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Published on: June 21, 2021
Trypanosoma cruzi tryparedoxin II interacts with different peroxiredoxins under physiological and oxidative stress
L Dias1, E F Peloso1, A F P Leme2
1Departamento de Bioquímica e Biologia Tecidual, UNICAMP, Campinas, SP, Brazil.
Abstract:
Trypanosoma cruzi, the etiologic agent of Chagas disease, has to cope with reactive oxygen and nitrogen species during its life cycle in order to ensure its survival and infection. The parasite detoxifies these species through a series of pathways centered on trypanothione that depend on glutathione or low molecular mass dithiol proteins such as tryparedoxins. These proteins transfer reducing equivalents to peroxidases, including mitochondrial and cytosolic peroxiredoxins, TcMPx and TcCPx, respectively. In T. cruzi two tryparedoxins have been identified, TXNI and TXNII with different intracellular locations. TXNI is a cytosolic protein while TXNII due to a C-terminal hydrophobic tail is anchored in the outer membrane of the mitochondrion, endoplasmic reticulum and glycosomes. TXNs have been suggested to be involved in a majority of biological processes ranging from redox mechanisms to protein translation. Herein, a comparison of the TXNII interactomes under physiological and oxidative stress conditions was examined. Under physiological conditions, apart from the proteins with unknown biological process annotation, the majority of the identified proteins are related to cell redox homeostasis and biosynthetic processes, while under oxidative stress conditions, are involved in stress response, cell redox homeostasis, arginine biosynthesis and microtubule based process. Interestingly, although TXNII interacts with both peroxiredoxins under physiological conditions, upon oxidative stress, TcMPx interaction prevails. The relevance of the interactions is discussed opening a new perspective of TXNII functions.
Insights
Trypanosoma cruzi
Area of Science:
- Parasitology
- Molecular Biology
- Biochemistry
Background:
- Trypanosoma cruzi, the cause of Chagas disease, combats oxidative stress using trypanothione-dependent pathways.
- Trypanothione pathways involve tryparedoxins (TXNs) that transfer reducing equivalents to peroxidases like TcMPx and TcCPx.
- Two TXNs exist in T. cruzi: TXNI (cytosolic) and TXNII (membrane-anchored).
Purpose of the Study:
- To compare the TXNII interactome under physiological and oxidative stress conditions.
- To elucidate the role of TXNII in parasite survival and infection.
- To understand TXNII's interaction dynamics with peroxidases.
Main Methods:
- Proteomics analysis to identify TXNII interacting proteins.
- Comparison of interactomes under basal and oxidative stress conditions.
- Analysis of TXNII interactions with mitochondrial (TcMPx) and cytosolic (TcCPx) peroxiredoxins.
Main Results:
- Under physiological conditions, TXNII interacts with proteins involved in redox homeostasis and biosynthesis.
- Under oxidative stress, TXNII interacts with proteins related to stress response, biosynthesis, and microtubule functions.
- TXNII interaction shifts from both peroxiredoxins to predominantly TcMPx under oxidative stress.
Conclusions:
- TXNII plays a crucial role in T. cruzi's response to oxidative stress.
- The interaction dynamics of TXNII with peroxidases highlight its adaptability.
- This study provides new insights into TXNII's diverse functions in parasite survival.
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