injury.
Main Methods:
- Single-cell reverse transcription-polymerase chain reaction (RT-PCR) to detect EGF receptor mRNA in microglial cells.
- Flow cytometry to confirm EGF receptor protein expression on rat microglia.
- Microchemotaxis and chequerboard assays to assess EGF-induced microglial migration.
- Bromodeoxyuridine incorporation to evaluate EGF's effect on microglial proliferation.
Main Results:
- EGF receptor transcripts were detected in purified mouse cortical microglial cultures.
- EGF dose-dependently stimulated microglial chemotactic migration, peaking at 10 ng/ml.
- EGF-induced motility involved both chemotaxis and chemokinesis, but EGF did not stimulate microglial proliferation.
- EGF may act as a paracrine factor directing microglia to lesion sites and as an autocrine modulator of microglial function.
Conclusions:
- Microglial cells express functional EGF receptors and migrate in response to EGF.
- EGF plays a role in directing microglial cell migration to sites of brain injury.
- EGF may serve as both a paracrine and autocrine signaling molecule in the central nervous system.