Functions of Astrocytes under Normal Conditions and after a Brain Disease.
Soraya L VallesSandeep Kumar SinghJuan Campos-CamposCarlos ColmenaIgnacio Campo-PalacioKenia Alvarez-GamezOscar CaballeroAdrian JordaPublished in: International journal of molecular sciences (2023)
In the central nervous system (CNS) there are a greater number of glial cells than neurons (between five and ten times more). Furthermore, they have a greater number of functions (more than eight functions). Glia comprises different types of cells, those of neural origin (astrocytes, radial glia, and oligodendroglia) and differentiated blood monocytes (microglia). During ontogeny, neurons develop earlier (at fetal day 15 in the rat) and astrocytes develop later (at fetal day 21 in the rat), which could indicate their important and crucial role in the CNS. Analysis of the phylogeny reveals that reptiles have a lower number of astrocytes compared to neurons and in humans this is reversed, as there have a greater number of astrocytes compared to neurons. These data perhaps imply that astrocytes are important and special cells, involved in many vital functions, including memory, and learning processes. In addition, astrocytes are involved in different mechanisms that protect the CNS through the production of antioxidant and anti-inflammatory proteins and they clean the extracellular environment and help neurons to communicate correctly with each other. The production of inflammatory mediators is important to prevent changes in brain homeostasis. On the contrary, excessive, or continued production appears as a characteristic element in many diseases, such as Alzheimer's disease (AD), amyotrophic lateral sclerosis (ALS), multiple sclerosis (MS), and in neurodevelopmental diseases, such as bipolar disorder, schizophrenia, and autism. Furthermore, different drugs and techniques have been developed to reverse oxidative stress and/or excess of inflammation that occurs in many CNS diseases, but much remains to be investigated. This review attempts to highlight the functional relevance of astrocytes in normal and neuropathological conditions by showing the molecular and cellular mechanisms of their role in the CNS.
Keyphrases
- oxidative stress
- induced apoptosis
- bipolar disorder
- multiple sclerosis
- blood brain barrier
- spinal cord
- amyotrophic lateral sclerosis
- cell cycle arrest
- anti inflammatory
- endoplasmic reticulum stress
- mass spectrometry
- signaling pathway
- dna damage
- cell death
- inflammatory response
- ischemia reperfusion injury
- cell proliferation
- big data
- ms ms
- cerebral ischemia
- diabetic rats
- autism spectrum disorder
- physical activity
- major depressive disorder
- intellectual disability
- weight gain
- drug induced
- atomic force microscopy