» Articles » PMID: 15545005

Establishment of an in Vitro Screening Model for Neurodegeneration Induced by Antimalarial Drugs of the Artemisinin-type

Overview
Journal Neurotox Res
Publisher Springer
Specialty Neurology
Date 2004 Nov 17
PMID 15545005
Citations 6
Authors
Affiliations
Soon will be listed here.
Abstract

The establishment of an in vitro screening model for neurodegeneration inducing antimalarial drugs was conducted in stepwise fashion. Firstly, the in vivo selective neurotoxic potency of artemisinin was tested in neuronal cells in vitro in relation to the cytotoxic potency in other organ cell cultures such as liver and kidney or versus glial cells. Secondly, a comparison between different parts of the brain (cortex vs. brain stem) was performed and in the last step, a fast and sensitive screening endpoint was identified. In summary, non-neuronal cell lines such as hepatocytes (HEP-G2), liver epithelial cells (IAR), proximal tubular cells (LLC-PK(1)) and glial cells from the rat (C6) and human (GO-G-IJKT) displayed only moderate sensitivity to artemisinin and its derivatives. The same was found in undifferentiated neuronal cell lines from the mouse (N-18) and from human (Kelly), whereas during differentiation, these cells became much more sensitive. Primary astrocytes from the rat also were not specifically involved. In the comparison of primary neuronal cell cultures from the cortex and brain stem of the rat, the brain stem was found to be more sensitive than the cortex. The neurotoxic potential was determined by cytoskeleton elements (neurofilaments), which were degradated in vitro by diverse neurodegenerative compounds. In comparison of dog and rat primary brain stem cultures, the dog cells were found to be more sensitive to artemisinin than the rat cells. In addition to the primary brain stem cell cultures it was shown that the sprouting assay, which determines persistent delayed neurotoxic effects, is also useful for screening antimalarial drugs. To other compounds, artemether and artesunate, showed that use of the sprouting assay followed by primary brain stem cultures of the rat will be a good strategy to select candidate compounds.

Citing Articles

The Artemiside-Artemisox-Artemisone-M1 Tetrad: Efficacies against Blood Stage Parasites, DMPK Properties, and the Case for Artemiside.

Gibhard L, Coertzen D, Reader J, van der Watt M, Birkholtz L, Wong H Pharmaceutics. 2021; 13(12).

PMID: 34959347 PMC: 8704606. DOI: 10.3390/pharmaceutics13122066.


Toward New Transmission-Blocking Combination Therapies: Pharmacokinetics of 10-Amino-Artemisinins and 11-Aza-Artemisinin and Comparison with Dihydroartemisinin and Artemether.

Watson D, Laing L, Gibhard L, Wong H, Haynes R, Wiesner L Antimicrob Agents Chemother. 2021; 65(8):e0099021.

PMID: 34097488 PMC: 8284440. DOI: 10.1128/AAC.00990-21.


Elimination of Schistosoma mansoni in infected mice by slow release of artemisone.

Gold D, Alian M, Domb A, Karawani Y, Jbarien M, Chollet J Int J Parasitol Drugs Drug Resist. 2017; 7(2):241-247.

PMID: 28511056 PMC: 5430492. DOI: 10.1016/j.ijpddr.2017.05.002.


Dihydroartemisinin increases temozolomide efficacy in glioma cells by inducing autophagy.

Zhang Z, Wang J, Shen Y, Guo C, Sai K, Chen F Oncol Lett. 2015; 10(1):379-383.

PMID: 26171034 PMC: 4487108. DOI: 10.3892/ol.2015.3183.


Treatment of murine cerebral malaria by artemisone in combination with conventional antimalarial drugs: antiplasmodial effects and immune responses.

Guiguemde W, Hunt N, Guo J, Marciano A, Haynes R, Clark J Antimicrob Agents Chemother. 2014; 58(8):4745-54.

PMID: 24913162 PMC: 4135990. DOI: 10.1128/AAC.01553-13.


References
1.
Dawson Jr R, Beal M, Bondy S, Di Monte D, Isom G . Excitotoxins, aging, and environmental neurotoxins: implications for understanding human neurodegenerative diseases. Toxicol Appl Pharmacol. 1995; 134(1):1-17. DOI: 10.1006/taap.1995.1163. View

2.
Schmuck G, Schluter G . An in vitro model for toxicological investigations of environmental neurotoxins in primary neuronal cell cultures. Toxicol Ind Health. 1996; 12(5):683-96. DOI: 10.1177/074823379601200507. View

3.
Zhao K, Song Z . [Pharmacokinetics of dihydroqinghaosu in human volunteers and comparison with qinghaosu]. Yao Xue Xue Bao. 1993; 28(5):342-6. View

4.
White N . Artemisinin: current status. Trans R Soc Trop Med Hyg. 1994; 88 Suppl 1:S3-4. DOI: 10.1016/0035-9203(94)90459-6. View

5.
Henschler D, Schmuck G, van Aerssen M, Schiffmann D . The inhibitory effect of neuropathic organophosphate esters on neurite outgrowth in cell cultures: A basis for screening for delayed neurotoxicity. Toxicol In Vitro. 2010; 6(4):327-35. DOI: 10.1016/0887-2333(92)90022-j. View