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Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
Microglia Gone Awry: Linking Immunometabolism to Neurodegeneration
Ruqayya Afridi1, Won-Ha Lee2, Kyoungho Suk1
1Department of Pharmacology, Brain Science and Engineering Institute, BK21 Plus KNU Biomedical Convergence Program, School of Medicine, Kyungpook National University, Daegu, South Korea.
Abstract:
Age-related chronic inflammatory activation of microglia and their dysfunction are observed in many neurodegenerative diseases, and the potential contributions of these dysfunctional cells to neurodegeneration have been demonstrated recently. The housekeeping and defensive functions of microglia, such as surveying the brain parenchyma and phagocytosis of neuronal debris after injury, are important for brain homeostasis and immunity. During neurodegenerative diseases, loss of these functions can promote disease pathology by producing proinflammatory cytokines and increasing oxidative stress, which can exaggerate the ongoing neuroinflammation. A recent surge in microglial research has unraveled myriads of microglial phenotypes associated with aging and neurodegenerative diseases, in addition to the conventional M1/M2 paradigm. Each of these phenotypes can be characterized by distinct transcriptional profiles as well as altered metabolism, migration, and phagocytosis characteristics. Mutations in triggering receptor expressed on myeloid cells 2 (Trem2) and granulin (GRN) are associated with various neurodegenerative diseases, and these genes are dysregulated in the majority of recently identified microglial phenotypes. These genes act as checkpoint regulators and maintain microglial inflammatory fitness, principally through metabolic modulation. Dysfunctional microglia typically show mitochondrial deficits, glycolysis elevation, and lipid droplet accumulation, which results in reduced migration and phagocytosis and increased proinflammatory cytokine secretion and reactive oxygen species release. In this mini-review article, we discuss the existing data regarding metabolic perturbations in dysfunctional microglia and their documented associations with neurodegeneration, highlighting how aging-induced chronic microglial activation alters microglial bioenergetics, leading to impaired homeostatic and housekeeping functions. Dysfunctional microglia initiate or exacerbate neurodegeneration, and key pathways involved in the dysfunctional processes, including metabolism, may represent potential intervention targets for correcting imbalances.
Insights
Dysfunctional microglia, driven by aging, contribute to neurodegeneration by altering brain metabolism and immune responses. Targeting these metabolic changes offers potential therapeutic strategies for neurodegenerative diseases.
Area of Science:
- Neuroscience
- Immunology
- Metabolism
Background:
- Microglia, the brain's immune cells, play crucial roles in homeostasis and defense.
- Aging leads to chronic microglial activation and dysfunction, contributing to neurodegenerative diseases.
- Dysfunctional microglia exhibit impaired housekeeping functions and promote neuroinflammation.
Purpose of the Study:
- To review metabolic perturbations in dysfunctional microglia.
- To highlight the association between microglial metabolic alterations and neurodegeneration.
- To explore potential therapeutic targets for neurodegenerative diseases by focusing on microglial metabolism.
Main Methods:
- Literature review of recent studies on microglial phenotypes, metabolism, and neurodegeneration.
- Analysis of data linking genetic mutations (e.g., TREM2, GRN) to microglial dysfunction.
- Examination of bioenergetic changes in aging-associated microglial dysfunction.
Main Results:
- Dysfunctional microglia display altered metabolism, including mitochondrial deficits and increased glycolysis.
- These metabolic changes lead to reduced phagocytosis, impaired migration, and increased release of inflammatory factors.
- Genes like TREM2 and GRN are critical for maintaining microglial metabolic fitness and inflammatory responses.
Conclusions:
- Aging-induced microglial dysfunction exacerbates neurodegeneration through metabolic alterations.
- Impaired microglial bioenergetics contribute to loss of essential brain functions.
- Microglial metabolic pathways represent promising targets for therapeutic interventions in neurodegenerative diseases.
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