» Articles » PMID: 27790055

Optogenetic and Chemogenetic Approaches for Studying Astrocytes and Gliotransmitters

Overview
Journal Exp Neurobiol
Specialty Neurology
Date 2016 Oct 30
PMID 27790055
Citations 28
Authors
Affiliations
Soon will be listed here.
Abstract

The brain consists of heterogeneous populations of neuronal and non-neuronal cells. The revelation of their connections and interactions is fundamental to understanding normal brain functions as well as abnormal changes in pathological conditions. Optogenetics and chemogenetics have been developed to allow functional manipulations both and to examine causal relationships between cellular changes and functional outcomes. These techniques are based on genetically encoded effector molecules that respond exclusively to exogenous stimuli, such as a certain wavelength of light or a synthetic ligand. Activation of effector molecules provokes diverse intracellular changes, such as an influx or efflux of ions, depolarization or hyperpolarization of membranes, and activation of intracellular signaling cascades. Optogenetics and chemogenetics have been applied mainly to the study of neuronal circuits, but their use in studying non-neuronal cells has been gradually increasing. Here we introduce recent studies that have employed optogenetics and chemogenetics to reveal the function of astrocytes and gliotransmitters.

Citing Articles

Optogenetic inhibition of ventrolateral orbitofrontal cortex astrocytes facilitates ventrolateral periaqueductal gray glutamatergic activity to reduce hypersensitivity in infraorbital nerve injury rat model.

Islam J, Rahman M, Ali M, Kim H, Kc E, Park Y J Headache Pain. 2025; 26(1):41.

PMID: 39994518 PMC: 11854010. DOI: 10.1186/s10194-025-01977-6.


Single-cell and spatial omics: exploring hypothalamic heterogeneity.

Junaid M, Lee E, Lim S Neural Regen Res. 2024; 20(6):1525-1540.

PMID: 38993130 PMC: 11688568. DOI: 10.4103/NRR.NRR-D-24-00231.


Astrocytic GPCR signaling in the anterior cingulate cortex modulates decision making in rats.

Akter M, Fu Z, Zheng X, Iqbal Z, Zhang N, Karim A Oxf Open Neurosci. 2024; 3:kvae010.

PMID: 38915791 PMC: 11194462. DOI: 10.1093/oons/kvae010.


Chemogenetic activation of mammalian brain neurons expressing insect Ionotropic Receptors by systemic ligand precursor administration.

Iguchi Y, Fukabori R, Kato S, Takahashi K, Eifuku S, Maejima Y Commun Biol. 2024; 7(1):547.

PMID: 38714803 PMC: 11076466. DOI: 10.1038/s42003-024-06223-4.


Astrocytes: new evidence, new models, new roles.

Brazhe A, Verisokin A, Verveyko D, Postnov D Biophys Rev. 2023; 15(5):1303-1333.

PMID: 37975000 PMC: 10643736. DOI: 10.1007/s12551-023-01145-7.


References
1.
Zhang F, Wang L, Brauner M, Liewald J, Kay K, Watzke N . Multimodal fast optical interrogation of neural circuitry. Nature. 2007; 446(7136):633-9. DOI: 10.1038/nature05744. View

2.
Orr A, Hsiao E, Wang M, Ho K, Kim D, Wang X . Astrocytic adenosine receptor A2A and Gs-coupled signaling regulate memory. Nat Neurosci. 2015; 18(3):423-34. PMC: 4340760. DOI: 10.1038/nn.3930. View

3.
Kunkel M, Peralta E . Identification of domains conferring G protein regulation on inward rectifier potassium channels. Cell. 1995; 83(3):443-9. DOI: 10.1016/0092-8674(95)90122-1. View

4.
Park H, Oh S, Han K, Woo D, Park H, Mannaioni G . Bestrophin-1 encodes for the Ca2+-activated anion channel in hippocampal astrocytes. J Neurosci. 2009; 29(41):13063-73. PMC: 2825675. DOI: 10.1523/JNEUROSCI.3193-09.2009. View

5.
Halassa M, Haydon P . Integrated brain circuits: astrocytic networks modulate neuronal activity and behavior. Annu Rev Physiol. 2010; 72:335-55. PMC: 3117429. DOI: 10.1146/annurev-physiol-021909-135843. View