Functional Characterization of Pneumocystis carinii Inositol Transporter 1

Melanie T Cushion1,2, Margaret S Collins3,2, Thomas Sesterhenn3,2

  • 1University of Cincinnati College of Medicine, Cincinnati, Ohio, USA Melanie.cushion@uc.edu.

Mbio
|December 15, 2016
PubMed

Insights

Pneumocystis fungi cannot produce essential myo-inositol and rely on transporters. Characterizing these fungal transporters reveals they are distinct from human transporters, offering a promising new drug target for Pneumocystis pneumonia.

Area of Science:

  • Medical Mycology
  • Molecular Biology
  • Drug Discovery

Background:

  • Fungi in the genus Pneumocystis cause fatal pneumonia in immunocompromised hosts.
  • Limited understanding of Pneumocystis due to lack of in vitro culture systems hinders new therapy development.
  • Pneumocystis species lack myo-inositol biosynthesis enzymes but possess myo-inositol transporter genes.

Purpose of the Study:

  • To functionally and structurally characterize the myo-inositol transporter (ITR1) in Pneumocystis carinii.
  • To investigate the selectivity and properties of fungal myo-inositol transport.
  • To identify myo-inositol transport as a potential drug target.

Main Methods:

  • Functional and structural characterization of the P. carinii ITR1 transporter.
  • Analysis of substrate specificity and competitive inhibition.
  • Comparison of fungal and mammalian myo-inositol transport mechanisms.

Main Results:

  • P. carinii ITR1 exhibits low-affinity, highly selective myo-inositol transport (Km = 0.94 ± 0.08).
  • No significant competitive inhibition by other sugars or inositol stereoisomers was observed.
  • Fungal myo-inositol transport is distinct from mammalian transporters (sodium-independent, cytochalasin B resistant).

Conclusions:

  • Pneumocystis fungi are obligate scavengers of myo-inositol due to their inability to synthesize it.
  • The unique characteristics of fungal myo-inositol transporters differentiate them from host transporters.
  • Targeting fungal myo-inositol transport presents a promising strategy for developing novel, low-toxicity therapies against Pneumocystis infections.

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