ArticleNucleic acids research2003
Cloning, functional analysis and post-transcriptional regulation of a type II DNA topoisomerase from Leishmania infantum. A new potential target for anti-parasite drugs.
Article in Nucleic acids research, 2003. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 7 papers.
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Who cites it
7 citing papers in PubMed, 29 citations in OpenAlex.
- Trypanosomatids topoisomerase re-visited. New structural findings and role in drug discovery.International journal for parasitology. Drugs and drug resistance · 2014Review
- The double-edged sword in pathogenic trypanosomatids: the pivotal role of mitochondria in oxidative stress and bioenergetics.BioMed research international · 2014Review
- Leishmania actin binds and nicks kDNA as well as inhibits decatenation activity of type II topoisomerase.Nucleic acids research · 2010Article
- Theoretical models of DNA topology simplification by type IIA DNA topoisomerases.Nucleic acids research · 2009Review
- Type II topoisomerase activities in both the G1 and G2/M phases of the dinoflagellate cell cycle.Chromosoma · 2005Article
- Assigning functions to genes: identification of S-phase expressed genes in Leishmania major based on post-transcriptional control elements.Nucleic acids research · 2005Article
- The effect of topoisomerase II inhibitors on the kinetoplast ultrastructure.Parasitology research · 2004Article
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Authors and funding
5 authors at 1 institution in 1 country.
Funding
No grant is acknowledged in the PubMed record.
Abstract
We identified a type II topoisomerase enzyme from Leishmania infantum, a parasite protozoon causing disease in humans. This protein, named Li topo II, which displays a variable C-terminal end, is located in the kinetoplast. The cloned gene encoding Li-TOP2 compensates for the slow growth of topo II-deficient mutants of Saccharomyces cerevisiae, resulting in a catalytically active DNA topoisomerase in yeast. Analysis of the specific mRNA levels of the Li-TOP2 gene showed variations throughout the parasite cell cycle in synchronized cells as well as between the distinct forms of the parasite. Thus, the enzyme had higher levels of mRNA expression in the highly infective intracellular form of the parasite, the amastigote, than in the extracellular promastigote form, suggesting a relation with the distinct developmental and infectious phases of the protozoon. In addition, western blot analysis showed differences in protein expression between the proliferative and non-proliferative forms of L.infantum promastigotes, which displayed similar levels of mRNA. This indicated possible post-transcriptional regulation mechanisms. The data suggest that Li topo II has a part in DNA decatenation and probably at the initial stages of proliferation in the intracellular form of L.infantum, a parasite that has to proliferate into the host macrophage to survive its hostile environment in its first moments of intracellular infection.
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