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bioRxiv · 10.1101/2020.11.29.403048

Metabolic selection of a homologous recombination mediated loss of glycosomal fumarate reductase in Trypanosoma brucei

Abstract

The genome of trypanosomatids is rearranged at the level of repeated sequences, where serve as platforms for amplification or deletion of genomic segments. We report here that the PEPCK gene knockout ({Delta}pepck) leads to the selection of such a deletion event between the FRDg and FRDm2 genes to produce a chimeric FRDg-m2 gene in the {Delta}pepck* cell line. FRDg is expressed in peroxisome-like organelles, named glycosomes, expression of FRDm2 has not been detected to date, and FRDg-m2 is a non-functional cytosolic FRD. Re-expression of FRDg significantly impaired growth of the {Delta}pepck* cells, while inhibition of FRDg-m2 expression had no effect, which indicated that this recombination event has been selected in the {Delta}pepck* cells to eliminate FRDg. FRD activity was not involved in the FRDg-mediated negative effect, while its auto-flavinylation motif is required to impair growth. Considering that (i) FRDs are known to generate reactive oxygen species (ROS) by transferring electrons from their flavin moiety(ies) to oxygen, (ii) intracellular ROS production is essential for the differentiation of procyclic to epimastigote forms of the parasite and (iii) the fumarate reductase activity is not essential for the parasite, we propose that the main role of FRD is to produce part of the ROS necessary to complete the parasitic cycle in the tsetse fly. In this context, the negative effect of FRDg expression in the PEPCK null background is interpreted as an increased production of ROS from oxygen since fumarate, the natural electron acceptor of FRDg, is no longer produced in glycosomes.

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BibTeXRIS

wargnies, M., Plazolles, N., Schenk, R., Villafraz, O., Dupuy, J.-W., Biran, M., Bachmaier, S., Baudouin, H., Clayton, C., Boshart, M., Bringaud, F.. 2020-12-01. Metabolic selection of a homologous recombination mediated loss of glycosomal fumarate reductase in Trypanosoma brucei. https://doi.org/10.1101/2020.11.29.403048

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