4.7 Article

Mechanistic studies on the adverse effects of manganese overexposure in differentiated LUHMES cells

Journal

FOOD AND CHEMICAL TOXICOLOGY
Volume 161, Issue -, Pages -

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.fct.2022.112822

Keywords

Manganese; Dopaminergic neurons; DNA integrity; DNA repair; Neurodegeneration; Oxidative stress; Genotoxicity

Funding

  1. DFG Research Unit TraceAge [FOR 2558, BO4103/42]
  2. DFG [BO4103/2-1]

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This study characterizes the adverse effects of manganese on genome integrity in dopaminergic-like neurons. The results show that manganese exposure leads to DNA damage and an enhanced DNA damage response, as well as significant alteration of the neuronal network.
Manganese (Mn) is an essential trace element, but overexposure is associated with toxicity and neurological dysfunction. Accumulation of Mn can be observed in dopamine-rich regions of the brain in vivo and Mn-induced oxidative stress has been discussed extensively. Nevertheless, Mn-induced DNA damage, adverse effects of DNA repair, and possible resulting consequences for the neurite network are not yet characterized. For this, LUHMES cells were used, as they differentiate into dopaminergic-like neurons and form extensive neurite networks. Experiments were conducted to analyze Mn bioavailability and cytotoxicity of MnCl2, indicating a dose-dependent uptake and substantial cytotoxic effects. DNA damage, analyzed by means of 8-oxo-7,8-dihydro-2'-guanine (8oxodG) and single DNA strand break formation, showed significant dose- and time-dependent increase of DNA damage upon 48 h Mn exposure. Furthermore, the DNA damage response was increased which was assessed by analytical quantification of poly(ADP-ribosyl)ation (PARylation). Gene expression of the respective DNA repair genes was not significantly affected. Degradation of the neuronal network is significantly altered by 48 h Mn exposure. Altogether, this study contributes to the characterization of Mn-induced neurotoxicity, by analyzing the adverse effects of Mn on genome integrity in dopaminergic-like neurons and respective outcomes.

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