AI Article Synopsis

  • Dopaminergic neurons are prone to oxidative damage due to high dopamine reactivity, but mutations in the Drosophila gene Catsup increase dopamine levels while also providing resistance to oxidative stress from paraquat.
  • Catsup's involvement with key enzymes in dopamine and tetrahydrobiopterin biosynthesis leads to hyperactivation of these enzymes in Catsup mutants, resulting in elevated dopamine levels.
  • The presence of excess dopamine suggests that Catsup plays a crucial role in regulating dopamine synthesis and its transport within synaptic vesicles.

Article Abstract

The highly reactive nature of dopamine renders dopaminergic neurons vulnerable to oxidative damage. We recently demonstrated that loss-of-function mutations in the Drosophila gene Catecholamines up (Catsup) elevate dopamine pools but, paradoxically, also confer resistance to paraquat, an herbicide that induces oxidative stress-mediated toxicity in dopaminergic neurons. We now report a novel association of the membrane protein, Catsup, with GTP cyclohydrolase rate-limiting enzyme for tetrahydrobiopterin (BH(4)) biosynthesis and tyrosine hydroxylase, rate-limiting enzyme for dopamine biosynthesis, which requires BH(4) as a cofactor. Loss-of-function Catsup mutations cause dominant hyperactivation of both enzymes. Elevated dopamine levels in Catsup mutants coincide with several distinct characteristics, including hypermobility, minimal basal levels of 3,4-dihydroxy-phenylacetic acid, an oxidative metabolite of dopamine, and resistance to the vesicular monoamine transporter inhibitor, reserpine, suggesting that excess dopamine is synaptically active and that Catsup functions in the regulation of synaptic vesicle loading and release of dopamine. We conclude that Catsup regulates and links the dopamine synthesis and transport networks.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC3233821PMC
http://dx.doi.org/10.1111/j.1471-4159.2011.07517.xDOI Listing

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