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October 2, 2025Neuroglia10 citationsOpen Access

The Dual Role of Astrocytes in CNS Homeostasis and Dysfunction

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ATAarti TiwariSRSatyabrata RoutPDPrasanjit Deep

Key Points

  • Astrocytes maintain synaptic integrity and blood-brain barrier function, crucial for CNS health.
  • Reactive astrocytes, marked by glial fibrillary acidic protein, can cause neuroinflammation and neuronal loss.
  • This article investigates biochemical pathways affecting astrocyte responses and their role in CNS diseases.
  • Understanding astrocytic plasticity could lead to new neurotherapeutics targeting glial dysfunction.

Abstract

Astrocytes are the most common type of glial cell in the central nervous system (CNS). They have many different functions that go beyond just supporting other cells. Astrocytes were once thought of as passive parts of the CNS. However, now they are known to be active regulators of homeostasis and active participants in both neurodevelopmental and neurodegenerative processes. This article looks at the both sides of astrocytic function: how they safeguard synaptic integrity, ion and neurotransmitter balance, and blood-brain barrier (BBB) stability, as well as how astrocytes can become activated and participate in the immune response by releasing cytokines, upregulating interferons, and modulating the blood–brain barrier and inflammation disease condition. Astrocytes affect and influence neuronal function through the tripartite synapse, gliotransmission, and the glymphatic system. When someone is suffering from neurological disorders, reactive astrocytes become activated after being triggered by factors such as pro-inflammatory cytokines, chemokines, and inflammatory mediators, these reactive astrocytes, which have higher levels of glial fibrillary acidic protein (GFAP), can cause neuroinflammation, scar formation, and the loss of neurons. This review describes how astrocytes are involved in important CNS illnesses such as Alzheimer’s disease, Parkinson’s disease, multiple sclerosis, amyotrophic lateral sclerosis, and ischemia. It also emphasizes how these cells can change from neuroprotective to neurotoxic states depending on the situation. Researchers look at important biochemical pathways, such as those involving toll-like receptors, GLP-1 receptors, and TREM2, to see if they can change how astrocytes respond. Astrocyte-derived substances, including BDNF, GDNF, and IL-10, are also essential for protecting and repairing neurons. Astrocytes interact with other CNS cells, especially microglia and endothelial cells, thereby altering the neuroimmune environment. Learning about the molecular processes that control astrocytic plasticity opens up new ways to treat glial dysfunction. This review focuses on the importance of astrocytes in the normal and abnormal functioning of the CNS, which has a significant impact on the development of neurotherapeutics that focus on glia.

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Cite This Study

Tiwari et al. (2025) studied this question.

synapsesocial.com/papers/68de79685b556a9128e1ababhttps://doi.org/10.3390/neuroglia6040038
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