Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Lipid Accumulation Induced by APOE4 Impairs Microglial Surveillance of Neuronal-Network Activity

View through CrossRef
Summary Apolipoprotein E4 (APOE4) is the greatest known genetic risk factor for developing late- onset Alzheimer’s disease and its expression in microglia is associated with pro- inflammatory states. How the interaction of APOE4 microglia with neurons differs from microglia expressing the disease-neutral allele APOE3 is currently unknown. Here, we employ CRISPR-edited induced pluripotent stem cells (iPSCs) to dissect the impact of APOE4 in neuron-microglia communication. Our results reveal that APOE4 induces a distinct metabolic program in microglia that is marked by the accumulation of intracellular neutral lipid stores through impaired lipid catabolism. Importantly, this altered lipid-accumulated state shifts microglia away from homeostatic surveillance and renders APOE4 microglia weakly responsive to neuronal activity. By examining the transcriptional signatures of APOE3 versus APOE4 microglia before and after exposure to neuronal conditioned media, we further established that neuronal soluble cues differentially induce a lipogenic program in APOE4 microglia that exacerbates pro- inflammatory signals. Pharmacological blockade of lipogenesis in APOE4 microglia is sufficient to diminish intracellular lipid accumulation and restore microglial homeostasis. Remarkably, unlike APOE3 microglia that support neuronal network activity, co-culture of APOE4 microglia with neurons disrupts the coordinated activity of neuronal ensembles. We identified that through decreased uptake of extracellular fatty acids and lipoproteins, APOE4 microglia disrupts the net flux of lipids which results in decreased neuronal activity via the potentiation of the lipid-gated K + channel, GIRK3. These findings suggest that neurological diseases that exhibit abnormal neuronal network-level disturbances may in part be triggered by impairment in lipid homeostasis in non-neuronal cells, underscoring a novel therapeutic route to restore circuit function in the diseased brain. Abstract Figure
Title: Lipid Accumulation Induced by APOE4 Impairs Microglial Surveillance of Neuronal-Network Activity
Description:
Summary Apolipoprotein E4 (APOE4) is the greatest known genetic risk factor for developing late- onset Alzheimer’s disease and its expression in microglia is associated with pro- inflammatory states.
How the interaction of APOE4 microglia with neurons differs from microglia expressing the disease-neutral allele APOE3 is currently unknown.
Here, we employ CRISPR-edited induced pluripotent stem cells (iPSCs) to dissect the impact of APOE4 in neuron-microglia communication.
Our results reveal that APOE4 induces a distinct metabolic program in microglia that is marked by the accumulation of intracellular neutral lipid stores through impaired lipid catabolism.
Importantly, this altered lipid-accumulated state shifts microglia away from homeostatic surveillance and renders APOE4 microglia weakly responsive to neuronal activity.
By examining the transcriptional signatures of APOE3 versus APOE4 microglia before and after exposure to neuronal conditioned media, we further established that neuronal soluble cues differentially induce a lipogenic program in APOE4 microglia that exacerbates pro- inflammatory signals.
Pharmacological blockade of lipogenesis in APOE4 microglia is sufficient to diminish intracellular lipid accumulation and restore microglial homeostasis.
Remarkably, unlike APOE3 microglia that support neuronal network activity, co-culture of APOE4 microglia with neurons disrupts the coordinated activity of neuronal ensembles.
We identified that through decreased uptake of extracellular fatty acids and lipoproteins, APOE4 microglia disrupts the net flux of lipids which results in decreased neuronal activity via the potentiation of the lipid-gated K + channel, GIRK3.
These findings suggest that neurological diseases that exhibit abnormal neuronal network-level disturbances may in part be triggered by impairment in lipid homeostasis in non-neuronal cells, underscoring a novel therapeutic route to restore circuit function in the diseased brain.
Abstract Figure.

Related Results

The Contributions of the Endolysosomal Compartment and Autophagy to APOE ɛ4 Allele-Mediated Increase in Alzheimer’s Disease Risk
The Contributions of the Endolysosomal Compartment and Autophagy to APOE ɛ4 Allele-Mediated Increase in Alzheimer’s Disease Risk
Apolipoprotein E4 (APOE4), although yet-to-be fully understood, increases the risk and lowers the age of onset of Alzheimer’s disease (AD), which is the major cause of dementia amo...
The Role of Impaired Receptor Trafficking in Mediating the Pathological Effects of ApoE4 in Alzheimer Disease
The Role of Impaired Receptor Trafficking in Mediating the Pathological Effects of ApoE4 in Alzheimer Disease
Abstract Background: Apolipoprotein E4 (apoE4) is the most prevalent genetic risk factor of Alzheimer’s disease (AD). Several studies suggest that the binding of apoE4 to i...
Skeletal Muscle Mitochondrial Response to Diet Differs by Genotype and Sex in an Alzheimer’s Disease Mouse Model
Skeletal Muscle Mitochondrial Response to Diet Differs by Genotype and Sex in an Alzheimer’s Disease Mouse Model
Introduction: Skeletal muscle mass is reduced in the early stages of cognitive decline. Apolipoprotein ε4 ( APOE4) is the most prevalent genetic risk factor for Alzheimer’s disease...
Flavonoids and fibrate modulate apoE4-induced processing of amyloid precursor protein in neuroblastoma cells
Flavonoids and fibrate modulate apoE4-induced processing of amyloid precursor protein in neuroblastoma cells
IntroductionApolipoprotein (apo) E4, being a major genetic risk factor for Alzheimer’s disease (AD), is actively involved in the proteolytic processing of amyloid precursor protein...
APOE genotype-dependent differences in human astrocytic energy metabolism
APOE genotype-dependent differences in human astrocytic energy metabolism
Abstract The main genetic risk factor for Alzheimer’s disease (AD) is the presence of the apolipoprotein E4 ( APOE4 ...
Astrocyte-secreted glypican-4 drives APOE4-dependent tau pathology
Astrocyte-secreted glypican-4 drives APOE4-dependent tau pathology
ABSTRACT The aggregation of tau proteins into insoluble filaments and the spread of these filaments across brain regions are the major drivers of...
Decoding microglial immunometabolism: a new frontier in Alzheimer's disease research
Decoding microglial immunometabolism: a new frontier in Alzheimer's disease research
Abstract Alzheimer’s disease (AD) involves a dynamic interaction between neuroinflammation and metabolic dysregulation, where microglia play a central role. These immune ...

Back to Top