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Neuroprotective Copper Bis(thiosemicarbazonato) Complexes Promote Neurite Elongation

Overview of attention for article published in PLOS ONE, February 2014
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Title
Neuroprotective Copper Bis(thiosemicarbazonato) Complexes Promote Neurite Elongation
Published in
PLOS ONE, February 2014
DOI 10.1371/journal.pone.0090070
Pubmed ID
Authors

Laura Bica, Jeffrey R. Liddell, Paul S. Donnelly, Clare Duncan, Aphrodite Caragounis, Irene Volitakis, Brett M. Paterson, Roberto Cappai, Alexandra Grubman, James Camakaris, Peter J. Crouch, Anthony R. White

Abstract

Abnormal biometal homeostasis is a central feature of many neurodegenerative disorders including Alzheimer's disease (AD), Parkinson's disease (PD), and motor neuron disease. Recent studies have shown that metal complexing compounds behaving as ionophores such as clioquinol and PBT2 have robust therapeutic activity in animal models of neurodegenerative disease; however, the mechanism of neuroprotective action remains unclear. These neuroprotective or neurogenerative processes may be related to the delivery or redistribution of biometals, such as copper and zinc, by metal ionophores. To investigate this further, we examined the effect of the bis(thiosemicarbazonato)-copper complex, Cu(II)(gtsm) on neuritogenesis and neurite elongation (neurogenerative outcomes) in PC12 neuronal-related cultures. We found that Cu(II)(gtsm) induced robust neurite elongation in PC12 cells when delivered at concentrations of 25 or 50 nM overnight. Analogous effects were observed with an alternative copper bis(thiosemicarbazonato) complex, Cu(II)(atsm), but at a higher concentration. Induction of neurite elongation by Cu(II)(gtsm) was restricted to neurites within the length range of 75-99 µm with a 2.3-fold increase in numbers of neurites in this length range with 50 nM Cu(II)(gtsm) treatment. The mechanism of neurogenerative action was investigated and revealed that Cu(II)(gtsm) inhibited cellular phosphatase activity. Treatment of cultures with 5 nM FK506 (calcineurin phosphatase inhibitor) resulted in analogous elongation of neurites compared to 50 nM Cu(II)(gtsm), suggesting a potential link between Cu(II)(gtsm)-mediated phosphatase inhibition and neurogenerative outcomes.

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Geographical breakdown

Country Count As %
Australia 1 3%
Unknown 37 97%

Demographic breakdown

Readers by professional status Count As %
Student > Ph. D. Student 9 24%
Researcher 4 11%
Student > Bachelor 3 8%
Student > Master 2 5%
Librarian 1 3%
Other 7 18%
Unknown 12 32%
Readers by discipline Count As %
Chemistry 7 18%
Biochemistry, Genetics and Molecular Biology 4 11%
Neuroscience 4 11%
Agricultural and Biological Sciences 4 11%
Medicine and Dentistry 3 8%
Other 2 5%
Unknown 14 37%