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May 31, 2026Biochemistry0 citations

The Thiol-Redox Biochemistry of Trypanosomatids: A New Perspective Based on Known and New Actors

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MCMarcelo A. CominiMGMartín GrañaBMBruno Manta

Key Points

  • The aim is to understand how thiol redox homeostasis affects cell viability in trypanosomatids.
  • Revise current knowledge on thiol redox biochemistry in trypanosomatids.
  • Identify novel members of the thioredoxin-fold family.
  • Analyze the evolutionary implications of trypanothione's unique role.
  • Trypanothione serves as a critical redox cofactor, influencing trypanosomatid biochemistry.
  • Loss of conserved genes like glutathione reductase indicates a significant evolutionary adaptation.
  • Identification of new thioredoxin-fold family members suggests unexplored biochemical roles.

Abstract

Maintaining thiol redox homeostasis is key for cell viability and development. Therefore, all organisms are equipped with redox systems conformed by redox-active proteins and low-molecular-weight thiols that facilitate target-specific delivery of electrons from NADPH to different (macro)molecules. Trypanosomatids are early branching single-cell eukaryotes harboring a unique thiol-redox system centered on the use of trypanothione (bis-glutathionylspermidine) as a low-molecular-weight thiol-redox cofactor. The irruption of trypanothione in these organisms acted as a major and positive selective pressure that shaped their redox biochemistry. The most radical changes involved the loss of otherwise highly conserved and indispensable glutathione reductase and thioredoxin reductase genes and the concomitant assignment of secondary roles to the related redoxins (glutaredoxins and thioredoxins). Here, we revise the state-of-the-art on the field and provide new research perspectives based on the identification of novel members of the thioredoxin-fold family.

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Cite This Study

Comini et al. (2026) studied this question.

synapsesocial.com/papers/6a1bd03d5783ba022b6fbfcahttps://doi.org/10.1021/acs.biochem.6c00079
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