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Primary Microglia Isolation from Mixed Glial Cell Cultures of Neonatal Rat Brain Tissue
Published on: August 15, 2012
Endogenous GDNF Is Unable to Halt Dopaminergic Injury Triggered by Microglial Activation
Julieta Mendes-Oliveira1, Filipa L Campos1, Susana A Ferreira1
1CICS-UBI-Health Sciences Research Centre, University of Beira Interior, 6201-506 Covilhã, Portugal.
Abstract:
Overactivation of microglial cells seems to play a crucial role in the degeneration of dopaminergic neurons occurring in Parkinson's disease. We have previously demonstrated that glial cell line-derived neurotrophic factor (GDNF) present in astrocytes secretome modulates microglial responses induced by an inflammatory insult. Therefore, astrocyte-derived soluble factors may include relevant molecular players of therapeutic interest in the control of excessive neuroinflammatory responses. However, in vivo, the control of neuroinflammation is more complex as it depends on the interaction between different types of cells other than microglia and astrocytes. Whether neurons may interfere in the astrocyte-microglia crosstalk, affecting the control of microglial reactivity exerted by astrocytes, is unclear. Therefore, the present work aimed to disclose if the control of microglial responses mediated by astrocyte-derived factors, including GDNF, could be affected by the crosstalk with neurons, impacting GDNF's ability to protect dopaminergic neurons exposed to a pro-inflammatory environment. Also, we aimed to disclose if the protection of dopaminergic neurons by GDNF involves the modulation of microglial cells. Our results show that the neuroprotective effect of GDNF was mediated, at least in part, by a direct action on microglial cells through the GDNF family receptor α-1. However, this protective effect seems to be impaired by other mediators released in response to the neuron-astrocyte crosstalk since neuron-astrocyte secretome, in contrast to astrocytes secretome, was unable to protect dopaminergic neurons from the injury triggered by lipopolysaccharide-activated microglia. Supplementation with exogenous GDNF was needed to afford protection of dopaminergic neurons exposed to the inflammatory environment. In conclusion, our results revealed that dopaminergic protective effects promoted by GDNF involve the control of microglial reactivity. However, endogenous GDNF is insufficient to confer dopaminergic neuron protection against an inflammatory insult. This reinforces the importance of further developing new therapeutic strategies aiming at providing GDNF or enhancing its expression in the brain regions affected by Parkinson's disease.
Insights
Glial cell line-derived neurotrophic factor (GDNF) protects dopaminergic neurons in Parkinson's disease by modulating microglial cells. However, neuron-astrocyte interactions impair this protection, necessitating therapeutic strategies to boost GDNF levels.
Area of Science:
- Neuroscience
- Neuroimmunology
- Cell Biology
Background:
- Microglial cell overactivation contributes to dopaminergic neuron degeneration in Parkinson's disease.
- Glial cell line-derived neurotrophic factor (GDNF) from astrocytes modulates microglial responses to inflammation.
- The role of neuron-astrocyte crosstalk in neuroinflammation and neuroprotection remains unclear.
Purpose of the Study:
- To investigate if neuron-astrocyte crosstalk affects GDNF-mediated control of microglial responses.
- To determine if neuron-astrocyte crosstalk impacts GDNF's neuroprotective ability against inflammation.
- To elucidate whether GDNF's protection of dopaminergic neurons involves microglial modulation.
Main Methods:
- Investigated astrocyte-microglia-neuron crosstalk in a pro-inflammatory environment.
- Assessed the neuroprotective effects of astrocyte-derived factors and neuron-astrocyte secretomes on dopaminergic neurons.
- Utilized glial cell line-derived neurotrophic factor (GDNF) and its receptor, GDNF family receptor α-1, in experimental models.
Main Results:
- GDNF's neuroprotective effect on dopaminergic neurons is partly mediated by direct action on microglial cells via GDNF family receptor α-1.
- Neuron-astrocyte crosstalk, unlike astrocyte secretome alone, impaired GDNF's protective effect.
- Exogenous GDNF supplementation was required to protect dopaminergic neurons from lipopolysaccharide-induced microglial activation.
Conclusions:
- GDNF protects dopaminergic neurons by controlling microglial reactivity, but endogenous levels are insufficient during inflammatory insults.
- Neuron-astrocyte crosstalk can interfere with GDNF's neuroprotective mechanisms.
- Therapeutic strategies enhancing GDNF expression or delivery are crucial for Parkinson's disease treatment.

