Javascript must be enabled to continue!
Acid-Sensing Ion Channels in Glial Cells
View through CrossRef
Acid-sensing ion channels (ASICs) are proton-gated cation channels and key mediators of responses to neuronal injury. ASICs exhibit unique patterns of distribution in the brain, with high expression in neurons and low expression in glial cells. While there has been a lot of focus on ASIC in neurons, less is known about the roles of ASICs in glial cells. ASIC1a is expressed in astrocytes and might contribute to synaptic transmission and long-term potentiation. In oligodendrocytes, constitutive activation of ASIC1a participates in demyelinating diseases. ASIC1a, ASIC2a, and ASIC3, found in microglial cells, could mediate the inflammatory response. Under pathological conditions, ASIC dysregulation in glial cells can contribute to disease states. For example, activation of astrocytic ASIC1a may worsen neurodegeneration and glioma staging, activation of microglial ASIC1a and ASIC2a may perpetuate ischemia and inflammation, while oligodendrocytic ASIC1a might be involved in multiple sclerosis. This review concentrates on the unique ASIC components in each of the glial cells and integrates these glial-specific ASICs with their physiological and pathological conditions. Such knowledge provides promising evidence for targeting of ASICs in individual glial cells as a therapeutic strategy for a diverse range of conditions.
Title: Acid-Sensing Ion Channels in Glial Cells
Description:
Acid-sensing ion channels (ASICs) are proton-gated cation channels and key mediators of responses to neuronal injury.
ASICs exhibit unique patterns of distribution in the brain, with high expression in neurons and low expression in glial cells.
While there has been a lot of focus on ASIC in neurons, less is known about the roles of ASICs in glial cells.
ASIC1a is expressed in astrocytes and might contribute to synaptic transmission and long-term potentiation.
In oligodendrocytes, constitutive activation of ASIC1a participates in demyelinating diseases.
ASIC1a, ASIC2a, and ASIC3, found in microglial cells, could mediate the inflammatory response.
Under pathological conditions, ASIC dysregulation in glial cells can contribute to disease states.
For example, activation of astrocytic ASIC1a may worsen neurodegeneration and glioma staging, activation of microglial ASIC1a and ASIC2a may perpetuate ischemia and inflammation, while oligodendrocytic ASIC1a might be involved in multiple sclerosis.
This review concentrates on the unique ASIC components in each of the glial cells and integrates these glial-specific ASICs with their physiological and pathological conditions.
Such knowledge provides promising evidence for targeting of ASICs in individual glial cells as a therapeutic strategy for a diverse range of conditions.
Related Results
Changes in the levels of serum glial fibrillary acidic protein and the correlation with outcomes in severe traumatic brain injury patients
Changes in the levels of serum glial fibrillary acidic protein and the correlation with outcomes in severe traumatic brain injury patients
Purpose:
Glial fibrillary acidic protein serves as a biomarker indicative of astroglial injury, particularly following instances of severe traumatic brain injur...
Diet-Induced Glial Insulin Resistance Impairs The Clearance Of Neuronal Debris
Diet-Induced Glial Insulin Resistance Impairs The Clearance Of Neuronal Debris
Abstract
Obesity significantly increases the risk of developing neurodegenerative disorders, yet the precise mechanisms underlying this connectio...
Satellite Glial Cells in Peripheral Nerve Injury and Regeneration
Satellite Glial Cells in Peripheral Nerve Injury and Regeneration
Satellite glial cells (SGCs) are morphologically unique peripheral glial cells that surround neuronal somas in sensory, sympathetic, and parasympathetic ganglia. Satellite glial ce...
Successful transfection of Lymphoblastoid cell line (Preprint)
Successful transfection of Lymphoblastoid cell line (Preprint)
BACKGROUND
Immortalization is the stage that the cell goes through before full transformation [1]. Human resting B lymphocytes from peripheral blood are eas...
A multiOmics approach to identify altered ion channels across breast cancer subtypes
A multiOmics approach to identify altered ion channels across breast cancer subtypes
Abstract
A multiOmics approach unifies patient-specific datasets to deepen insights into molecular aspects of cancer. Breast cancer cells often e...
Understanding the Role of the Glial Scar through the Depletion of Glial Cells after Spinal Cord Injury
Understanding the Role of the Glial Scar through the Depletion of Glial Cells after Spinal Cord Injury
Spinal cord injury (SCI) is a condition that affects between 8.8 and 246 people in a million and, unlike many other neurological disorders, it affects mostly young people, causing ...
Linear ion traps in mass spectrometry
Linear ion traps in mass spectrometry
Abstract
I.
Introduction
000
II.
Linear Multipoles
000
A. Multipole Fields
000
1. Multipole Potentials
000
2. Ion Motion in 2D Multipole Fields
000...
Understanding the Role of the Glial Scar through the Depletion of Glial Cells after Spinal Cord Injury
Understanding the Role of the Glial Scar through the Depletion of Glial Cells after Spinal Cord Injury
Spinal cord injury (SCI) is a condition that affects between 8.8 and 246 people in a million and, unlike many other neurological disorders, it affects mostly young people, causing ...

