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Reversible Photocontrol of Dopaminergic Transmission in Wild-Type Animals. | LitMetric

AI Article Synopsis

  • Understanding the dopaminergic system is crucial for studying neurological disorders, as dopamine receptors play a key role in regulating important bodily functions.
  • Current methods to explore these dopaminergic pathways have limitations like specificity and need for genetic changes.
  • Azodopa, a new photoswitchable ligand, allows for precise, light-controlled activation of dopamine receptors in living organisms, potentially enhancing research and treatment of dopaminergic conditions.

Article Abstract

Understanding the dopaminergic system is a priority in neurobiology and neuropharmacology. Dopamine receptors are involved in the modulation of fundamental physiological functions, and dysregulation of dopaminergic transmission is associated with major neurological disorders. However, the available tools to dissect the endogenous dopaminergic circuits have limited specificity, reversibility, resolution, or require genetic manipulation. Here, we introduce azodopa, a novel photoswitchable ligand that enables reversible spatiotemporal control of dopaminergic transmission. We demonstrate that azodopa activates D-like receptors in vitro in a light-dependent manner. Moreover, it enables reversibly photocontrolling zebrafish motility on a timescale of seconds and allows separating the retinal component of dopaminergic neurotransmission. Azodopa increases the overall neural activity in the cortex of anesthetized mice and displays illumination-dependent activity in individual cells. Azodopa is the first photoswitchable dopamine agonist with demonstrated efficacy in wild-type animals and opens the way to remotely controlling dopaminergic neurotransmission for fundamental and therapeutic purposes.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9456102PMC
http://dx.doi.org/10.3390/ijms231710114DOI Listing

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