» Articles » PMID: 34790098

Targeting CDK5 in Astrocytes Promotes Calcium Homeostasis Under Excitotoxic Conditions

Overview
Specialty Cell Biology
Date 2021 Nov 18
PMID 34790098
Citations 7
Authors
Affiliations
Soon will be listed here.
Abstract

Glutamate excitotoxicity triggers overactivation of CDK5 and increases calcium influx in neural cells, which promotes dendritic retraction, spine loss, increased mitochondrial calcium from the endoplasmic reticulum, and neuronal death. Our previous studies showed that CDK5 knockdown (KD) in astrocytes improves neurovascular integrity and cognitive functions and exerts neuroprotective effects. However, how CDK5-targeted astrocytes affect calcium regulation and whether this phenomenon is associated with changes in neuronal plasticity have not yet been analyzed. In this study, CDK5 KD astrocytes transplanted in CA3 remained at the injection site without proliferation, regulated calcium in the CA1 hippocampal region after excitotoxicity by glutamate in hippocampal slices, improving synapsin and PSD95 clustering. These CDK5 KD astrocytes induced astrocyte stellation and neuroprotection after excitotoxicity induced by glutamate Also, these effects were supported by CDK5 inhibition (CDK5i) through intracellular stabilization of calcium levels in astrocytes. Additionally, these cells in cocultures restored calcium homeostasis in neurons, redistributing calcium from somas to dendrites, accompanied by dendrite branching, higher dendritic spines and synapsin-PSD95 clustering. In summary, induction of calcium homeostasis at the CA1 hippocampal area by CDK5 KD astrocytes transplanted in the CA3 area highlights the role of astrocytes as a cell therapy target due to CDK5-KD astrocyte-mediated synaptic clustering, calcium spreading regulation between both areas, and recovery of the intracellular astrocyte-neuron calcium imbalance and plasticity impairment generated by glutamate excitotoxicity.

Citing Articles

Aquaporins: Gatekeepers of Fluid Dynamics in Traumatic Brain Injury.

Czyzewski W, Litak J, Sobstyl J, Mandat T, Torres K, Staskiewicz G Int J Mol Sci. 2024; 25(12).

PMID: 38928258 PMC: 11204105. DOI: 10.3390/ijms25126553.


Biocytin-Labeling in Whole-Cell Recording: Electrophysiological and Morphological Properties of Pyramidal Neurons in CYLD-Deficient Mice.

Tan S, Mo X, Qin H, Dong B, Zhou J, Long C Molecules. 2023; 28(10).

PMID: 37241833 PMC: 10221440. DOI: 10.3390/molecules28104092.


Post-stroke cognitive impairment and synaptic plasticity: A review about the mechanisms and Chinese herbal drugs strategies.

Chi X, Wang L, Liu H, Zhang Y, Shen W Front Neurosci. 2023; 17:1123817.

PMID: 36937659 PMC: 10014821. DOI: 10.3389/fnins.2023.1123817.


Functional investigation of SLC1A2 variants associated with epilepsy.

Qu Q, Zhang W, Wang J, Mai D, Ren S, Qu S Cell Death Dis. 2022; 13(12):1063.

PMID: 36543780 PMC: 9772344. DOI: 10.1038/s41419-022-05457-6.


Interaction between Alzheimer's Disease and Cerebral Small Vessel Disease: A Review Focused on Neuroimaging Markers.

Kim S, Kim H, Jang H, Weiner M, DeCarli C, Na D Int J Mol Sci. 2022; 23(18).

PMID: 36142419 PMC: 9499680. DOI: 10.3390/ijms231810490.


References
1.
Uribe-Arias A, Posada-Duque R, Gonzalez-Billault C, Villegas A, Lopera F, Cardona-Gomez G . p120-catenin is necessary for neuroprotection induced by CDK5 silencing in models of Alzheimer's disease. J Neurochem. 2016; 138(4):624-39. PMC: 4980216. DOI: 10.1111/jnc.13697. View

2.
Ortinski P, Dong J, Mungenast A, Yue C, Takano H, Watson D . Selective induction of astrocytic gliosis generates deficits in neuronal inhibition. Nat Neurosci. 2010; 13(5):584-91. PMC: 3225960. DOI: 10.1038/nn.2535. View

3.
Garcia-Matas S, Gutierrez-Cuesta J, Coto-Montes A, Rubio-Acero R, Diez-Vives C, Camins A . Dysfunction of astrocytes in senescence-accelerated mice SAMP8 reduces their neuroprotective capacity. Aging Cell. 2008; 7(5):630-40. DOI: 10.1111/j.1474-9726.2008.00410.x. View

4.
Posada-Duque R, Palacio-Castaneda V, Cardona-Gomez G . CDK5 knockdown in astrocytes provide neuroprotection as a trophic source via Rac1. Mol Cell Neurosci. 2015; 68:151-66. DOI: 10.1016/j.mcn.2015.07.001. View

5.
Hoth M, Fanger C, Lewis R . Mitochondrial regulation of store-operated calcium signaling in T lymphocytes. J Cell Biol. 1997; 137(3):633-48. PMC: 2139882. DOI: 10.1083/jcb.137.3.633. View