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Published on: January 27, 2019
Dissecting the interstrand crosslink DNA repair system of Trypanosoma cruzi
Monica Zavala Martinez1, Francisco Olmo2, Martin C Taylor2
1School of Biological & Chemical Sciences, Queen Mary University of London, Mile End Road, London E1 4NS, UK.
Abstract:
DNA interstrand crosslinks (ICLs) are toxic lesions that can block essential biological processes. Here we show Trypanosoma cruzi, the causative agent of Chagas disease, is susceptible to ICL-inducing compounds including mechlorethamine and novel nitroreductase-activated prodrugs that have potential in treating this infection. To resolve such lesions, cells co-opt enzymes from "classical" DNA repair pathways that alongside dedicated factors operate in replication-dependent and -independent mechanisms. To assess ICL repair in T. cruzi, orthologues of SNM1, MRE11 and CSB were identified and their function assessed. The T. cruzi enzymes could complement the mechlorethamine susceptibility phenotype displayed by corresponding yeast and/or T. brucei null confirming their role as ICL repair factors while GFP-tagged TcSNM1, TcMRE11 and TcCSB were shown to localise to the nuclei of insect and/or intracellular form parasites. Gene disruption demonstrated that while each activity was non-essential for T. cruzi viability, nulls displayed a growth defect in at least one life cycle stage with TcMRE11-deficient trypomastigotes also compromised in mammalian cell infectivity. Phenotyping revealed all nulls were more susceptible to mechlorethamine than controls, a trait complemented by re-expression of the deleted gene. To assess interplay, the gene disruption approach was extended to generate T. cruzi deficient in TcSNM1/TcMRE11 or in TcSNM1/TcCSB. Analysis demonstrated these activities functioned across two ICL repair pathways with TcSNM1 and TcMRE11 postulated to operate in a replication-dependent system while TcCSB helps resolve transcription-blocking lesions. By unravelling how T. cruzi repairs ICL damage, specific inhibitors targeting repair components could be developed and used to increase the potency of trypanocidal ICL-inducing compounds.
Insights
Trypanosoma cruzi is susceptible to DNA interstrand crosslink (ICL) inducing drugs. Identifying ICL repair factors like SNM1, MRE11, and CSB in T. cruzi reveals potential therapeutic targets for Chagas disease.
Area of Science:
- Molecular Biology
- Genetics
- Parasitology
Background:
- DNA interstrand crosslinks (ICLs) are cytotoxic DNA lesions that impede vital cellular processes.
- Trypanosoma cruzi, the parasite causing Chagas disease, faces ICLs, necessitating efficient repair mechanisms.
Purpose of the Study:
- To investigate the DNA interstrand crosslink (ICL) repair pathways in Trypanosoma cruzi.
- To identify and characterize key ICL repair factors in T. cruzi and assess their therapeutic potential.
Main Methods:
- Identification and functional assessment of T. cruzi orthologues for SNM1, MRE11, and CSB.
- Complementation assays in yeast and/or T. brucei null mutants.
- Gene disruption and phenotyping in T. cruzi.
- Subcellular localization studies using GFP-tagged proteins.
Main Results:
- T. cruzi orthologues TcSNM1, TcMRE11, and TcCSB were identified and functionally confirmed as ICL repair factors.
- These factors localize to the nucleus in different T. cruzi life stages.
- While individually non-essential, their absence caused growth defects and increased susceptibility to ICL-inducing agents like mechlorethamine.
- TcMRE11 deficiency also impaired infectivity of trypomastigotes.
- Evidence suggests TcSNM1 and TcMRE11 function in a replication-dependent pathway, while TcCSB acts in a transcription-associated pathway.
Conclusions:
- T. cruzi possesses distinct ICL repair pathways involving TcSNM1, TcMRE11, and TcCSB.
- Understanding these pathways opens avenues for developing targeted inhibitors to enhance the efficacy of existing ICL-inducing drugs against Chagas disease.
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